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Developmental genetics

from Part X - Crossing the borders

Published online by Cambridge University Press:  26 October 2017

Brian Hopkins
Affiliation:
Lancaster University
Elena Geangu
Affiliation:
Lancaster University
Sally Linkenauger
Affiliation:
Lancaster University
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Publisher: Cambridge University Press
Print publication year: 2017

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References

Further reading

Eichler, E.E., Flint, J., Gibson, G., Kong, A., Leal, S.M., Moore, J.H., & Nadeau, J.H. (2010). Missing heritability and strategies for finding the underlying causes of complex disease. Nature Reviews Genetics, 11, 446450.Google Scholar
Ellegren, H. (2000a). Heterogeneous mutation processes in human microsatellite DNA sequences. Nature Genetics, 24, 400402.Google Scholar
Ellegren, H. (2000b). Microsatellite mutations in the germline: Implications for evolutionary inference. Trends in Genetics, 16, 551558.CrossRefGoogle ScholarPubMed
Manolio, T.A., Collins, F.S., Cox, N.J., Goldstein, D.B., Hindorff, L.A., Hunter, D.J., … & Visscher, P.M. (2009). Finding the missing heritability of complex diseases. Nature, 461, 747753.CrossRefGoogle ScholarPubMed
Rice, C., Beekman, D., Liu, L., & Erives, A. (2015). The nature, extent, and consequences of cryptic genetic variation in the opa repeats of Notch in Drosophila. G3∙Genes|Genomes| Genetics, 5, 24052419.Google Scholar

References

Alberi, L., Liu, S., Wang, Y., Badie, R., Smith-Hicks, C., Wu, J., … & Gaiano, N. (2011). Activity-induced Notch signaling in neurons requires Arc/Arg3.1 and is essential for synaptic plasticity in hippocampal networks. Neuron, 69, 437444.CrossRefGoogle ScholarPubMed
Ananda, G., Walsh, E., Jacob, K.D., Krasilnikova, M., Eckert, K.A., Chiaromonte, F., & Makova, K.D. (2013). Distinct mutational behaviors differentiate short tandem repeats from microsatellites in the human genome. Genome Biology and Evolution, 5, 606620.CrossRefGoogle ScholarPubMed
Birney, E., Stamatoyannopoulos, J.A., Dutta, A., Guigó, R., Gingeras, T.R., Margulies, E.H., … & de Jong, P.J. (2007). Identification and analysis of functional elements in 1% of the human genome by the ENCODE pilot project. Nature, 2007 799816.Google Scholar
Brittain, A., Stroebele, E., & Erives, A. (2014). Microsatellite repeat instability fuels evolution of embryonic enhancers in Hawaiian Drosophila. PLoS ONE, 9, e101177.Google Scholar
Crocker, J., & Erives, A. (2013). A Schnurri/Mad/Medea complex attenuates the dorsal-twist gradient readout at vnd. Developmental Biology, 378, 6472.CrossRefGoogle ScholarPubMed
Crocker, J., Potter, N., & Erives, A. (2010). Dynamic evolution of precise regulatory encodings creates the clustered site signature of enhancers. Nature Communications, 1, 99.CrossRefGoogle ScholarPubMed
Crocker, J., Tamori, Y., & Erives, A. (2008). Evolution acts on enhancer organization to fine-tune gradient threshold readouts. PLoS Biology, 6, e263.CrossRefGoogle ScholarPubMed
de Bivort, B.L., Guo, H.F., & Zhong, Y. (2009). Notch signaling is required for activity-dependent synaptic plasticity at the Drosophila neuromuscular junction. Journal of Neurogenetics, 23, 395404.Google Scholar
Ge, X., Hannan, F., Xie, Z., Feng, C., Tully, T., Zhou, H., … & Zhong, Y. (2004). Notch signaling in Drosophila long-term memory formation. Proceedings of the National Academy of Sciences, 101, 1017210176.CrossRefGoogle ScholarPubMed
Kang, K., Lee, D., Hong, S., Park, S.G., & Song, M.R. (2013). The E3 ligase Mind bomb-1 (Mib1) modulates Delta-Notch signaling to control neurogenesis and gliogenesis in the developing spinal cord. Journal of Biological Chemistry, 288, 25802592.Google Scholar
Legendre, M., Pochet, N., Pak, T., & Verstrepen, K.J. (2007). Sequence-based estimation of minisatellite and microsatellite repeat variability. Genome Research, 17, 17871796.CrossRefGoogle ScholarPubMed
Morrison, S.J., Perez, S.E., Qiao, Z., Verdi, J.M., Hicks, C., Weinmaster, G., & Anderson, D.J. (2000). Transient Notch activation initiates an irreversible switch from neurogenesis to gliogenesis by neural crest stem cells. Cell, 101, 499510.CrossRefGoogle ScholarPubMed
Sargin, D., Botly, L.C., Higgs, G., Marsolais, A., Frankland, P.W., Egan, S.E., & Josselyn, S.A. (2013). Disrupting Jagged1-Notch signaling impairs spatial memory formation in adult mice. Neurobiology of Learning and Memory, 103C, 3949.Google Scholar
Song, Q., Sun, K., Shuai, Y., Lin, R., You, W., Wang, L., & Zhong, Y. (2009). Suppressor of Hairless is required for long-term memory formation in Drosophila. Journal of Neurogenetics, 23, 405411.Google Scholar
Taylor, M.K., Yeager, K., & Morrison, S.J. (2007). Physiological Notch signaling promotes gliogenesis in the developing peripheral and central nervous systems. Development, 134, 24352447.CrossRefGoogle ScholarPubMed
Wheeler, S.R., Stagg, S.B., & Crews, S.T. (2008). Multiple Notch signaling events control Drosophila CNS midline neurogenesis, gliogenesis and neuronal identity. Development, 135, 30713079.CrossRefGoogle ScholarPubMed

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