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Placebo expectancy effects in the relationship between glucose and cognition

Published online by Cambridge University Press:  09 March 2007

Michael W. Green*
Affiliation:
Institute of Food Research, Whiteknights Road, Earley Gate, Reading, Berkshire, RG6 6BZ, UK
Moira A. Taylor
Affiliation:
Dept of Human Nutrition, Kings College London, Franklin-Wilkins Building, 150 Stamford Street, London SE1 8WA, UK
Nicola A. Elliman
Affiliation:
Institute of Food Research, Whiteknights Road, Earley Gate, Reading, Berkshire, RG6 6BZ, UK
Oril Rhodes
Affiliation:
Dept of Human Nutrition, Kings College London, Franklin-Wilkins Building, 150 Stamford Street, London SE1 8WA, UK
*
1Corresponding author: Dr Michael W. Green, present address Psychology Group, School of Life and Health Sciences, Aston University, Aston Triangle, Birmingham B4 7ET, UK, fax +44 121 359 3257, email m.w.green@aston.ac.uk
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Abstract

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The present study investigated the extent of expectancy in the ability of glucose to affect cognitive performance. Using a within-subjects design, subjects (n 26) completed four experimental sessions (in counterbalanced order and after an initial practice session) during which they were given a 500 ml drink 30 min prior to completing a cognitive assessment battery. In addition, all subjects completed a baseline practice session during which they were given no drink. During two of the sessions, subjects were given a drink containing 50 g glucose and on the other two they were given a drink containing aspartame. A balanced placebo design was used, such that for half the sessions subjects were accurately informed as to the content of the drink (glucose or aspartame), whereas in the other two sessions they were misinformed as to the content of the drink. The task battery comprised a 6 min visual analogue of the Bakan vigilance task, an immediate verbal free-recall task, an immediate verbal recognition memory task and a measure of motor speed (two-finger tapping). Blood glucose and self-reported mood were also recorded at several time points during each session. Glucose administration was found to improve recognition memory times, in direct contrast to previous findings in the literature. Glucose administration also improved performance on the Bakan task (relative to the control drink), but only in sessions where subjects were informed that they would receive glucose and not when they were told that they would receive aspartame. There were no effects either of the nature of the drink or expectancy on the other measures. These results are interpreted in terms of there being some contribution of expectancy concerning the positive effects of glucose on cognition in studies which have not used an equi-sweet dose of aspartame as a control drink.

Type
Research Article
Copyright
Copyright © The Nutrition Society 2001

References

Azari, NP (1991) Effects of glucose on memory processes in young adults. Psychopharmacology 105, 521524.Google Scholar
Bakan, P (1959) Extroversion–introversion and improvement in an auditory vigilance task. British Journal of Psychology 50, 323332.Google Scholar
Benton, D, Brett, V & Brain, PF (1987) Glucose improves attention and reaction to frustration in children. Biological Psychology 24, 95100.Google Scholar
Benton, D & Owens, DS (1993) Blood glucose and human memory. Biological Psychology 24, 95100.Google Scholar
Benton, D, Owens, DS & Parker, PY (1994) Blood glucose influences memory and attention in young adults. Neuropsychologia 32, 595607.Google Scholar
Benton, D & Sargent, J (1992) Breakfast, blood glucose and memory. Biological Psychology 33, 207210.Google Scholar
Brooke, JD & Toogoode, S (1973) Factory accidents and carbohydrate supplements. Proceedings of the Nutrition Society 32, 94A95A.Google Scholar
Fillmore, MT, Carscadden, JL & Vogel-Sprott, M (1998) Alcohol, cognitive impairment and expectancies. Journal of Studies on Alcohol 59, 174179.Google Scholar
Fillmore, MT, Mulvihill, LE & Vogel-Sprott, M (1994) The expected drug and its expected effect interact to determine placebo responses to alcohol and caffeine. Psychopharmacology 115, 383388.Google Scholar
Fillmore, M & Vogel-Sprott, M (1992) Expected effect of caffeine on motor performance predicts the type of response to placebo. Psychopharmacology 106, 209214.Google Scholar
Finnigan, F, Hammersley, R & Millar, K (1995) The effects of expectancy and alcohol on cognitive-motor performance. Addiction 90, 661672.Google Scholar
Foster, JK, Lidder, PG & Sünram, SI (1998) Glucose and memory: Fractionation of enhancement effects. Psychopharmacology 137, 259270.Google Scholar
Frayn, KN, Coppack, GW, Humphreys, SM, Clark, ML & Evans, RD (1993) Periprandial regulation of lipid metabolism in insulin-treated diabetes-mellitus. Metabolism – Clinical and Experimental 42, 504510.Google Scholar
Gold, PE (1986) Glucose modulation of memory storage processing. Behavioural and Neural Biology 45, 342349.Google Scholar
Green, MW, Elliman, NA & Rogers, PJ (1995) Lack of effect of short-term fasting on cognitive function. Journal of Psychiatric Research 29, 245253.Google Scholar
Green, MW, Elliman, NA & Rogers, PJ (1997) The effects of food deprivation and incentive motivation on blood glucose levels and cognitive function. Psychopharmacology 134, 8894.Google Scholar
Hall, JL, Gonder-Frederick, LA, Chewning, WW, Silveira, J & Gold, PE (1989) Glucose enhancement of performance on memory tests in young and aged humans. Neuropsychologia 22, 11291138.Google Scholar
Hammersley, R, Finnigan, F & Millar, K (1998) Verbal expectancies and performance after alcohol. Addictive Behaviors 23, 489496.Google Scholar
Kirsch, I & Weixel, LJ (1988) Double blind versus deceptive administration of a placebo. Behavioural Neuroscience 102, 319323.Google Scholar
Kvavilashvili, L & Ellis, JA (1999) The effects of positive and negative placebos on human memory performances. Memory 7, 421437.Google Scholar
Johnson, EO, Kamilaris, TC, Chrousos, GP & Gold, PE (1992) Mechanisms of stress: A dynamic overview of hormonal and behavioural homeostasis. Neuroscience and Biobehavioral Reviews 16, 115130.Google Scholar
Lapp, JE (1981) Effects of glycemic alterations and noun imagery on the learning of paired associates. Journal of Learning Disabilities 14, 3538.Google Scholar
Manning, CA, Hall, JL & Gold, PE (1990) Glucose effects on memory and other neuropsychological tests in elderly humans. Psychological Science 1, 307311.Google Scholar
Manning, CA, Parsons, MW, Cotter, EM & Gold, PE (1997) Glucose effects on declarative and non-declarative memory in healthy elderly and young adults. Psychobiology 25, 103108.Google Scholar
Manning, CA, Ragozzino, ME & Gold, PE (1983) Glucose enhancement of memory in patients with probable senile dementia of the Alzheimer type. Neurobiology of Aging, 14, 523528.Google Scholar
Messier, C, Desrochers, A & Gagnon, M (1999) Effect of glucose, glucose regulation and word imagery value on human memory. Behavioural Neuroscience 113, 431438.Google Scholar
Parsons, MW & Gold, PE (1992) Glucose enhancement of memory in elderly humans: An inverted-U dose-response curve. Neurobiology of Aging 13, 401404.Google Scholar
Peterson, JB, Rothfleisch, J, Zelazo, PD & Phil, RO (1990) Acute alcohol intoxication and cognitive functioning. Journal of Studies on Alcohol 51, 114122.Google Scholar
Pollitt, E, Jacoby, E & Cueto, S (1996) School breakfast and cognition among nutritionally at-risk children in the Peruvian Andes. Nutrition Reviews 54, S22S26.Google Scholar
Pollitt, E, Lewis, NL, Garza, C & Schulman, RJ (1983) Fasting and cognitive function. Journal of Psychiatric Research 17, 169174.Google Scholar
Pollitt, E, Liebel, RL & Greenfield, D (1981) Brief fasting, stress and cognition in children. American Journal of Clinical Nutrition 34, 15261533.Google Scholar
Rogers, PJ & Lloyd, HM (1994) Nutrition and mental performance. Proceedings of the Nutrition Society 53, 443456.Google Scholar
Sieber, FE & Traystmen, RJ (1992) Special issues: Glucose and the brain. Critical Care Medicine 20, 104114.Google Scholar
Sternberg, S (1966) High speed scanning in human memory. Science 153, 652654.Google Scholar