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Section 3 - Treatment and Care

from Part II - Medical Topics

Published online by Cambridge University Press:  05 June 2019

Carrie D. Llewellyn
Affiliation:
University of Sussex
Susan Ayers
Affiliation:
City, University of London
Chris McManus
Affiliation:
University College London
Stanton Newman
Affiliation:
City, University of London
Keith J. Petrie
Affiliation:
University of Auckland
Tracey A. Revenson
Affiliation:
City University of New York
John Weinman
Affiliation:
King's College London
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Print publication year: 2019

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References

Gaba, D. M., Howard, S. K., Fish, K. J., Smith, B. E. & Sowb, Y. A., (2001). Simulation-based training in anesthesia crisis resource management (ACRM): a decade of experience. Simulation and Gaming, 32, 175193.Google Scholar
Haynes, A. B., Weiser, T. G., Berry, W. R., et al. (2009). A surgical safety checklist to reduce morbidity and mortality in a global population. New England Journal of Medicine, 360, 491499.CrossRefGoogle Scholar
Hughes, A. M., Gregory, M. E., Joseph, D. L., et al. (2016). Saving lives: a meta-analysis of team training in healthcare. Journal of Applied Psychology, 101, 12661304.CrossRefGoogle ScholarPubMed
Jelacic, S., Bowdle, A., Nair, B. G., et al. (2015). A system for anesthesia drug administration using barcode technology: the Codonics Safe Label System and Smart Anesthesia Manager. Anesthesia and Analgesia, 121, 410421.CrossRefGoogle ScholarPubMed
Merry, A. F. & Webster, C. S. (2009). Has anesthesia care become safer and is anesthesia-related mortality decreasing? F1000 Medicine Reports, 1, 69. DOI: 10.3410/M3411-3469.CrossRefGoogle ScholarPubMed
Portela, M. C., Pronovost, P. J., Woodcock, T., Carter, P. & Dixon-Woods, M. (2015). How to study improvement interventions: a brief overview of possible study types. BMJ Quality and Safety, 24(5), 325336.CrossRefGoogle Scholar
Pronovost, P., Needham, D., Berenholtz, S., et al. (2006). An intervention to decrease catheter-related bloodstream infections in the ICU. New England Journal of Medicine, 355(26), 27252732.CrossRefGoogle ScholarPubMed
Webster, C. S., Merry, A. F., Larsson, L., McGrath, K. A. & Weller, J., (2001). The frequency and nature of drug administration error during anaesthesia. Anaesthesia and Intensive Care, 29(5), 494500.Google Scholar
Webster, C. S., Larsson, L., Frampton, C. M., et al. (2010). Clinical assessment of a new anaesthetic drug administration system: a prospective, controlled, longitudinal incident monitoring study. Anaesthesia, 65, 490499.Google Scholar
Wikipedia (2017a) Aviation safety. http://en.wikipedia.org/wiki/Aviation_safety (accessed 20 January 2017).Google Scholar
Wikipedia (2017b) The WHO surgical safety checklist. https://en.wikipedia.org/wiki/WHO_Surgical_Safety_Checklist (accessed 20 January 2017).Google Scholar

References

Barlow, J., McMillan, A. S., Kirkpatrick, S., et al. (2010). Health-led interventions in the early years to enhance infant and maternal mental health: a review of reviews. Child and Adolescent Mental Health, 15, 178185.Google Scholar
Beijers, R., Buitelaar, J. K. & de Weerth, C. (2014). Mechanisms underlying the effects of prenatal psychosocial stress on child outcomes: beyond the HPA axis. European Child & Adolescent Psychiatry, 23, 943956.Google Scholar
Bishop, F. L. & Lewith, G. T. (2010). Who uses CAM? A narrative review of demographic characteristics and health factors associated with CAM use. Evidence-Based Complementary and Alternative Medicine, 7(1), 1128.CrossRefGoogle Scholar
Daley, A. J., Foster, L., Long, G., et al. (2014). The effectiveness of exercise for the prevention and treatment of antenatal depression: systematic review with meta-analysis. BJOG: An International Journal of Obstetrics & Gynaecology, 122, 5762.Google Scholar
Dennis, C.-L., Hodnett, E., Kenton, L., et al. (2009). Effect of peer support on prevention of postnatal depression among high risk women: multisite randomised controlled trial. British Medical Journal, 338, a3064.CrossRefGoogle ScholarPubMed
Department of Health. (2010). The Report from the Taskforce on the Health Aspects of Violence Against Women and Children. London: Department of Health.Google Scholar
Flach, C., Leese, M., Heron, J., et al. (2011). Antenatal domestic violence, maternal mental health and subsequent child behaviour: a cohort study. BJOG: An International Journal of Obstetrics & Gynaecology, 118, 13831391.CrossRefGoogle ScholarPubMed
Grigoriadis, S., Vonder Porten, E. H., Mamisashvili, L., et al. (2013). The impact of maternal depression during pregnancy on perinatal outcomes: a systematic review and meta-analysis. Journal of Clinical Psychiatry, 74, e321e341.Google Scholar
Grote, N. K., Bridge, J. A., Gavin, A. R., et al. (2010). A meta-analysis of depression during pregnancy and the risk of preterm birth, low birth weight and intrauterine growth restriction. Archives of General Psychiatry, 67, 10121024.Google Scholar
Knight, M., Tuffnell, D., Kenyon, S., et al. (2015). Saving Lives, Improving Mothers’ Care: Surveillance of Maternal Deaths in the UK 2011–13 and Lessons Learned to Inform Maternity Care from the UK and Ireland Confidential Enquiries Into Maternal Deaths and Morbidity 2009–13. Oxford: National Perinatal Epidemiology Unit, University of Oxford.Google Scholar
Levine, T. A., Alderdice, F. A., Grunau, R. E., et al. (2016). Prenatal stress and hemodynamics in pregnancy: a systematic review. Archives of Women’s Mental Health, 19, 721739.CrossRefGoogle ScholarPubMed
Lewis, G. & Drife, J. (2001). Why Mothers Die 2000–2002: Report on Confidential Enquiries Into Maternal Deaths in the United Kingdom. London: CEMACH.Google Scholar
Mohammad, K. I., Gamble, J., & Creedy, D. K. (2011). Prevalence and factors associated with the development of antenatal and postnatal depression among Jordanian women. Midwifery, 27, e238e245.Google Scholar
NICE. (2014). Antenatal and Postnatal Mental Health: Clinical Management and Service Guidance. Clinical Guidance 192. London: NICE.Google Scholar
NICE. (2016). Antenatal and Postnatal Mental Health. Quality Standard 115. London: NICE.Google Scholar
NICE. (2017). Antenatal Care for Uncomplicated Pregnancies. Clinical Guidance 62. London: NICEGoogle Scholar
Philipp, D. A. & Carr, M. L. (2001). Normal and medically complicated pregnancies. In Stotland, N. L. & Stewart, D. E. (eds), Psychological Aspects of Women’s Health Care: The Inteface between Psychiatry and Obstetrics and Gynecology (2nd edn). Washington, DC: American Psychiatric Press.Google Scholar
Raine, R., Cartwright, M., Richens, Y., et al. (2010). A qualitative study of women’s experiences of communication in antenatal care: identifying areas for action. Maternal Child Health Journal, 14, 590599.CrossRefGoogle ScholarPubMed
Vieten, C. & Astin, J. (2008). Effects of a mindfulness-based intervention during pregnancy on prenatal stress and mood: results of a pilot study. Archives of Women’s Mental Health, 11, 6774.CrossRefGoogle ScholarPubMed
World Health Organization. (2011). Intimate partner violence during pregnancy: information sheet. http://apps.who.int/iris/bitstream/10665/70764/1/WHO_RHR_11.35_eng.pdf (accessed 29 March 2017).Google Scholar
World Health Organization. (2015). Trends in maternal mortality: 1990 to 2015. Estimates by WHO, UNICEF, UNFPA, World Bank Group and the United Nations Population Division. www.who.int/reproductivehealth/publications/monitoring/maternal-mortality-2015/en/ (accessed 28 March 2017).Google Scholar
World Health Organization. (2016). WHO recommendations on antenatal care for a positive pregnancy experience. http://apps.who.int/iris/bitstream/10665/250796/1/9789241549912-eng.pdf?ua=1 (accessed 27 March 2017).Google Scholar

References

Benyamini, Y., Gozlan, M. & Kokia, E. (2005). Variability in the difficulties experienced by women undergoing infertility treatments. Fertility and Sterility, 83(2), 275283.CrossRefGoogle ScholarPubMed
Boivin, J. & Lancastle, D. (2010). Medical waiting periods: imminence, emotions and coping. Women’s Health, 6(1), 5969.Google Scholar
Boivin, J. & Takefman, J. (1996). The impact of the in vitro fertilization-embryo transfer (IVF-ET) process on emotional, physical and relational variables. Human Reproduction, 11, 903907.Google Scholar
Boivin, J., Bunting, L., Collins, J. A. & Nygren, K. (2007). An international estimate of infertility prevalence and treatment-seeking: potential need and demand for infertility medical care. Human Reproduction, 22(6), 15061512.Google Scholar
Boivin, J., Griffiths, E. & Venetis, C. A. (2011). Emotional distress in infertile women and failure of assisted reproductive technologies: meta-analysis of prospective psychosocial studies. British Medical Journal, 342, d223.CrossRefGoogle ScholarPubMed
Boivin, J., Takefman, J. & Braverman, A. (2010). The fertility quality of life (FertiQoL) tool: development and general psychometric properties. Fertility and Sterility, 96(2), 409415.Google Scholar
Bouwmans, C. A., Lintsen, B. A., Al, M., et al. (2008). Absence from work and emotional stress in women undergoing IVF or ICSI: an analysis of IVF-related absence from work in women and the contribution of general and emotional factors. Acta Obstetricia et Gynecologica Scandinavica, 87(11), 11691175.CrossRefGoogle ScholarPubMed
Bunting, L. & Boivin, J. (2010). Development and preliminary validation of the fertility status awareness tool: FertiSTAT. Human Reproduction, 25, 17221733.CrossRefGoogle ScholarPubMed
Daniluk, J. C. (2001). Reconstructing their lives: a longitudinal, qualitative analysis of the transition to biological childlessness for infertile couples. Journal of Counseling and Development, 79(4), 439.Google Scholar
Frederiksen, Y., Farver-Vestergaard, I., Skovgård, N. G., Ingerslev, H. J. & Zachariae, R. (2015). Efficacy of psychosocial interventions for psychological and pregnancy outcomes in infertile women and men: a systematic review and meta-analysis. BMJ Open, 5(1), e006592.Google Scholar
Gameiro, S., Boivin, J., Peronace, L. & Verhaak, C. M. (2012). Why do patients discontinue fertility treatment? A systematic review of reasons and predictors of discontinuation in fertility treatment. Human Reproduction Update, 18(6), 652669.CrossRefGoogle ScholarPubMed
Gameiro, S., van den Belt-Dusebout, A. W., Bleiker, E., et al. (2014). Do children make you happier? Sustained child-wish and mental health in women 11–17 years after fertility treatment. Human Reproduction, 29(10), 2238.Google Scholar
Gameiro, S., Boivin, J., Dancet, E., et al. (2015). ESHRE guideline: routine psychosocial care in infertility and medically assisted reproduction: a guide for fertility staff. Human Reproduction, 30(11), 24762485.Google Scholar
Homan, G. F., Davies, M. & Norman, R. (2007). The impact of lifestyle factors on reproductive performance in the general population and those undergoing infertility treatment: a review. Human Reproduction Update, 13(3), 209223.Google Scholar
Human Fertilisation & Embryology Authority (HFEA) (2016). Fertility treatment 2014: Trends and figures. www.hfea.gov.uk/docs/HFEA_Fertility_treatment_Trends_and_figures_2014.pdf.Google Scholar
Lancastle, D. & Boivin, J. (2008). A feasibility study of a brief coping intervention (PRCI) for the waiting period before a pregnancy test during fertility treatment. Human Reproduction, 23(10), 22992307.Google Scholar
Matthiesen, S. M. S., Frederiksen, Y., Ingerslev, H. J. & Zachariae, R. (2011). Stress, distress and outcome of assisted reproductive technology (ART): a meta-analysis. Human Reproduction, 26 (10), 27632776.CrossRefGoogle ScholarPubMed
McLernon, D. J., Maheshwari, A., Lee, A. J. & Bhattacharya, S. (2016). Cumulative live birth rates after one or more complete cycles of IVF: a population-based study of linked cycle data from 178 898 women. Human Reproduction, 31(3), 572581.Google Scholar
McMahon, C. A., Boivin, J., Gibson, F. L., et al. (2011). Age at first birth, mode of conception and psychological wellbeing in pregnancy: findings from the parental age and transition to parenthood Australia (PATPA) study. Human Reproduction, 26(6), 13891398.Google Scholar
Mutsaerts, M. A., van Oers, A. M., Groen, H., et al. (2016). Randomized trial of a lifestyle program in obese infertile women. New England Journal of Medicine, 374(20), 19421953.Google Scholar
Ockhuijsen, H., van den Hoogen, A., Eijkemans, M., Macklon, N. & Boivin, J. (2014). Clarifying the benefits of the positive reappraisal coping intervention for women waiting for the outcome of IVF. Human Reproduction, 29(12), 27122718.Google Scholar
Pook, M. & Krause, W. (2005). Stress reduction in male infertility patients: a randomized, controlled trial. Fertility and sterility, 83(1), 6873.Google Scholar
Rockliff, H. E., Lightman, S. L., Rhidian, E., et al. (2014). A systematic review of psychosocial factors associated with emotional adjustment in in vitro fertilization patients. Human Reproduction Update, 20(4), 594613.Google Scholar
Verhaak, C. M., Smeenk, J. M. J., Evers, A. W. M., et al. (2007). Women’s emotional adjustment to IVF: a systematic review of 25 years of research. Human Reproduction Update, 13(1), 2736.Google Scholar
Verhaak, C. M., Lintsen, A. M. E., Evers, A. W. M. & Braat, D. D. M. (2010). Who is at risk of emotional problems and how do you know? Screening of women going for IVF treatment. Human Reproduction, 25(5), 12341240.Google Scholar

References

Brandberg, Y., Sandelin, K., Erikson, S., et al. (2008). Psychological reactions, quality of life, and body image after bilateral prophylactic mastectomy in women at high risk for breast cancer: a prospective 1-year follow-up study. Journal of Clinical Oncology, 26(24), 39433949.Google Scholar
Brown, L. F. & Kroenke, K. (2009). Cancer-related fatigue and its associations with depression and anxiety: a systematic review. Psychosomatics, 50(5), 440447.CrossRefGoogle ScholarPubMed
Carayol, M., Bernard, P., Boiché, J., et al. (2013). Psychological effect of exercise in women with breast cancer receiving adjuvant therapy: what is the optimal dose needed? Annals of Oncology, 24(2), 291300.Google Scholar
Carter, J., Raviv, L., Applegarth, L. et al. (2010). A cross-sectional study of the psychosexual impact of cancer-related infertility in women: third-party reproductive assistance. Journal of Cancer Survivorship, 4(3),236246.Google Scholar
Di Mattei, V. E., Carnelli, L., Pagani Bagliacca, E., et al. (2014). Quality of life and body image: a psychosocial program for cancer patients. In Psychology Applications and Developments. Lisbon: Science Press.Google Scholar
Di Mattei, V. E., Carnelli, L., Carrara, L., et al. (2016). Chemotherapy-induced nausea and vomiting in women with gynecological cancer: a preliminary single-center study investigating medical and psychosocial risk factors. Cancer Nursing, 39(6), E52E59.Google Scholar
Doolittle, M. N. & Duhamel, K. N. (2015). Post-traumatic stress disorder associated with cancer diagnosis and treatment. In Holland, J. C., Breitbart, W., Jacobsen, P., et al. Psycho-Oncology (3rd edn). Oxford: Oxford University Press.Google Scholar
Erol, O., Can, G. & Aydiner, A. (2012). Effects of alopecia on body image and quality of life of Turkish cancer women with or without headscarf. Supportive Care in Cancer, 20, 23492356.Google Scholar
Fischer, D. S., Knobf, M. T., Durivage, J. H., et al. (2003). The Cancer Chemotherapy Handbook. (6th edn). Philadelphia, PA: Elsevier Science.Google Scholar
Grassi, L., Berardi, M. A., Ruffilli, F., et al. (2015). Role of psychosocial variables on chemotherapy-induced nausea and vomiting and health-related quality of life among cancer patients: a European study. Psychotherapy and Psychosomatics, 84(6), 339347.CrossRefGoogle ScholarPubMed
Hilton, S., Hunt, K., Emslie, C., et al. (2008). Have men been overlooked? A comparison of young men and women’s experiences of chemotherapy-induced alopecia. Psycho-Oncology, 17, 577583.Google Scholar
Kershaw, T., Northouse, L., Kritpracha, C., et al. (2004). Coping strategies and quality of life in women with advanced breast cancer and their family caregivers. Psychology & Health, 19(2), 139155.CrossRefGoogle Scholar
Kroenke, C. H., Kubzansky, L. D., Schernhammer, E. S., et al. (2006). Social networks, social support, and survival after breast cancer diagnosis. Journal of Clinical Oncology, 24(7), 11051111.CrossRefGoogle ScholarPubMed
Kroenke, C. H., Kwan, M. L., Neugut, A. I., et al. (2013). Social networks, social support mechanisms, and quality of life after breast cancer diagnosis. Breast Cancer Research and Treatment, 139(2), 515527.Google Scholar
Lambertini, M., Del Mastro, L., Pescio, M. C., et al. (2016). Cancer and fertility preservation: international recommendations from an expert meeting. BMC Medicine, 4(14), 1.CrossRefGoogle Scholar
Lazarus, R. S. & Folkam, S. (1984). Stress, Appraisal and Coping. New York: Springer.Google Scholar
Lemieux, J., Maunsell, E. & Provencher, L. (2008). Chemotherapy-induced alopecia and effects on quality of life among women with breast cancer: a literature review. Psycho-Oncology, 17, 317328.Google Scholar
Menshadi, N., Bar-Tal, Y. & Barnoy, S. (2013). The relationship between learned resourcefulness and cancer-related fatigue in patients with non-Hodgkin lymphoma. Oncology Nursing Forum, 40(2), 133138.Google Scholar
Mitchell, A. J., Chan, M., Bhatti, H., et al. (2011). Prevalence of depression, anxiety, and adjustment disorder in oncological, haematological, and palliative-care settings: a meta-analysis of 94 interview-based studies. Lancet Oncology, 12(2), 160174.Google Scholar
Münstedt, K., Manthey, N., Sachsse, S., et al. (1997). Changes in self-concept and body image during alopecia induced cancer chemotherapy. Supportive Care in Cancer, 5(2), 139143.CrossRefGoogle ScholarPubMed
Peccatori, F. A., Azim, H. A. Jr, Orecchia, R., et al. (2013). Cancer, pregnancy and fertility: ESMO Clinical Practice Guidelines for diagnosis, treatment and follow-up. Annals of Oncology, 24(Suppl. 6), vi160vi170.Google Scholar
Rock, C. L. (2005). Dietary counseling is beneficial for the patient with cancer. Journal of Clinical Oncology, 23, 13481349.Google Scholar
Roscoe, J. A. (2006). The role of patients’ response expectancies in side effect development and control. Current Problems in Cancer, 30(2), 4098.Google Scholar
Roscoe, J. A., Heckler, C. E., Morrow, G. R., et al. (2012). Prevention of delayed nausea: a university of Rochester cancer center community clinical oncology program study of patients receiving chemotherapy. Journal of Clinical Oncology, 30, 33893395.CrossRefGoogle ScholarPubMed
Rosenberg, S. M., Tamimi, R. M., Gelber, S., et al. (2013). Body image in recently diagnosed young women with early breast cancer. Psycho-Oncology, 22, 18491855.Google Scholar
Tuncay, T. (2014). Coping and quality of life in Turkish women living with ovarian cancer. Asian Pacific Journal of Cancer Prevention, 15(9), 40054012.Google Scholar
Wells, J. S., Strickland, O. L. & Dalton, J. A. (2015). Adherence to intravenous chemotherapy in African American and white women with early-stage breast cancer. Cancer Nursing, 38(2), 8998.CrossRefGoogle ScholarPubMed
Wenzel, L. B., Fairclough, D. L., Brady, M. J., et al. (2000). Age-related differences in the quality of life of breast carcinoma patients after treatments. Cancer, 86(9), 17681774.Google Scholar

References

Ausanee, W., Jane, M. & Stewart, B. (2010). Complementary and alternative medicine use among women with breast cancer: a systematic review. Clinical Journal of Oncology Nursing, 14(4), E45.Google Scholar
Bishop, F. L. & Lewith, G. T. (2010). Who uses CAM? A narrative review of demographic characteristics and health factors associated with CAM use. Evidence-Based Complementary and Alternative Medicine, 7(1), 1128.Google Scholar
Clarke, T. C., Black, L. I., Stussman, B. J., Barnes, P. M. & Nahin, R. L. (2015). Trends in the use of complementary health approaches among adults: United States, 2002–2012. National Health Statistics Reports, 10(79), 116.Google Scholar
Cramer, H., Lauche, R., Haller, H. & Dobos, G. (2013). A systematic review and meta-analysis of yoga for low back pain. Clinical Journal of Pain, 29(5), 450460.CrossRefGoogle ScholarPubMed
Eardley, S., Bishop, F. L., Prescott, P., et al. (2012). A systematic literature review of complementary and alternative medicine prevalence in EU. Forschende Komplementärmedizin/Research in Complementary Medicine, 19 (Suppl. 2), 1828.Google Scholar
Ernst, E. (2007). Adverse effects of spinal manipulation: a systematic review. Journal of the Royal Society of Medicine, 100(7), 330338.Google Scholar
Falci, L., Shi, Z. & Greenlee, H. (2016). Peer reviewed: multiple chronic conditions and use of complementary and alternative medicine among US adults: results from the 2012 National Health Interview Survey. Preventing Chronic Disease, 13, E61. http://dx.doi.org/10.5888/pcd13.150501.CrossRefGoogle Scholar
Frass, M., Strassl, R. P. & Friehs, H. (2012). Use and acceptance of complementary and alternative medicine among the general population and medical personnel: a systematic review. The Ochsner Journal, 12(1), 4556.Google Scholar
Gotink, R. A., Chu, P., Busschbach, J. J., et al. (2015). Standardised mindfulness-based interventions in healthcare: an overview of systematic reviews and meta-analyses of RCTs. PLoS One, 10(4), e0124344.Google Scholar
Harris, P. E., Cooper, K. L., Relton, C. & Thomas, K. J. (2012). Prevalence of complementary and alternative medicine (CAM) use by the general population: a systematic review and update. International Journal of Clinical Practice, 66(10), 924939.Google Scholar
Henderson, C., Evans-Lacko, S. & Thornicroft, G. (2013). Mental illness stigma, help seeking, and public health programs. American Journal of Public Health, 103(5), 777780.Google Scholar
Hoffmann, S. G., Sawyer, A. T., Witt, A. A. & Oh, D. (2010). The effect of mindfulness-based therapy on anxiety and depression: a meta-analytic review. Journal of Consulting and Clinical Psychology, 78(2), 169183.Google Scholar
Horneber, M., Bueschel, G., Dennert, G., et al. (2011). How many cancer patients use complementary and alternative medicine: a systematic review and metaanalysis. Integrative Cancer Therapies, 11, 187203.Google Scholar
Hunt, K. J., Coelho, H. F., Wider, B., et al. (2010). Complementary and alternative medicine use in England: results from a national survey. International Journal of Clinical Practice, 64(11), 14961502.Google Scholar
Liu, L., Skinner, M., McDonough, S., Mabire, L. & Baxter, G. D. (2015). Acupuncture for low back pain: an overview of systematic reviews. Evidence-Based Complementary and Alternative Medicine, 2015. DOI: 10.1155/2015/328196.Google Scholar
Macfarlane, G. J., Paudyal, P., Doherty, M., et al. (2012). A systematic review of evidence for the effectiveness of practitioner-based complementary and alternative therapies in the management of rheumatic diseases: osteoarthritis. Rheumatology, 51(12), 22242233.Google Scholar
McFadden, K. L., Hernández, T. D. & Ito, T. A. (2010). Attitudes toward complementary and alternative medicine influence its use. Explore: The Journal of Science and Healing, 6(6), 380388.CrossRefGoogle ScholarPubMed
National Institutes of Health (NIH). (2016a). Complementary, alternative, or integrative health: What’s in a name? https://nccih.nih.gov/sites/nccam.nih.gov/files/Whats_In_A_Name_06-16-2016.pdf (accessed 15 July 2016).Google Scholar
National Institutes of Health (NIH). (2016b). Safe use of complementary health products and practices. https://nccih.nih.gov/health/safety (accessed 11 August 2017).Google Scholar
Podazaski, P., Watson, L. K., Alotaibi, A. & Ernst, E. (2013). Prevalence of use of complementary and alternative medicine (CAM) by patients/consumers in the UK: systematic review of surveys. Clinical Medicine, 13(2), 126131.Google Scholar
Shneerson, C., Taskila, T., Gale, N., Greenfield, S. & Chen, Y. F. (2013). The effect of complementary and alternative medicine on the quality of life of cancer survivors: a systematic review and meta-analyses. Complementary Therapies in Medicine, 21(4), 417429.Google Scholar
Solomon, D. & Adams, J. (2015). The use of complementary and alternative medicine in adults with depressive disorders: a critical integrative review. Journal of Affective Disorders, 179, 101113.Google Scholar
Thomson, P., Jones, J., Evans, J. M. & Leslie, S. L. (2012). Factors influencing the use of complementary and alternative medicine and whether patients inform their primary care physician. Complementary Therapies in Medicine, 20(1), 4553.CrossRefGoogle ScholarPubMed
Ventola, C. L. (2010). Current issues regarding complementary and alternative medicine (CAM) in the United States. Part 1: the widespread use of CAM and the need for better-informed health care professionals to provide patient counseling. Pharmacy and Therapeutics, 35(8), 461468.Google Scholar
White, A., Boon, H., Alraek, T., et al. (2014). Reducing the risk of complementary and alternative medicine (CAM): challenges and priorities. European Journal of Integrative Medicine, 6(4), 404408.Google Scholar
Woollen, L. & Paudyal, P. (2015). Practitioner-based complementary and alternative therapies in the management of asthma in children and adolescents: a systematic review and meta-analysis. Lancet, 386, S80.CrossRefGoogle Scholar
World Health Organization. (2013). WHO traditional medicine strategy 2014–2023. http://apps.who.int/iris/bitstream/10665/92455/1/9789241506090_eng.pdf?ua=1 (accessed 12 August 2016).Google Scholar

References

Daniels, K., Mosher, W. D. & Jones, J. (2013). Contraceptive Methods Women Have Ever used: United States, 1982–2010. National Health Statistics Reports, 62. Hyattsville, MD: National Center for Health Statistics.Google Scholar
Daniels, K., Daugherty, J., Jones, J. & Mosher, W. D. (2015). Current Contraceptive Use and Variation by Selected Characteristics Among Women Aged 15–44: United States, 2011–2013. National Health Statistics Reports, 86. Hyattsville, MD: National Center for Health Statistics.Google Scholar
Eisenstadt v. Baird (1972). 405, US 438.Google Scholar
Faisal-Cury, A., Menezes, P. R. & Huang, H. (2013). The relationship between perinatal psychiatric disorders and contraception use among postpartum women. Contraception, 88(4), 498502.Google Scholar
Francis, J., Presser, L., Malbon, K., Braun-Courville, D. & Linares, L. O. (2015). An exploratory analysis of contraceptive method choice and symptoms of depression in adolescent females initiating prescription contraception. Contraception, 91(4), 336343.Google Scholar
Frost, J. J. & Darroch, J. E. (2008). Factors associated with contraceptive choice and inconsistent method use, United States, 2004. Perspectives on Sexual and Reproductive Health, 40(2), 94104.Google Scholar
Frost, J. J., Singh, S. & Finer, L. B. (2007). Factors associated with contraceptive use and nonuse, United States, 2004. Perspectives on Sexual and Reproductive Health, 39(2), 9099.Google Scholar
Frost, J. J., Frohwirth, L. F., Blades, N., et al. (2017). Publicly Funded Contraceptive Services at U.S. Clinics, 2015. New York: Guttmacher Institute.Google Scholar
Garbers, S., Correa, N., Tobier, N., Blust, S. & Chiasson, M. A. (2010). Association between symptoms of depression and contraceptive method choices among low-income women at urban reproductive health centers. Maternal & Child Health Journal, 14(1), 102109.Google Scholar
Griswold v. Connecticut (1965) 381, US 479.Google Scholar
Hall, K. S., White, K. O., Rickert, V. I., Reame, N. & Westhoff, C. (2012). Influence of depressed mood and psychological stress symptoms on perceived oral contraceptive side effects and discontinuation in young minority women. Contraception, 86(5), 518525.Google Scholar
Hall, K. S., Moreau, C., Trussell, J. & Barber, J. (2013a). Role of young women’s depression and stress symptoms in their weekly use and nonuse of contraceptive methods. Journal of Adolescent Health, 53 (2), 241248.Google Scholar
Hall, K. S., Moreau, C., Trussell, J. & Barber, J. (2013b). Young women’s consistency of contraceptive use: does depression or stress matter? Contraception, 88(5), 641649.Google Scholar
Hall, K. S., Steinberg, J. R., Cwiak, C. A., Allen, R. H. & Marcus, S. M. (2015). Contraception and mental health: a commentary on the evidence and principles for practice. American Journal of Obstetrics & Gynecology, 212 (6), 740746.Google Scholar
Hubacher, D. & Trussell, J. (2015). A definition of modern contraceptive methods. Contraception, 92(5), 420421.Google Scholar
Jaccard, J. & Levitz, N. (2013). Counseling adolescents about contraception: towards the development of an evidence-based protocol for contraceptive counselors. Journal of Adolescent Health, 52(4 Suppl.), S6S13.Google Scholar
Jones, R. K. (2011). Beyond Birth Control: The Overlooked Benefits of Oral Contraceptive Pills. New York: Guttmacher Institute.Google Scholar
Library of Congress (1873). 42nd Congress, Session III, Ch. 258. https://memory.loc.gov/cgi-bin/ampage?collId=llsl&fileName=017/llsl017.db&recNum=639.Google Scholar
Møller, S. E. (1981). Effect of oral contraceptives on tryptophan and tyrosine availability: evidence for a possible contribution to mental depression. Neuropsychobiology, 7(4), 192200.Google Scholar
Singh, S., Darroch, J. E. & Ashford, L. S. (2014). Adding It Up: The Costs and Benefits of Investing in Sexual and Reproductive Health 2014. New York: Guttmacher Institute.Google Scholar
Skovlund, C. W., Morch, L. S., Kessing, L. V. & Lidegaard, O. (2016). Association of hormonal contraception with depression. JAMA Psychiatry, 73(11), 11541162.Google Scholar
Sonfield, A., Hasstedt, K. & Gold, R. B. (2014). Moving Forward: Family Planning in the Era of Health Reform. New York: Guttmacher Institute.Google Scholar
Steinauer, J. E., Upadhyay, U. D., Sokoloff, A., et al. (2015). Choice of levonorgestrel intrauterine device, etonogestrel implant or depot medroxyprogesterone acetate for contraception after aspiration abortion. Contraception, 92(6), 553559.Google Scholar
Steinberg, J. R., Tschann, J. M., Henderson, J. T., et al. (2013). Psychological distress and post-abortion contraceptive method effectiveness level chosen at an urban clinic. Contraception, 88 (6), 717724.CrossRefGoogle ScholarPubMed
Sundaram, A., Vaughan, B., Kost, K., et al. (2017). Contraceptive failure in the United States: estimates from the 2006–2010 National Survey of Family Growth. Perspectives on Sexual and Reproductive Health, 49(1), 716.Google Scholar
Trussell, J. (2011). Contraceptive failure in the United States. Contraception, 83(5), 397404.Google Scholar
Trussell, J. & Guthrie, K. A. (2011). Choosing a contraceptive: efficacy, safety, and personal considerations. In Hatcher, R. A, Trussell, J., Nelson, A. L., et al. (eds), Contraceptive Technology (20th revised edn; pp. 4574). New York: Ardent Media.Google Scholar
Upadhyay, U. D., Brown, B. A., Sokoloff, A. & Raine, T. R. (2012). Contraceptive discontinuation and repeat unintended pregnancy within 1 year after an abortion. Contraception, 85(1), 5662.Google Scholar
Yale Law Journal Company (1960). Connecticut’s birth control law: reviewing a state statute under the fourteenth amendment. Yale Law Journal, 70(2), 322334.Google Scholar
Zethraeus, N., Dreber, A., Ranehill, E., et al. (2017). A first-choice combined oral contraceptive influences general well-being in healthy women: a double-blind, randomized, placebo-controlled trial. Fertility & Sterility. Epub ahead of print.Google Scholar

References

Andreen, L., Nyberg, S., Turkmen, S., et al. (2009). Sex steroid induced negative mood may be explained by the paradoxical effect mediated by GABAA modulators. Psychoneuroendocrinology, 34, 11211132.Google Scholar
Barnabei, V. M., Cochrane, B. B., Aragaki, A. K., et al. (2005). Menopausal symptoms and treatment related effects of estrogen and progestin in the women’s health initiative. Obstetrics and Gynaecology, 105, 10631073.Google Scholar
Beral, V., et al., Million Women Study Collaborators (2003). Breast cancer and hormone-replacement therapy in the Million Women Study. Lancet, 362, 419427.Google Scholar
Bergandal, A., Kieler, H., Sundstrom, A., et al. (2016). Risk of venous thromboembolism associated with local and systemic use of hormone therapy in peri- and postmenopausal women and in relation to type and route of administration. Menopause, 23(6), 593599.Google Scholar
Canonico, M., Oger, E., Plu-Bureau, G., et al. (2007). Hormone therapy and venous thromboembolism among postmenopausal women. Circulation, 115, 840845.Google Scholar
Cauley, J. A., Robbins, J., Chen, Z., et al. (2003). Effects of estrogen plus progestin on risk of fracture and bone mineral density; the women’s health initiative randomized trial. Journal of the American Medical Association, 290, 17291738.Google Scholar
Cohen, L. S., Soares, C. N., Vitonis, A. F., et al. (2006). Risk for new onset of depression during the menopausal transition: the Harvard study of moods and cycles. Archives of General Psychiatry, 63(4), 385390.Google Scholar
Cushman, M., Kuller, L. H., Prentice, R., et al. (2004). Estrogen plus progestin and risk of venous thrombosis. Journal of the American Medical Association, 292, 15731580.Google Scholar
Deecher, D., Andree, T. H., Sloan, D., et al. (2008). From menarche to menopause: exploring the underlying biology of depression in women experiencing hormonal changes. Psychoneuroendocrinology, 33(1), 317.Google Scholar
Fahlen, M., Fornander, T., Johansson, H., et al. (2013). Hormone replacement therapy after breast cancer: 10 year follow up of the Stockholm randomised trial. European Journal of Cancer, 49, 5259.Google Scholar
Freeman, E. W., Sammel, M. D., Lin, H., et al. (2006). Association of hormones and menopausal status with depressed mood in women with no history of depression. Archives of General Psychiatry, 63(4), 375382.Google Scholar
Furness, S., Roberts, H., Marjoribanks, J., et al. (2012). Hormone therapy in postmenopausal women and risk of endometrial hyperplasia. Cochrane Database of Systematic Reviews, 8, CD000402.Google Scholar
Gold, E. B., Colvin, A., Avis, N., et al. (2006). Longitudinal analysis of the association between vasomotor symptoms and race/ethnicity across the menopausal transition: study of women’s health across the nation. American Journal of Public Health, 96(7), 12261235.Google Scholar
Hoga, L., Radolpho, J., Goncalves, B., et al. (2015). Women’s experience of menopause: a systematic review of qualitative evidence. JBI Database of Systematic Reviews and Implementation Reports, 13(8), 250337.Google Scholar
Holmberg, L., Iverson, O. E., Rudenstam, C. M., et al. (2008). Increased risk of recurrence after hormone replacement therapy in breast cancer survivor. Journal of the National Cancer Institute, 100, 475482.Google Scholar
Leidy, S. (2013). Menopause across cultures: clinical considerations. North American Menopause Society practice pearl. Menopause, 21(4), 421423.Google Scholar
MacLennan, A. H., Boradbent, J. L., Lester, S., et al. (2004). Oral oestrogen and combined oestrogen/progestogen therapy versus placebo for hot flushes. Cochrane Database Systematic Reviews, 18(4), CD002978.Google Scholar
Manson, J. E., Chlebowski, R. T., Stefanick, M. L., et al. (2013). Menopausal hormone therapy and health outcomes during the intervention and extended poststopping phases of the women’s health initiative randomized trials. Journal of the American Medical Association, 310(13), 13531368.CrossRefGoogle ScholarPubMed
Melby, M. K., Lock, M., Kaufert, P., et al. (2005). Culture and symptom reporting at menopause. Human Reproduction Update, 11(5), 495512.Google Scholar
Mohammed, K., Abu Dabrh, A. M., Benkhadra, K., et al. (2015). Oral vs transdermal estrogen therapy and vascular events: a systematic review and meta-analysis. Journal of Clinical Endocrinology & Metabolism, 100(11), 40124020.Google Scholar
National Institute for Health and Care Excellence. (2015). Menopause: diagnosis and management guideline. National Institute for Health and Care Excellence, 8, 129.Google Scholar
Neves-e-Castro, M., Birkhauser, M., Samsioe, G., et al. (2015). EMAS Position Statement: the ten point guide to the integral management of menopausal health. Maturitas, 81, 8892.Google Scholar
North American Menopause Society. (2012). The 2012 hormone therapy position statement of the North American Menopause Society. Menopause, 19(3), 257271.Google Scholar
Obermeyer, C. M. (2000). Menopause across cultures: a review of the evidence. Menopause, 7(3), 184192.Google Scholar
Roberts, H. & Hickey, M. (2015). Should hormone therapy be recommended for prevention of cardiovascular disease? Cochrane Database of Systematic Reviews, 3, ED000097.Google Scholar
Schenck-Gustafsson, K., Brincat, M., Gambacciani, M., et al. (2011). EMAS position statement: managing the menopause in the context of coronary heart disease. Maturitas, 68(1), 9497.Google Scholar
Schmidt, P. J. & Rubinow, D. R. (2009). Sex hormones and mood in the perimenopause. Annals of the New York Academy of Sciences, 1179, 7085.Google Scholar
Schmidt, P. J., Ben Dor, R., Martinez, P. E., et al. (2015). Effects of estradiol withdrawal on mood in women with past perimenopausal depression. JAMA Psychiatry, 72(7), 714726.Google Scholar
Stuenkel, C. A., Davis, S. R., Gompel, A., et al. (2015). Treatment of symptoms of the menopause: an endocrine society clinical practice guideline. Journal of Clinical Endocrinology and Metabolism, 100(11), 39754011.Google Scholar
Suckling, J. A., Lethaby, A., Kennedy, R. (2006). Local oestrogen for vaginal atrophy in postmenopausal women. Cochrane Database of Systematic Reviews, 4, CD001500.Google Scholar
Timur, S. & Sahin, N. H. (2010). The prevalence of depression symptoms and influencing factors among perimenopausal and postmenopausal women. Menopause, 17(3), 545551.CrossRefGoogle ScholarPubMed
Worsely, R., Davis, S. R., Gavrilidis, E., et al. (2012). Hormonal therapies for new onset and relapsed depression during perimenopause. Maturitas, 73, 127133.Google Scholar
Worsley, R., Bell, R., Kulkarni, J., et al. (2014). The association between vasomotor symptoms and depression during perimenopause: a systematic review. Maturitas, 77, 111117.Google Scholar

References

Bevan, J. C., Johnston, C., Haig, M. J., et al. (1990). Preoperative parental anxiety predicts behavioural and emotional responses to induction of anaesthesia in children. Canadian Journal of Anaesthesia, 37, 177182.Google Scholar
Capurso, M. & Ragni, B. (2016). Psycho-educational preparation of children for anaesthesia: a review of intervention methods. Patient Education and Counseling, 99(2), 173185.CrossRefGoogle ScholarPubMed
D’Angelica, M., Hirsch, K., Ross, H., et al. (1998). Surgeon–patient communication in the treatment of pancreatic cancer. Archives of Surgery, 133, 962966.Google Scholar
DeGroot, K. I., Boeke, S., Bonke, B. & Passchier, J. (1997). A revaluation of the adaptiveness of avoidant and vigilant coping with surgery. Psychology & Health, 12, 711717.Google Scholar
Delva, D., Vanoost, S., Bijttebier, P., et al. (2002). Needs and feelings of anxiety of relatives of patients hospitalized in intensive care units: implications for social work. Social Work in Health Care, 35, 2140.Google Scholar
Esteghamat, S. S., Moghaddami, S., Esteghamat, S. S., et al. (2014). The course of anxiety and depression in surgical and non-surgical patients. International Journal of Psychiatry in Clinical Practice, 18, 1620.Google Scholar
Janis, I. (1958). Psychological Stress. New York: Wiley.Google Scholar
Johnston, M. (1988). Impending surgery. In Fisher, S. & Reason, J. (eds), Handbook of Life Stress, Cognition and Health (pp. 79100). New York: Wiley.Google Scholar
Johnston, M. & Vögele, C. (1993). Benefits of psychological preparation for surgery: a meta-analysis. Annals of Behavioral Medicine, 15, 245256.Google Scholar
Johnston, M., Foulkes, J., Johnston, D. W., et al. (1999). Impact on patients and partners of inpatient and extended cardiac counseling and rehabilitation: a controlled trial. Psychosomatic Medicine, 61, 225233.Google Scholar
Kain, Z. N., Caldwell-Andrews, A. A., Maranets, I., et al. (2006). Predicting which child–parent pair will benefit from parental presence during induction of anesthesia: a decision-making approach. Anesthesia and Analgesia, 102, 8184.Google Scholar
Kitagawa, R., Yasui-Furukori, N., Tsushima, T., et al. (2011). Depression increases the length of hospitalisation for patients undergoing thoracic surgery: a preliminary study. Psychosomatics, 52, 428432.Google Scholar
LeRoy, S., Elixson, E. M., O’Brien, P., et al. (2003). Recommendations for preparing children and adolescents for invasive cardiac procedures: a statement from the American Heart Association Pediatric Nursing Subcommittee of the council on cardiovascular nursing in collaboration with the council on cardiovascular diseases of the young. Circulation, 108, 25502564.Google Scholar
Ley, P. (1988). Communicating with Patients. London: Croom Helm.Google Scholar
Ludwick-Rosenthal, R. & Neufeld, R. W. J. (1993). Preparation for undergoing an invasive medical procedure: interacting effects of information and coping style. Journal of Consulting and Clinical Psychology, 61, 156164.Google Scholar
Manyande, A., Cyna, A. M., Yip, P., et al. (2015). Non-pharmacological interventions for assisting the induction of anaesthesia in children. Cochrane Database of Systematic Reviews, 7, CD006447.Google Scholar
McAdam, J. L., Dracup, K. A., White, D. B., et al. (2010). Symptom experiences of family members of intensive care unit patients at high risk for dying. Critical Care Medicine, 38, 10781085.Google Scholar
McLean, M., Cleland, J., Worrell, M. & Vögele, C. (2011). ‘What am I going to say here?’ The experiences of doctors and nurses communicating with patients in a cancer unit. Frontiers in Psychology for Clinical Settings, 2(339).Google Scholar
Melnyk, B. M., Alpert-Gillis, L., Feinstein, N. F., et al. (2004). Creating Opportunities for parent empowerment: program effects on the mental health/coping outcomes of critically ill young children and their mothers Pediatrics, 113, e597e607.Google Scholar
Munafò, M. R. & Stevenson, J. (2001). Anxiety and surgical recovery: reinterpreting the literature. Journal of Psychosomatic Research, 51, 589596.Google Scholar
Padilla Fortunatti, C. F. (2014). Most important needs of family members of critical patients in light of the critical care family needs inventory. Investigación y Educación en Enfermería, 32, 306316.Google Scholar
Parks, K. R. (1985). Stressful episodes reported by first year student nurses: a descriptive account. Social Science & Medicine, 20, 945953.Google Scholar
Pederson, J. L., Warkentin, L. M., Majumdar, S. R. & McAlister, F. A. (2016). Depressive symptoms are associated with higher rates of readmission or mortality after medical hospitalisation: a systematic review and meta-analysis. Journal of Hospital Medicine, 11, 373380.Google Scholar
Powell, R., Ahmad, M., Gilbert, F. J., et al. (2015). Improving magnetic resonance imaging (MRI) examinations: development and evaluation of an intervention to reduce movement in scanners and facilitate scan completion. British Journal of Health Psychology, 20, 449465.Google Scholar
Powell, R., Scott, N. A. M., Bruce, J., et al. (2016). Psychological preparation and postoperative outcomes for adults undergoing surgery under general anaesthesia. Cochrane Database of Systematic Reviews, 5, CD008646.Google Scholar
Rennick, J. E. & Rashotte, J. (2009). Psychological outcomes in children following pediatric intensive care unit hospitalisation: a systematic review of the research. Journal of Child Health Care, 13, 128149.Google Scholar
Reynolds, P. M., Sanson-Fisher, R. W., Poole, A., et al. (1981). Cancer and communication: information-giving in an oncology clinic. British Medical Journal, 282, 14491451.Google Scholar
Shipley, R. H., Butt, J. H., Horwitz, B. & Farbry, J. E. (1978). Preparation for a stressful medical procedure: effect of amount of stimulus preexposure and coping style. Journal of Consulting and Clinical Psychology, 46, 499507.Google Scholar
Small, S. P. & Graydon, J. E. (1993). Uncertainty in hospitalized patients with chronic obstructive pulmonary disease. International Journal of Nursing Studies, 30, 239246.Google Scholar
Stochel-Gaudyn, A., Skltadzien, T., Skalski, J. H. & Fyderek, K. (2013). The emotional reactions of parents to the hospitalisation and conservative treatment of children after cardiac surgery in comparison to the parents of children treated for acute infection. Kardiochirurgia I Torakochirurgia Polska, 10, 2730.Google Scholar
Suls, J. & Fletcher, B. (1985). The relative efficacy of avoidant and nonavoidant coping strategies: a meta-analysis. Health Psychology, 4, 249288.Google Scholar
Tamburini, M., Gangeri, L., Brunelli, C., et al. (2003). Cancer patients’ needs during hospitalisation: a quantitative and qualitative study. BMC Cancer, 3(12).Google Scholar
Titler, M. G., Cohen, M. Z. & Craft, M. J. (1991). Impact of adult critical care hospitalisation: perceptions of patients, spouses, children, and nurses. Heart & Lung, 20, 174182.Google Scholar
Van Horn, E. & Tesh, A. (2000). The effect of critical care hospitalisation on family members: stress and responses. Dimensions of Critical Care Nursing, 19, 4049.Google Scholar
Verhaeghe, S., Defloor, T., Van Zuuren, F., et al. (2005). The needs and experiences of family members of adult patients in an intensive care unit: a review of the literature. Journal of Clinical Nursing, 14(4), 501509.Google Scholar
Volicer, B. J. & Bohannon, M. W. (1975). A hospital stress rating scale. Nursing Research, 24, 352359.Google Scholar
Weinman, J. & Johnston, M. (1988). Stressful medical procedures: an analysis of the effects of psychological interventions and of the stressfulness of the procedures. In Maes, S., Defares, P., Sarason, L. G. & Spielberger, C. (eds), Proceedings of the First International Expert Conference on Health Psychology. London: Wiley.Google Scholar
Zigmond, A. S. & Snaith, R. P. (1983). The hospital anxiety and depression scale. Acta Psychiatrica Scandinavica, 67, 361370.Google Scholar

References

Aitken, L. M., Castillo, M. I., Ullman, A., et al. (2016). What is the relationship between elements of ICU treatment and memories after discharge in adult ICU survivors? Australian Critical Care, 29(1), 514.Google Scholar
Castillo, M. I., Cooke, M. L., Macfarlane, B. & Aitken, L. M. (2015). In ICU state anxiety is not associated with posttraumatic stress symptoms over six months after ICU discharge: a prospective study. Australian Critical Care, 29(3), 158164.Google Scholar
Castillo, M. I., Cooke, M. L., Macfarlane, B. & Aitken, L. M. (2016). Trait anxiety but not state anxiety during critical illness was associated with anxiety and depression over 6 months after ICU. Critical Care Medicine, 44(1): 100110.Google Scholar
Davidson, J. E., Jones, C. & Bienvenu, O. J. (2012). Family response to critical illness: postintensive care syndrome-family. Critical Care Medicine, 40(2): 618624.Google Scholar
Davydow, D. S., Gifford, J. M., Desai, S. V., Needham, D. M. & Bienvenu, O. J. (2008). Posttraumatic stress disorder in general intensive care unit survivors: a systematic review. General Hospital Psychiatry, 30(5), 421434.Google Scholar
Davydow, D. S., Gifford, J. M., Desai, S. V., Bienvenu, O. J. & Needham, D. M. (2009). Depression in general intensive care unit survivors: a systematic review. Intensive Care Medicine, 35(5): 796809.Google Scholar
Garrouste-Orgeas, M., Coquet, I., Perier, A., et al. (2012). Impact of an intensive care unit diary on psychological distress in patients and relatives. Critical Care Medicine, 40(7), 20332040.Google Scholar
Jones, C. & Griffiths, R. D., (2007). Patient and caregiver counselling after the intensive care unit: What are the needs and how should they be met? Current Opinions in Critical Care, 13(5), 503507.CrossRefGoogle ScholarPubMed
Kiekkas, P., Theodorakopoulou, G., Spyratos, F. & Baltopoulos, G. (2010). Psychological distress and delusional memories after critical care: a literature review. International Nursing Review, 57, 288296.Google Scholar
Marshall, J. C., Bosco, L., Adhikari, N. K., et al. (2016). What is an intensive care unit (ICU): a report of the Task Force of the World Federation of Societies of Intensive and Critical Care Medicine. Journal of Critical Care, 37, 270276.Google Scholar
Peris, A., Bonizzoli, M., Iozzelli, D., et al. (2011). Early intra-intensive care unit psychological intervention promotes recovery from post traumatic stress disorders, anxiety and depression symptoms in critically ill patients. Critical Care, 15(1), R41.Google Scholar
Smith, G. & Nielsen, M. (1999). Criteria for admission. BMJ, 318(7197), 15441547.Google Scholar
Stoll, C., Kapfhammer, H. P., Rothenhausler, H. B., et al. (1999). Sensitivity and specificity of a screening test to document traumatic experiences and to diagnose post-traumatic stress disorder in ARDS patients after intensive care treatment. Intensive Care Medicine, 25(7): 697704.Google Scholar
Ullman, A. J., Aitken, L. M., Rattray, J., et al. (2014). Diaries for recovery from critical illness (Review). Cochrane Database of Systematic Reviews, 12: CD010468.Google Scholar
van den Born-van Zanten, S. A. (2016). Caregiver strain and posttraumatic stress symptoms of informal caregivers of intensive care unit survivors. Rehabilitation Psychology, 61(2), 173178.Google Scholar
Wade, D. M., Hankins, M., Smyth, D. A., et al. (2014). Detecting acute distress and risk of future psychological morbidity in critically ill patients: validation of the intensive care psychological assessment tool. Critical Care, 18(5), 519.Google Scholar
Walsh, T. S., Salisbury, L. G., Merriweather, J. L., et al. (2015). Increased hospital-based physical rehabilitation and information provision after intensive care unit discharge: the RECOVER Randomized Clinical Trial. JAMA Internal Medicine, 175(6), 901910.Google Scholar
Zigmond, A. S. & Snaith, R. P. (1983). The hospital anxiety and depression scale. Acta Psychiatrica Scandinavica, 67(6), 361370.Google Scholar

References

Bandura, A. (1977). Self-efficacy: toward a unifying theory of behavior change. Psychological Review, 84, 191215.Google Scholar
Bodden-Heidrich, R., Walter, S., Teutenberger, S., et al. (2000). What does a young girl experience in her first gynecological examination? Study on the relationship between anxiety and pain. Journal of Pediatric and Adolescent Gynecology, 13, 139142.Google Scholar
Byrne, P. (1984). Psychiatric morbidity in a gynaecology clinic: an epidemiological survey. British Journal of Psychiatry, 144, 2834.Google Scholar
Dabson, A. M., Magin, P. J., Heading, G. & Pond, D. (2014). Medical students’ experiences learning intimate physical examination skills: a qualitative study. BMC Medical Education, 14, 39.Google Scholar
Dean, J. (1998). Examination of patients with sexual problems. BMJ, 317, 16411643.Google Scholar
Derose, K., Hays, R. D., McCaffrey, D. R. & Baker, D. W. (2001). Does physician gender affect satisfaction of men and women visiting the emergency department? Journal of General Internal Medicine, 16, 218226.Google Scholar
Fiddes, P., Scott, A., Fletcher, J. & Glaiser, A. (2003). Attitudes towards pelvic examination and chaperones: a questionnaire survey of patients and providers. Contraception, 67, 313317.Google Scholar
Frank, J., Thomas, K., Oliver, S., et al. (2001). Couch or crouch? Examining the prostate: a randomized study comparing the knee–elbow and the left-lateral position. BJU International, 87, 331334.Google Scholar
General Medical Council (2013). Intimate examinations and chaperones. www.gmc-uk.org/guidanceGoogle Scholar
Lazare, A. (1987). Shame and humiliation in the medical encounter. Archives of International Medicine, 147, 16531658.Google Scholar
Lodge, N., Mallett, J., Blake, P. & Fryatt, I. (1997). A study to ascertain gynaecological patients’ perceived levels of embarrassment with physical and psychological care given by female and male nurses. Journal of Advanced Nursing, 25, 893907.Google Scholar
Marshall, G. (1994). A comparative study of re-attenders and non-re-attenders for second triennial national breast screening programme appointments. Journal of Public Health Medicine, 16, 7986.Google Scholar
Miller, S. (1987). Monitoring and blunting: validation of a questionnaire to assess styles of information seeking under threat. Journal of Personality and Social Psychology, 52, 345353.Google Scholar
Pickard, S., Baraitser, P., Rymer, J. & Piper, J. (2003). Can gynaecology teaching associates provide high quality effective training for medical students in the United Kingdom? Comparative study. BMJ, 327, 13891392.Google Scholar
Racz, J. M., Srikanthan, A., Hahn, P. M. & Reid, R. L. (2008). Gender preference for a female physician diminishes as women have increased experience with intimate examinations. Journal of Obstetrics and Gynaecology Canada, 30, 910917.Google Scholar
Royal College of Nursing (2006). Chaperoning: The Role of the Nurse and the Rights of Patients. London: RCN.Google Scholar
Seehusen, D. A., Johnson, D. R., Scott Earwood, J., et al. (2006). Improving women’s experience during speculum examinations at routine gynaecological visits: randomized clinical trial. BMJ. https://doi.org/10.1136/bmj.38888.588519.55.Google Scholar
Seymore, C., DuRant, R. H., Jay, M. S., et al. (1986). Influence of position during examination, and sex of examiner on patient anxiety during pelvic examination. Journal of Pediatrics, 108, 2, 312317.Google Scholar
Sörensdotter, R. & Siwe, K. (2016). Touching the private parts: how gender and sexuality norms affect medical students; first pelvic examination. Culture, Health & Sexuality, 2, 114.Google Scholar
Stattin, H., Magnusson, D., Olah, A., Kassin, H. & Yadagiri-Reddy, N. (1991). Perception of threatening consequences of anxiety-provoking situations Anxiety Research, 4, 141166.Google Scholar
Van Ness, C. J. & Lynch, D. A. (2000). Male adolescents and physician sex preference. Archives of Pediatric and Adolescent Medicine, 154, 4953.Google Scholar
Webb, R. & Opdahl, M. (1996). Breast and pelvic examinations: easing women’s discomfort. Canadian Family Physician, 42, 5458.Google Scholar
Wijma, B., Schei, B., Swahnberg, K., et al. (2003). Emotional, physical, and sexual abuse in patients visiting gynaecology clinics: a Nordic cross-sectional study. Lancet, 361, 21072113.Google Scholar
Winterich, J. A., Quandt, S. A., Grzywacz, J. G., et al. (2009). Masculinity and the body: how African-American and white men experience cancer screening exams involving the rectum. American Journal of Mens’ Health, 3, 300309.Google Scholar

References

Albino, J. (2002). A psychologist’s guide to oral diseases and disorders and their treatment. Professional Psychology: Research and Practice, 33, 176182.Google Scholar
Brake, H., Gorter, R., Hoogstraten, J. & Eijkman, M. (2001). Burnout intervention among Dutch dentists: long-term effects. European Journal of Oral Science, 109, 380387.Google Scholar
Dailey, Y., Humphris, G. & Lennon, M. (2002). Reducing patients’ state anxiety in general dental practice: a randomized controlled trial. Journal of Dental Research, 81, 319322.Google Scholar
Gao, X., Lo, E. C., Kot, S. C. & Chan, K. C. (2014). Motivational interviewing in improving oral health: a systematic review of randomized controlled trials. Journal of Periodontology, 85, 426437.Google Scholar
Gatchel, R. (1986). Impact of a videotaped dental fear-reduction program on people who avoid dental treatment. Journal of the American Dental Association, 112, 218221.CrossRefGoogle ScholarPubMed
Harris, R., Gamboa, A., Dailey, Y. & Ashcroft, A. (2012). One-to-one dietary interventions undertaken in a dental setting to change dietary behaviour. Cochrane Database of Systematic Reviews, 3, CD006540. DOI: 10.1002/14651858.CD006540.pub2.Google Scholar
Hayden, C., Bowler, J. O., Chambers, S., et al. (2013). Obesity and dental caries in children: a systematic review and meta-analysis. Community Dentistry and Oral Epidemiology, 41(4):289308.Google Scholar
Humphris, G. & Ling, M. (2000). Behavioural Sciences for Dentistry. Edinburgh: Churchill Livingstone.Google Scholar
Humphris, G. & Weinman, J. (1990). Development of dental health beliefs and their relation to dental health behaviour. In Schmidt, L., Schwenkmezger, J., Weinman, J. & Maes, S. (eds), Theoretical and Applied Aspects of Health Psychology. London: Harwood Academic.Google Scholar
Humphris, G., Blinkhorn, A., Freeman, R., et al. (2002). Psychological stress in undergraduate dental students: baseline results from seven European dental schools. European Journal of Dental Education, 6, 2229.Google Scholar
Humphris, G., Crawford, J. R., Hill, K., Gilbert, A. & Freeman, R. (2013). UK population norms for the modified dental anxiety scale with percentile calculator: adult dental health survey 2009 results. BMC Oral Health, 13, 29.Google Scholar
Innes, N. P., Evans, D. J., Bonifacio, C. C., et al. (2017). The Hall Technique 10 years on: questions and answers. British Dental Journal, 222, 478483.Google Scholar
Kassebaum, N. J., Bernabe, E., Dahiya, M., et al. (2014). Global burden of severe periodontitis in 1990–2010: a systematic review and meta-regression. Journal of Dental Research, 93, 10451053.Google Scholar
Kassebaum, N. J., Bernabe, E., Dahiya, M., et al. (2015). Global burden of untreated caries: a systematic review and metaregression. Journal of Dental Research, 94, 650658.Google Scholar
Kegeles, S. & Lund, A. (1982). Adolescents’ health beliefs and acceptance of a novel preventive dental activity. Health Education Quarterly, 9, 96111.Google Scholar
Kvale, G., Berggren, U. & Milgrom, P. (2004). Dental fear in adults: a meta-analysis of behavioural interventions. Community Dental Oral Epidemiology, 32, 250264.Google Scholar
Lindsay, S., Millar, K. & Jennings, K. (2000). The psychological benefits of dental implants in patients distressed by untolerated dentures. Psychology and Health, 15, 451466.Google Scholar
Locker, D. (2004). Oral health and quality of life. Oral Health and Preventive Dentistry, 2(Suppl. 1), 247253.Google Scholar
McGrath, C. & Bedi, R. (2004). A national study of the importance of oral health to life quality to inform scales of oral health related quality of life. Quality of Life Research, 13, 1318.Google Scholar
Miller, J., Elwood, P. C. & Swallow, J. N. (1975). Dental pain: an incidence study. British Dentistry Journal, 139(8):327328.Google Scholar
Moore, R., Brodsgaard, I. & Rosenberg, N. (2004). The contribution of embarrassment to phobic dental anxiety: a qualitative research study. BMC Psychiatry, 19, 10.Google Scholar
Newton, J. T. & Asimakopoulou, K. (2015). Managing oral hygiene as a risk factor for periodontal disease: a systematic review of psychological approaches to behaviour change for improved plaque control in periodontal management. Journal of Clinical Periodontology, 42 (Suppl. 16), S36S46.Google Scholar
Scheerman, J. F., van Loveren, C., van Meijel, B., et al. (2016). Psychosocial correlates of oral hygiene behaviour in people aged 9 to 19: a systematic review with meta-analysis. Community Dentistry and Oral Epidemiology, 44, 331341.Google Scholar
Schuz, B., Sniehotta, F. F. & Schwarzer, R. (2007). Stage-specific effects of an action control intervention on dental flossing. Health Education Research, 22, 332341.Google Scholar
Sondell, K., Soderfeldt, B. & Palmqvist, S. (2004). Underlying dimensions of verbal communication between dentists and patients in prosthetic dentistry. Patient Education and Counselling, 50, 157165.Google Scholar
Tomar, S. & Asma, S. (2000). Smoking-attributable periodontitis in the United States: findings from NHANES III. National Health and Nutrition Examination Survey. Journal of Periodontology, 71, 743751.Google Scholar
Watt, R. G. & Sheiham, A. (2012). Integrating the common risk factor approach into a social determinants framework. Community Dentistry and Oral Epidemiology, 40, 289296.Google Scholar

References

Bednall, C. & Bove, L. L. (2011). Donating blood: a meta-analytic review of self-reported motivators and deterrents. Transfusion Medicine Reviews, 25, 317334.Google Scholar
Behavioural Insights Team. (2013). Applying Behavioural Insights to Organ Donation: preliminary results from a randomised controlled trial. www.behaviouralinsights.co.uk/publications/applying-behavioural-insights-to-organ-donation/.Google Scholar
Cotte, J., Coulter, R. A. & Moore, M. (2005). Enhancing and disrupting guilt: the role of credibility and perceived manipulative intent. Journal of Business Research, 58, 361368.Google Scholar
Csillag, C. (1998). Brazil abolishes ‘presumed consent’ in organ donation. Lancet, 352(9137), 1367.Google Scholar
Fabre, J., Murphy, P. & Matesanz, R. (2010). Presumed consent: a distraction in the quest for increasing rates of organ donation. BMJ, 341, c4973c4973.Google Scholar
Fehr, E. & Schmidt, K. M. (1999). A theory of fairness, competition and cooperation. Quarterly Journal of Economics, 114, 817868.Google Scholar
Ferguson, E. (2015). Mechanisms of altruism approach to blood donor recruitment and retention: a review and future directions. Transfusion Medicine, 25, 211226.Google Scholar
Ferguson, E. & Lawrence, C. (2015). Blood donation and altruism: the mechanism of altruism approach. ISBT Science Series, 11(Suppl. 1), 148157.Google Scholar
Ferguson, E., Farrell, K. & Lawrence, C. (2008). Blood donation is an act of benevolence rather than altruism. Health Psychology, 27, 327336. DOI: 10.1037/0278-6133.27.3.327.Google Scholar
Ferguson, E., Atsma, F., de Kort, W. & Veldhuizen, I. (2012). Exploring the pattern of blood donor beliefs in first time, novice and experienced donors: differentiating reluctant altruism, pure altruism, impure altruism and warm-glow. Transfusion, 52, 343355.Google Scholar
France, C. R., Kawalsky, J. M., France, J. L., et al. (2014). The blood donor identity survey: a multidimensional measure of blood donor motivations. Transfusion, 54, 20982105.Google Scholar
Greinacher, A., Fendrich, K., Alpen, U. & Hoffman, W. (2007). Impact of demographic changes on the blood supply: Meckenburg-West Pomerania as a model region for Europe. Transfusion, 47, 395401.Google Scholar
Henderson, A. J. Z., Landolt, M. A., McDonald, M. F., et al. (2003). The living anonymous kidney donor: lunatic or saint? American Journal of Transplantation: Official Journal of the American Society of Transplantation and the American Society of Transplant Surgeons, 3(2), 203213.Google Scholar
Johnson, E. J. & Goldstein, D. G. (2003). Do defaults save lives? Science, 302(5649), 13381339.Google Scholar
Lacetera, N., Macis, M. & Slonim, R. (2013). Economic rewards to motivate blood donation. Science, 340, 927928.Google Scholar
Landry, D. W. (2006). Voluntary reciprocal altruism: a novel strategy to encourage deceased organ donation. Kidney International, 69(6), 957959.Google Scholar
Maple, H., Chilcot, J., Burnapp, L., et al. (2014). Motivations, outcomes, and characteristics of unspecified (nondirected altruistic) kidney donors in the United Kingdom. Transplantation, 98(11), 11821189.Google Scholar
Mellstrom, C. & Johannesson, M. (2008). Crowding out in blood donation: was Titmuss right? Journal of the European Economic Assocition, 6, 845863.Google Scholar
Morgan, S. E., Stephenson, M. T., Harrison, T. R., Afifi, W. A. & Long, S. D. (2008). Facts versus ‘feelings’: how rational is the decision to become an organ donor? Journal of Health Psychology, 13(5), 644658.Google Scholar
NHSBT (2012–13). Annual Review 2012–13: Saving and Improving Lives 2020.Google Scholar
O’Carroll, R. E., Foster, C., McGeechan, G., Sandford, K. & Ferguson, E. (2011). The ‘ick’ factor, anticipated regret, and willingness to become an organ donor. Health Psychology, 30(2), 236245.Google Scholar
O’Carroll, R. E., Shepherd, L., Hayes, P. C. & Ferguson, E. (2016). Anticipated regret and organ donor registration: a randomized controlled trial. Health Psychology. http://doi.org/10.1037/hea0000363.Google Scholar
Schreiber, G. B., Sharma, U. K., Wright, D. J., et al. (2005). First-year donation patterns predict long-term commitment for first time donors. Vox Sanguinis, 88, 114121.Google Scholar
Shaz, B. H., Zimring, J. C., Demmons, D. G. & Hillyer, C. D. (2008). Blood donation and blood transfusion: special considerations for African Americans. Transfusion Medicine Review, 22, 202214.Google Scholar
Shepherd, L., O’Carroll, R. E. & Ferguson, E. (2014). An international comparison of deceased and living organ donation/transplant rates in opt-in and opt-out systems: a panel study. BMC Medicine, 12(1), 131.Google Scholar
Zou, S., Stramer, S. L. & Dodd, R. Y. (2012). Donor testing and risk: current prevalence, incidence, and residual risk of transfusion-transmissible agents in US allogenic donations. Transfusion Medicine Review, 26, 119128.Google Scholar

References

Adriane Labs (2015). The Serious Illness Conversation Guide. www.ariadnelabs.org/wp-content/uploads/sites/2/2015/08/Serious-Illness-Conversation-Guide-5.22.15.pdf (accessed 1 February 2017).Google Scholar
Anderson, J. R. & Barrett, R. L. (eds). (2001). Ethics in HIV-Related Psychotherapy: Clinical Decision Making in Complex Cases. Washington, DC: American Psychological Association.Google Scholar
Bernacki, R., Hutchings, M., Vick, J., et al. (2015). Development of the Serious Illness Care Program: a randomised controlled trial of a palliative care communication intervention. BMJ Open, 5(10).Google Scholar
Carolan, C. M., Smith, A. & Forbat, L. (2015). Conceptualising psychological distress in families in palliative care: findings from a systematic review. Palliative Medicine, 23. DOI: 10.1177/0269216315575680.Google Scholar
Chochinov, H. M. (2001). Dignity-conserving care: a new model for palliative care – helping the patient feel valued. Journal of the American Medical Association, 287(17), 22532260.Google Scholar
Chochinov, H. M., Johnston, W., McClement, S. E., et al. (2016). Dignity and distress towards the end of life across four non-cancer populations. PloS One, 11(1).Google Scholar
Deshields, T. L. & Nanna, S. K. (2010). Providing care for the ‘whole patient’ in the cancer setting: the psycho-oncology consultation model of patient care Journal of Clinical Psychology in Medical Settings, 17 (3), 249257.Google Scholar
Fitchett, G., Emanuel, L., Handzo, G., Boyken, L. & Wilkie, D. J. (2015). Care of the human spirit and the role of dignity therapy: a systematic review of dignity therapy research. BMC Palliative Care, 14(1), 1.Google Scholar
Franks, H. M. & Roesch, S. C. (2006). Appraisals and coping in people living with cancer: a meta‐analysis. Psycho‐Oncology, 15(12), 10271037.Google Scholar
Galfin, J., Watkins, E. & Harlow, T. (2012). A brief guided self-help intervention for psychological distress in palliative care patients: a randomised controlled trial. Palliative Medicine, 26, 197205.Google Scholar
Hayes, R. D., Lee, W., Rayner, L., et al. (2012). Gender differences in prevalence of depression among patients receiving palliative care: the role of dependency. Palliative Medicine, 26(5), 696702.Google Scholar
Horwitz, A. V. & Wakefield, J. C. (2007). The Loss of Sadness: How Psychiatry Transformed Normal Sorrow Into Depressive Disorder. Oxford: Oxford University Press.Google Scholar
Jünger, S., Payne, S., Costantini, A., Kalus, C. & Werth, J. L. (2010). EAPC task force on education for psychologists in palliative care. European Journal of Palliative Care, 17(2), 8487.Google Scholar
Kreutzer, J. S., Kolakowsky-Hayner, S. A., Demm, S. R. & Meade, M. A. (2002). A structured approach to family intervention after brain injury. The Journal of Head Trauma Rehabilitation, 17(4), 349367.Google Scholar
Lloyd-Williams, M. L. & Payne, S. (2003). A qualitative study of clinical nurse specialists’ views on depression in palliative care patients. Palliative Medicine, 17(4), 334338.Google Scholar
Murray, S. (2016). Set a low bar for starting palliative care: dying patients and their families most need support early on. BMJ. https://doi.org/10.1136/bmj.i3598.Google Scholar
Quill, T. E. & Abernethy, A. P. (2013). Generalist plus specialist palliative care: creating a more sustainable model. New England Journal of Medicine, 368(13), 11731175.Google Scholar
Rayner, L., Loge, J. H., Wasteson, E. & Higginson, I. J. (2009). The detection of depression in palliative care. Current Opinion in Supportive and Palliative Care, 3(1), 5560.Google Scholar
Schippers, M. C., West, M. A. & Dawson, J. F. (2015). Team reflexivity and innovation: the moderating role of team context. Journal of Management, 41(3), 769788.Google Scholar
Scottish Government (2015). Strategic Framework for Action on Palliative and End of Life Care. Edinburgh: Scottish Government.Google Scholar
Temel, J. S., Greer, J. A., Muzikansky, A., et al. (2010). Early palliative care for patients with metastatic non-small-cell lung cancer. New England Journal of Medicine, 363(8), 733742.Google Scholar
White, C. A. (2015). Physical health problems. In Tarrier, N. & Johnson, J. (eds), Case Formulation in Cognitive Behaviour Therapy: The Treatment of Challenging and Complex Cases. London: Routledge.Google Scholar
World Health Organization (2017). WHO definition of palliative care. www.who.int/cancer/palliative/definition/en/ (accessed 4 January 2017).Google Scholar

References

Baldwin, D. S., Aitchison, K., Bateson, A., et al. (2014). Benzodiazepines: risks and benefits. A reconsideration. Focus, 12(2): 229234.Google Scholar
Barker, M. J., Greenwood, K. M., Jackson, M. & Crowe, S. F. (2004). Persistence of cognitive effects after withdrawal from long-term benzodiazepine use: a meta-analysis. Archives of Clinical Neuropsychology, 19(3): 437454.Google Scholar
CMO. (2016). UK Chief Medical Officers’ low risk drinking guidelines. www.gov.uk/government/uploads/system/uploads/attachment_data/file/545937/UK_CMOs__report.pdf.Google Scholar
Cohen, P. J. (2009). Medical marijuana: the conflict between scientific evidence and political ideology. Part one of two. Journal of Pain and Palliative Care Pharmacotherapy, 23(1), 425.Google Scholar
Connor, J. P., Haber, P. S. & Hall, W. D. (2016). Alcohol use disorders. Lancet, 387(10022), 988998.Google Scholar
Cook, J., Lloyd‐Jones, D., Ogden, E. & Bonomo, Y. (2015). Medical use of cannabis: an addiction medicine perspective. Internal Medicine Journal, 45(6), 677680.Google Scholar
Dargan, P. I., Hudson, S., Ramsey, J. & Wood, D. M. (2011). The impact of changes in UK classification of the synthetic cannabinoid receptor agonists in ‘Spice’. International Journal of Drug Policy, 22(4), 274277.CrossRefGoogle ScholarPubMed
Ellis, P. (2004). Australian and New Zealand clinical practice guidelines for the treatment of depression. The Australian and New Zealand Journal of Psychiatry, 38(6), 389407.Google Scholar
Gaynes, B. N., Lloyd, S. W., Lux, L., et al. (2014). Repetitive transcranial magnetic stimulation for treatment-resistant depression: a systematic review and meta-analysis. Journal of Clinical Psychiatry, 75, 477489.Google Scholar
Heltsley, R., Shelby, M. K., Crouch, D. J., et al. (2012). Prevalence of synthetic cannabinoids in US athletes: initial findings. Journal of Analytical Toxicology, 36(8), 588593.Google Scholar
Insel, T. R. (2010). Rethinking schizophrenia. Nature, 468(7321), 187193.Google Scholar
Kalkhoran, S. & Glantz, S. A. (2016). E-cigarettes and smoking cessation in real-world and clinical settings: a systematic review and meta-analysis. Lancet Respiratory Medicine, 4(2), 116128.Google Scholar
Lancaster, T., Stead, L., Silagy, C. & Sowden, A. (2000). Effectiveness of interventions to help people stop smoking: findings from the Cochrane Library. BMJ, 321(7257), 355.Google Scholar
Leucht, S., Komossa, K., Rummel-Kluge, C., et al. (2009). A meta-analysis of head-to-head comparisons of second-generation antipsychotics in the treatment of schizophrenia. American Journal of Psychiatry, 166(2), 152163.Google Scholar
Mills, E. J., Wu, P., Lockhart, I., et al. (2012). Comparisons of high-dose and combination nicotine replacement therapy, varenicline, and bupropion for smoking cessation: a systematic review and multiple treatment meta-analysis. Annals of Medicine, 44(6), 588597.Google Scholar
Mortati, K., Dworetzky, B. & Devinsky, O. (2007). Marijuana: an effective antiepileptic treatment in partial epilepsy? A case report and review of the literature. Reviews in Neurological Diseases, 4(2), 103106.Google Scholar
New, A. S. & Stanley, B. (2010). An opioid deficit in borderline personality disorder: self-cutting, substance abuse, and social dysfunction. American Journal of Psychiatry, 167(8), 882885.Google Scholar
Ogawa, Y., Tajika, A., Takeshima, N., Hayasaka, Y. & Furukawa, T. A. (2014). Mood stabilizers and antipsychotics for acute mania: a systematic review and meta-analysis of combination/augmentation therapy versus monotherapy. CNS drugs, 28(11), 9891003.Google Scholar
Pariente, A., de Gage, S. B., Moore, N. & Bégaud, B. (2016). The benzodiazepine–dementia disorders link: current state of knowledge. CNS drugs, 30(1), 17.Google Scholar
Parrott, A. C. (2013). Human psychobiology of MDMA or ‘Ecstasy’: an overview of 25 years of empirical research. Human Psychopharmacology: Clinical and Experimental, 28(4): 289307.Google Scholar
Parrott, A. C. (2014). The potential dangers of using MDMA for psychotherapy. Journal of Psychoactive Drugs, 46(1), 3743.Google Scholar
Parrott, A. C. & Murphy, R. S. (2012). Explaining the stress‐inducing effects of nicotine to cigarette smokers. Human Psychopharmacology: Clinical and Experimental, 27(2), 150155.Google Scholar
Rosenbaum, C. D., Carreiro, S. P. & Babu, K. M. (2012). Here today, gone tomorrow… and back again? A review of herbal marijuana alternatives (K2, Spice), synthetic cathinones (bath salts), kratom, Salvia divinorum, methoxetamine, and piperazines. Journal of Medical Toxicology, 8(1), 1532.Google Scholar
Sachdeva, A., Choudhary, M. & Chandra, M. (2015). Alcohol withdrawal syndrome: benzodiazepines and beyond. Journal of Clinical and Diagnostic Research, 9(9), VE01.Google Scholar
Smith, G. W., Farrell, M., Bunting, B. P., Houston, J. E. & Shevlin, M. (2011). Patterns of polydrug use in Great Britain: findings from a national household population survey. Drug and Alcohol Dependence, 113(2), 222228.Google Scholar
Stead, L. F., Perera, R., Bullen, C., Mant, D. & Lancaster, T. (2008). Nicotine replacement therapy for smoking cessation. Cochrane Database of Systematic Reviews, 11, CD000146.Google Scholar
Thompson, J., Neave, N., Moss, M., et al. (1999). Sedation: cognitive properties of sedation agents – comparison of the effects of nitrous oxide and midazolam on memory and mood. British Dental Journal, 187(10), 557562.Google Scholar
Valente, M. J., Guedes de Pinho, P., de Lourdes Bastos, M., Carvalho, F. & Carvalho, M. (2014). Khat and synthetic cathinones: a review. Archives on Toxicology, 88(1), 1545.Google Scholar
Walker, E., Kestler, L., Bollini, A., & Hochman, K. M. (2004). Schizophrenia: etiology and course. Annual Reviews in Psychology, 55, 401430.Google Scholar
Wingerchuk, D. (2004). Cannabis for medical purposes: cultivating science, weeding out the fiction. Lancet, 364(9431),315316.Google Scholar

References

Arber, A., Faithfull, S., Plaskota, M., Lucas, C. & De Vries, K. (2010). A study of patients with a primary malignant brain tumour and their carers: symptoms and access to services. International Journal of Palliative Nursing, 16, 2430.Google Scholar
Bentzen, S. G. H. & Al, C. E. (2005). Towards evidence-based guidelines for radiotherapy infrastructure and staffing needs in Europe: the ESTRO QUARTS project. Radiotherapy and Oncology, 75, 355365.Google Scholar
Blazquez, H. & Cruzado, J. (2016). A longitudinal study on anxiety, depressive and adjustment disorder, suicide ideation and symptoms of emotional distress in patients with cancer undergoing radiotherapy. Journal of Psychosomatic Research, 87, 1421.Google Scholar
Browall, M., Ahlberg, K., Karlsson, P., et al. (2008). Health-related quality of life during adjuvant treatment for breast cancer among postmenopausal women. European Journal of Oncology Nursing, 12, 180189.Google Scholar
Dieng, C. A., Kasparian, N. A., Mann, G. J. & Morton, R. L. (2016). Economic evaluations of psychosocial interventions in cancer: a systematic review. Psychooncology, 25, 13801392.Google Scholar
Dunn, J., Steginga, S. K., Rose, P., et al. (2004). Evaluating patient education materials about radiation therapy. Patient Education and Counseling, 52, 325332.Google Scholar
Edelstein, K., Richard, N. & Bernstein, L. (2017). Neurocognitive impairment of cranial radiation in adults with cancer: an update of recent findings. Current Opinion in Supportive and Palliative Care, 11, 3237.Google Scholar
Faithfull, S., Cockle-Hearne, J. & Khoo, V. (2011). Self-management after prostate cancer treatment: evaluating the feasibility of providing a cognitive and behavioural programme for lower urinary tract symptoms. BJU International, 107, 783790.Google Scholar
Faithfull, S., Lemanska, A. & Chen, T. (2015). Patient-reported outcome measures in radiotherapy: clinical advances and research opportunities in measurement for survivorship. Clinical Oncology, 27, 679685.Google Scholar
Fritzsche, K., Liptai, C. & Henke, M. (2004). Psychosocial distress and need for psychotherapeutic treatment in cancer patients during radiotherapy. Radiotherapy and Oncology, 72, 138189.Google Scholar
González-Arriagada, W., De Andrade, M., Ramos, L., et al. (2013). Evaluation of an educational video to improve the understanding of radiotherapy side effects in head and neck cancer patients. Supportive Care in Cancer, 21, 20072015.Google Scholar
Greene-Schlosser, D. & Me, R. (2012). Radiation-induced cognitive impairment:from bench to bedside. Neuro-Oncology., 14, 3744.Google Scholar
Halkett, G. K. B., Kristjanson, L. J. & Lobb, E. (2012). Information needs and preferences of women as they proceed through radiotherapy for breast cancer. Patient Education and Counseling, 86, 396404.Google Scholar
Hess, C. & Chen, A. (2014). Measuring psychosocial functioning in the radiation oncology clinic. Psychooncology, 23, 841854.Google Scholar
Howren, M., Christensen, A., Karnell, L. & Funk, G. (2014). Psychological factors associated with head and neck cancer treatment and survivorship: evidence and opportunities for behavioral medicine. Journal of Consulting and Clinical Psychology, 81, 299317.Google Scholar
Jacobsson, S., Ekman, T. & Ahlberg, K. (2015). Living through pelvic radiotherapy: a mixed study of self care activities and distressful symptoms. European Journal of Oncology Nursing, 19, 301309.Google Scholar
Kangas, M., Milross, C., Taylor, A. & Bryant, R. (2013). A pilot randomized controlled trial of a brief early intervention for reducing posttraumatic stress disorder, anxiety and depressive symptoms in newly diagnosed head and neck cancer patients. Psychooncology, 22, 16651673.Google Scholar
Kuderer, N. M. & Wolff, A. C. (2014). Enhancing therapeutic decision making when options abound: toxicities matter. Journal of Clinical Oncology, 32, 19901993.Google Scholar
Kunneman, M., Marijnen, C., Baas-Thijssen, M., et al. (2015). Considering patient values and treatment preferences enhances patient involvement in rectal cancer treatment decision making. Radiotherapy and Oncology, 117, 338342.Google Scholar
Magnusson, W., Mahal, A. & Yu, J. (2016). Emerging technologies and techniques in radiation therapy. Seminars in Radiation Oncology, 27, 3442.Google Scholar
McCorkle, R., Ercolano, E., Lazenby, M., et al. (2011). Self-management: enabling and empowering patients living with cancer as a chronic illness. CA: A Cancer Journal for Clinicians, 61, 5062.Google Scholar
Merchant, S., O’Connor, M. & Halkett, G. (2017). Time, space and technology in radiotherapy departments: how do these factors impact on patients’ experinces of radiotherapy? European Journal of Cancer Care (England), 26.Google Scholar
Meyer, T. A. & Mark, M. (1995). Effects of psychosocial interventions with adult cancer patients: a meta-analysis of randomised experiments. Health Psychology, 14, 101108.Google Scholar
Mitchell, A., Chan, M., Bhatti, H., et al. (2011). Prevalence of depression, anxiety, and adjustment disorder in oncological, haematological, and palliative-care settings: a meta-analysis of 94 interview-based studies. Lancet Oncology, 12, 160174.Google Scholar
Mohan, R. & Grosshans, D. (2016). Proton therapy: present and future. Advanced Drug Delivery Reviews. DOI: 10.1016/j.addr.2016.11.006.Google Scholar
Neilson, K., Pollard, A., Boonzair, A., et al. (2013). A longitudinal study of distress (depression and anxiety) up to 18 months after radiotherapy for head and neck cancer. Psychooncology, 22, 18431848.Google Scholar
Newell, S. A., Sanson-Fisher, R. W. & Johanna, S. N. (2002). Systematic review of psychological therapies for cancer patients: overview and recommendations for future research. Journal of the National Cancer Institute, 94, 558584.Google Scholar
Pollard, A., Burchell, J., Castle, D., et al. (2017). Individualised mindfulness-based stress reduction for head and neck cancer patients undergoing radiotherapy of curative intent: a descriptive pilot study. European Journal of Cancer Care, 26, e12474.Google Scholar
Rutten, L., Arora, N., Bakos, A., Aziz, N. & Rowland, J. (2005). Information needs and sources of information among cancer patients: a systematic review of research (1980–2003). Patient Education and Counseling, 57, 250261.Google Scholar
Schnur, J. B., Ouellette, S. C., Bovbjerg, D. H. & Gh, M. (2009). Breast cancer patients’ experience of external-beam radiotherapy. Qualitative Health Research, 19, 668676.Google Scholar
Sohl, S., Schnur, J., Sucala, M., et al. (2012). Distress and emotional well-being in breast cancer patients prior to radiotherapy: an expectancy-based model. Psychology and Health, 27, 347361.Google Scholar
Stiegelis, H., Hagedoorn, M., Sanderman, R., et al. (2003). The impact of an informational self-management intervention on the association between control and illness uncertainty before and psychological distress after radiotherapy. Psychooncology, 13, 248259.Google Scholar
Stiegelis, H. E., Hagedoorn, M., Sanderman, R., et al. (2004a). The impact of an informational self-management intervention on the association between control and illness uncertainty before and psychological distress after radiotherapy. Psychooncology, 13(4):248259.Google Scholar
Stiegelis, H. E., Ranchor, A. V. & Sanderman, R. (2004b). Psychological functioning in cancer patients treated with radiotherapy. Patient Education and Counseling, 52, 131141.Google Scholar
Tallet, A., Azria, D., Barlesi, F., et al. (2012). Neurocognitive function impairment after whole brain radiotherapy for brain metastases: actual assessment. Radiation Oncology, 7.Google Scholar
Trippa, F., Draghini, L., Arcidiacono, F. & Maranzano, E. (2014). Radiation-induced neurocognitive deficits in patients with brain metastases. Reviews in Oncology, 2, 8791.Google Scholar
Welzel, G., Steinvorth, S. & Wenz, F. (2005). Cognitive effects of chemotherapy and/or cranial irradiation in adults. Strahlenther Onkol, 181, 141156.Google Scholar
Wengstrom, Y., Strander, H. & Forsberg, C. (2000). Perceived symptoms and quality of life in women with breast cancer receiving radiation therapy. European Journal of Oncology Nursing, 4, 2888.Google Scholar
Williams, K., Blencowe, J., Ind, M. & Willis, D. (2017). Meeting radiation therapy patients informational needs through educational videos augmented by 3D visualisation software. Journal of Medical Radiation Sciences. DOI: 10.1002/jmrs.220Google Scholar
Yi-Shan, W., Pao-Yen, L., Chih-Yen, C., et al. (2016). Anxiety and depression in patients with head and neck cancer: 6 months follow-up study. Neuropsychiatric Disease Treatment, 12, 10291036.Google Scholar
Zeguers, M., De Haes, H. C. & Zandbelt, L. C. (2012). The information needs of new radiotherapy patients: how to measure? Do they want to know everything? And if not, why? International Journal of Radiation Oncology Biology Physics, 82, 418424.Google Scholar

References

American Society of Plastic Surgeons (2017). 2017 Plastic Surgery Statistics Report. https://www.plasticsurgery.org/documents/News/Statistics/2016/plastic-surgery-statistics-full-report-2016.pdf (accessed 09 May 2018).Google Scholar
Ashikali, E.-M., Dittmar, H. & Ayers, S. (2015). The impact of cosmetic surgery advertising on women’s body image and attitudes towards cosmetic surgery. Psychology of Popular Media Culture. http://dx.doi.org/10.1037/ppm0000099.Google Scholar
Callaghan, G. M., Lopez, A., Wong, L., Northcross, J. & Anderson, K. R. (2011). Predicting consideration of cosmetic surgery in a college population: a continuum of body image disturbance and the importance of coping strategies. Body Image, 8(3), 267274. http://dx.doi.org/10.1016/j.bodyim.2011.04.002.Google Scholar
Crerand, C. E., Franklin, M. E. & Sarwer, D. B. (2006). Body dysmorphic disorder and cosmetic surgery. Plastic and Reconstructive Surgery, 118(7), 167e180e. DOI: 10.1097/01.prs.0000242500.28431.24.Google Scholar
Crockett, R. J., Pruzinsky, T. & Persing, J. A. (2007). The influence of plastic surgery ‘reality TV’ on cosmetic surgery patient expectations and decision making. Plastic and Reconstructive Surgery, 120(1), 316324. DOI: 10.1097/01.prs.0000264339.67451.71.Google Scholar
Denford, S., Harcourt, D., Rubin, L. & Pusic, A. (2011). Understanding normality: a qualitative analysis of breast cancer patients’ concepts of normality after mastectomy and reconstructive surgery. Psycho‐Oncology, 20(5), 553558. DOI: 10.1002/pon.1762.Google Scholar
Duraes, E. F., Durand, P., Duraes, L. C., et al. (2016). Comparison of preoperative quality of life in breast reconstruction, breast aesthetic and non-breast plastic surgery patients: a cross-sectional study. Journal of Plastic, Reconstructive & Aesthetic Surgery, 69(11), 14781485.Google Scholar
Fauerbach, J. A., Spence, R. J. & Patterson, D. R. (2006). Adult burn injury. In Sarwer, D., Pruzinsky, T., Cash, T.F., et al. (eds), Psychological Perspectives of Reconstructive and Cosmetic Surgery: Clinical, Empirical, and Ethical Considerations (pp. 105124). Philadelphia, PA: Lippincott Williams & Wilkins.Google Scholar
Fingeret, M. C., Nipomnick, S. W., Crosby, M. A. & Reece, G. P. (2013). Developing a theoretical framework to illustrate associations among patient satisfaction, body image and quality of life for women undergoing breast reconstruction. Cancer Treatment Reviews, 39(6), 673681. http://dx.doi.org/10.1016/j.ctrv.2012.12.010.Google Scholar
Fingeret, M. C., Teo, I. & Epner, D. E. (2014). Managing body image difficulties of adult cancer patients: lessons from available research. Cancer, 120(5), 633641. DOI: 10.1002/cncr.28469.Google Scholar
Frierson, G. M. & Andersen, B. L. (2006). Breast reconstruction. In Sarwer, D., Pruzinsky, T., Cash, T.F., et al. (eds), Psychological Perspectives of Reconstructive and Cosmetic Surgery: Clinical, Empirical, and Ethical Considerations (pp. 173188). Philadelphia, PA: Lippincott Williams & Wilkins.Google Scholar
Graham, N. (2010). The hard sell in cosmetic surgery advertising. British Medical Journal, 340, c1223.Google Scholar
Harcourt, D. (2012). Plastic surgery: breast reconstruction and breast reduction. In Cash, T. (ed.). Encyclopedia of Body Image and Human Appearance (pp. 275281). San Diego, CA: Academic Press.Google Scholar
Harcourt, D. M., Rumsey, N. J., Ambler, N. R., et al. (2003). The psychological effect of mastectomy with or without breast reconstruction: a prospective, multicenter study. Plastic and Reconstructive Surgery, 111(3), 10601068. DOI: 10.1097/01.PRS.0000046249.33122.76.Google Scholar
Sarwer, D. B., Wadden, T. A., Pertschuk, M. J. & Whitaker, L. A. (1998). The psychology of cosmetic surgery: a review and reconceptualization. Clinical Psychology Review, 18(1), 122. http://dx.doi.org/10.1016/S0272-7358(97)00047-0.Google Scholar
Sarwer, D. B., Infield, A. L., Baker, J. L., et al. (2008). Two-year results of a prospective, multi-site investigation of patient satisfaction and psychosocial status following cosmetic surgery. Aesthetic Surgery Journal, 28(3), 245250. DOI: 10.1016/j.asj.2008.02.003.Google Scholar
von Soest, T., Kvalem, I. L., Skolleborg, K. C. & Roald, H. E. (2006). Psychosocial factors predicting the motivation to undergo cosmetic surgery. Plastic and Reconstructive Surgery, 117(1), 5162. DOI: 10.1097/01.prs.0000194902.89912.f1.Google Scholar
von Soest, T., Kvalem, I. L., Skolleborg, K. C. & Roald, H. E. (2011). Psychosocial changes after cosmetic surgery: a 5-year follow-up study. Plastic and Reconstructive Surgery, 128(3), 765772. DOI: 10.1097/PRS.0b013e31822213f0.Google Scholar
Yurek, D., Farrar, W. & Andersen, B. L. (2000). Breast cancer surgery: comparing surgical groups and determining individual differences in postoperative sexuality and body change stress. Journal of Consulting and Clinical Psychology, 68(4), 697709. http://dx.doi.org/10.1037/0022–006X.68.4.697Google Scholar

References

Anderson, J. E., Jamieson, D. J., Warner, L., et al. (2012). Contraceptive methods among married adults: national data on who chooses vasectomy and tubal ligation. Contraception, 85, 552557.Google Scholar
Baldé, A., Légaré, F. & Labrecque, M. (2006). Assessment of needs of men for decision support on male sterilization. Patient Education and Counselling, 2006, 301307.Google Scholar
Cooper, P., Bledin, K. D., Brice, B. & MacKenzie, S. (1985). Effects of female sterilization: one year follow-up in a prospective controlled study of psychological and psychiatric outcome. Journal of Psychosomatic Research, 29, 1322.Google Scholar
Curtis, K. M., Mohllajee, A. P. & Peterson, H. B. (2006). Regret following female sterilisation at a young age: a systematic review. Contraception, 73, 205210.Google Scholar
Gath, D. & Cooper, P. J. (1983). Psychiatric aspects of hysterectomy and female sterilization. Recent Advances in Clinical Psychiatry, 5, 75100.Google Scholar
Hofmeyr, D. G. & Greeff, A. P. (2002). The influence of a vasectomy on the marital relationship and sexual satisfaction of the married man. Journal of Sexual and Marital Therapy, 28, 339351.Google Scholar
Jayaraman, S. & Mann, M. (2013). Male and female sterilization. Obstetrics, Gynaecology and Reproductive Medicine, 22, 8591.Google Scholar
Joshi, R., Khadilkar, S. & Patel, M. (2015). Global trends in use of long-acting reversible and permanent methods of contraception: seeking a balance. International Journal of Gynaecology and Obstetrics, 131, S60S63.Google Scholar
Kariminia, A., Saunders, D. M. & Chamberlain, M. (2002). Risk factors for strong regret and subsequent IVF request after having tubal ligation. Australia and New Zealand Journal of Obstetrics and Gynaecology, 42, 526529.Google Scholar
Kelekci, S., Erdemoglu, E., Kutluk, S., Yilmaz, B. & Savan, K. (2005). Risk factors for tubal ligation: regret and psychological effects impact of Beck depression inventory. Contraception, 71, 417420.Google Scholar
Mattinson, A. & Mansour, D. (2003). Female sterilisation: is it what women really want? Journal of Family Planning and Reproductive Health Care, 29, 136139.Google Scholar
Miller, W. B., Shain, R. N. & Pasta, D. J. (1991a). Tubal sterilization or vasectomy: how do married couples make the choice? Fertility and Sterility, 56, 278284.Google Scholar
Miller, W. B. Shain, R. N. & Pasta, D. J. (1991b). The predictors of post-sterilization regret in married women. Journal of Applied Social Psychology, 21, 10831010.Google Scholar
Philiber, S. D. & Philiber, W. W. (1985). Social and psychological perspectives in voluntary sterilization: a review. Studies in Family Planning, 6, 129.Google Scholar
Rogstad, K. E. (1996). The psychological effects of vasectomy. Sexual and Marital Therapy, 11, 265272.Google Scholar
Rowlands, S. & Hannaford, P. (2003). The incidence of sterilisation in the UK. British Journal of Gynaecology, 110, 819824.Google Scholar
Schreffer, K. M., Greil, A. L., McQuillan, J. & Gallus, K. L. (2016). Reasons for tubal ligation, regret and depressive symptoms. Journal of Reproductive and Infant Psychology, 34, 304313.Google Scholar
Shain, R. N., Miller, W. B., Holden, A. E. C. & Rosenthal, M. (1991). Impact of tubal sterilization and vasectomy on female marital sexuality: results of a controlled longitudinal study. American Journal of Obstetrics and Gynaecology, 64, 763771.Google Scholar
Smith, A., Lyons, A., Ferris, J., et al. (2010). Are sexual problems more common in men who have had a vasectomy? A population-based study of Australian men. The Journal of Sexual Medicine, 7, 736742.Google Scholar
Thonneau, P. & D’Isle, B. (1990). Does vasectomy have long-term effects on somatic and psychological health status? International Journal of Andrology, 13, 419432.Google Scholar

References

Arpino, L., Iavarone, A., Parlato, C., Moraci, A. (2004). Prognostic role of depression after lumbar disc surgery. Neurological Sciences, 3, 145147.Google Scholar
Bruce, J., Thornton, A. J., Scott, N. W., et al. (2012). Chronic preoperative pain and psychological robustness predict acute postoperative pain outcomes after surgery for breast cancer. British Journal of Cancer, 107 (6), 937946.Google Scholar
Bruce, J., Thornton, A. J., Powell, R., et al. (2014). Psychological, surgical and sociodemographic predictors of pain outcomes after breast cancer surgery: a population-based cohort study. Pain, 155(2), 232243. DOI: 10.1016/j.pain.2013.09.028.Google Scholar
Contrada, R. J., Leventhal, E. A. & Anderson, J. R. (1994). Psychological preparation for surgery: marshalling individual and social resources to optimize self-regulation. In Maes, S., Leventhal, H. & Johnston, M. (eds), International Review of Health Psychology (Vol. 3; pp. 219266). New York: Wiley.Google Scholar
Granot, M. & Ferber, S. G. (2005). The roles of pain catastrophizing and anxiety in the prediction of postoperative pain intensity: a prospective study. Clinical Journal of Pain, 21(5), 439445.Google Scholar
Johnston, M. (1980). Anxiety in surgical patients. Psychological Medicine, 10(1), 145152.Google Scholar
Johnston, M. & Vögele, C. (1993). Benefits of psychological preparation for surgery: a meta-analysis. Annals of Behavioral Medicine, 15, 245256.Google Scholar
Kehlet, H. & Wilmore, D. W. (2002). Multimodal strategies to improve surgical outcome. American Journal of Surgery, 183, 630641.Google Scholar
Maple, H., Joseph, C., Lee, V., et al. (2015). Stress predicts the trajectory of wound healing in living kidney donors as measured by high-resolution ultrasound. Brain, Behaviour and Immunity, 43, 1926.Google Scholar
Munafò, M. R. & Stevenson, J. (2001). Anxiety and surgical recovery. Reinterpreting the literature. Journal of Psychosomatic Research, 51, 589596.Google Scholar
O’Dwyer, M. J., Owen, H. C. & Torrance, H. D. T. (2015). The perioperative immune response. Current Opinion in Critical Care, 21 (4) 336342.Google Scholar
Powell, R., Johnston, M., Smith, W. C. S., et al. (2012). Psychological risk factors for chronic post-surgical pain after inguinal hernia repair surgery: a prospective cohort study. European Journal of Pain, 16(4), 600610.Google Scholar
Powell, R., Scott, N. W., Manyande, A., et al. (2016). Psychological preparation and postoperative outcomes for adults undergoing surgery under general anaesthesia. Cochrane Database of Systematic Reviews, 5, CD008646. DOI: 10.1002/14651858.CD008646.pub2.Google Scholar
Salmon, P. & Hall, G. M. (1997). A theory of postoperative fatigue: an interaction of biological, psychological, and social processes. Pharmacology, Biochemistry and Behavior, 56, 623628.Google Scholar
Salomaki, T. E., Leppaluoto, J., Laitinen, J. O., Vuolteenaho, O. & Nuutinen, L. S. (1993). Epidural versus intravenous fentanyl for reducing hormonal, metabolic, and physiologic responses after thoracotomy. Anesthesiology, 79, 672679.Google Scholar
Scheier, M. F., Matthews, K. A., Owens, J. F., et al. (1989). Dispositional optimism and recovery from coronary artery bypass surgery: the beneficial effects on physical and psychological well-being. Journal of Personality and Social Psychology, 57, 10241040.Google Scholar
Selye, H. (ed.). (1980). Guide to Stress Research. New York: Van Nostrand.Google Scholar
Vögele, C. (1992). Perioperative stress. In Schmidt, L. R. (ed.), Jahrbuch der Medizinischen Psychologie (Vol. 7; pp. 7495). Berlin: Springer.Google Scholar
Vögele, C. & Steptoe, A. (1986). Physiological and subjective stress responses in surgical patients. Journal of Psychosomatic Research, 30, 205215.Google Scholar
Walburn, J., Vedhara, K., Hankins, M., Rixon, L. & Weinman, J. (2009). Psychological stress and wound healing in humans: a systematic review and meta-analysis. Journal of Psychosomatic Research, 67(3), 253271.Google Scholar
Weinman, J. & Johnston, M. (1988). Stressful medical procedures: an analysis of the effects of psychological interventions and of the stressfulness of the procedures. In Maes, S., Defares, P., Sarason, I. G. & Spielberger, C. D. (eds), Topics in Health Psychology (pp. 205217). Chichester: Wiley.Google Scholar

References

Abu-Elmagd, K. M., Kosmach-Park, B., Costa, G., et al. (2012). Long-term survival, nutritional autonomy, and quality of life after intestinal and multivisceral transplantation. Annals of Surgery, 256(3), 494508.Google Scholar
Butler, J. A., Roderick, P., Mullee, M., Mason, J. C. & Peveler, R. C. (2004). Frequency and impact of nonadherence to immunosuppressants after renal transplantation: a systematic review. Transplantation, 77(5), 769776.Google Scholar
Cooper, D. K., Dou, D. F., Tao, K. S., et al. (2016). Pig liver xenotransplantation: a review of progress toward the clinic. Transplantation, 100(10), 20392047.Google Scholar
Dew, M. A., DiMartini, A. F., Dabbs, A. D. V., et al. (2007). Rates and risk factors for nonadherence to the medical regimen after adult solid organ transplantation. Transplantation, 83(7), 858873.Google Scholar
Dew, M. A., Rosenberger, E. M., Myaskovsky, L., et al. (2015). Depression and anxiety as risk factors for morbidity and mortality after organ transplantation: a systematic review and meta-analysis. Transplantation, 100(5), 988.Google Scholar
Dew, M. A., DiMartini, A. F., Ladner, D. P., et al. (2016). Psychosocial outcomes 3 to 10 years after donation in the adult to adult living donor liver transplantation cohort study. Transplantation, 100(6), 12571269.Google Scholar
European Commission. (2014). Journalist workshop on organ donation and transplantation – recent facts and figures. http://ec.europa.eu/health/blood_tissues_organs/docs/ev_20141126_factsfigures_en.pdf (accessed 29 August 2016).Google Scholar
Fine, R. N., Becker, Y., De Geest, S., et al. (2009). Nonadherence consensus conference summary report. American Journal of Transplantation, 9(1), 3541.Google Scholar
Gelb, S., Shapiro, R. J., Hill, A. & Thornton, W. L. (2008). Cognitive outcome following kidney transplantation. Nephrology Dialysis Transplantation, 23(3), 10321038.Google Scholar
Griva, K., Ziegelmann, J. P., Thompson, D., et al. (2002). Quality of life and emotional responses in cadaver and living related renal transplant recipients. Nephrology Dialysis Transplantation, 17(12), 22042211.Google Scholar
Griva, K., Kang, A. W., Yu, Z. L., et al. (2014). Quality of life and emotional distress between patients on peritoneal dialysis versus community-based hemodialysis. Quality of Life Research, 23(1), 5766.Google Scholar
Harder, H., Cornelissen, J. J., Van Gool, A. R., et al. (2002). Cognitive functioning and quality of life in long‐term adult survivors of bone marrow transplantation.Cancer, 95(1), 183192.Google Scholar
Hayashi, K., Uchida, H., Takaoka, C., et al. (2015). Discrepancy in psychological attitudes toward living donor liver transplantation between recipients and donors. Transplantation, 99(12), 25512555.Google Scholar
Irving, M. J., Tong, A., Jan, S., et al. (2012). Factors that influence the decision to be an organ donor: a systematic review of the qualitative literature. Nephrology Dialysis Transplantation, 27(6), 25262533.Google Scholar
Johnson, R. J., Bradbury, L. L., Martin, K. & Neuberger, J. (2014). Organ donation and transplantation in the UK: the last decade – a report from the UK National Transplant Registry. Transplantation, 97, S1S27.Google Scholar
Lentine, K. L., Schnitzler, M. A., Xiao, H., et al. (2012). Depression diagnoses after living kidney donation: linking United States registry data and administrative claims. Transplantation, 94(1), 77.Google Scholar
Low, J. K., Crawford, K., Manias, E. & Williams, A. (2016). Stressors and coping resources of Australian kidney transplant recipients related to medication taking: a qualitative study. Journal of Clinical Nursing. DOI: 10.1111/jocn.13435.Google Scholar
Maldonado, J. R., Dubois, H. C., David, E. E., et al. (2012). The Stanford Integrated Psychosocial Assessment for Transplantation (SIPAT): a new tool for the psychosocial evaluation of pre-transplant candidates. Psychosomatics, 53(2), 123132.Google Scholar
Muzaale, A. D., Massie, A. B., Wang, M. C., et al. (2014). Risk of end-stage renal disease following live kidney donation. JAMA, 311(6), 579586.Google Scholar
Rosenberger, E. M., DiMartini, A. F., Dabbs, A. J. D., et al. (2016). Psychiatric predictors of long-term transplant-related outcomes in lung transplant recipients. Transplantation, 100(1), 239247.Google Scholar
Simmons, P. D. (2000). Ethical considerations in composite tissue allotransplantation. Microsurgery, 20(8), 458465.Google Scholar
Sorensen, L. G., Neighbors, K., Martz, K., et al. (2011). Cognitive and academic outcomes after pediatric liver transplantation: Functional Outcomes Group (FOG) results. American Journal of Transplantation, 11(2), 303311.Google Scholar
Trounson, A. & McDonald, C. (2015). Stem cell therapies in clinical trials: progress and challenges. Cell Stem Cell, 17(1), 1122.Google Scholar
Verbesey, J. E., Simpson, M. A., Pomposelli, J. J., et al. (2005). Living donor adult liver transplantation: a longitudinal study of the donor’s quality of life. American Journal of Transplantation, 5(11), 27702777.Google Scholar
Watson, C. J. E. & Dark, J. H. (2012). Organ transplantation: historical perspective and current practice. British Journal of Anaesthesia, 108(S1), i29i42.Google Scholar
Wong, F. L., Francisco, L., Togawa, K., et al. (2010). Long-term recovery after hematopoietic cell transplantation: predictors of quality of life concerns. Blood. http://dx.doi.org/10.1182/blood-2009-06-225631.Google Scholar
Ziegelmann, J. P., Griva, K., Hankins, M., et al. (2002). The Transplant Effects Questionnaire (TxEQ): the development of a questionnaire for assessing the multidimensional outcome of organ transplantation – example of end stage renal disease (ESRD). British Journal of Health Psychology, 7(4), 393408.Google Scholar

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