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Fruit fly research in China 被引量:2

Fruit fly research in China
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摘要 Served as a model organism over a century, fruit fly has significantly pushed forward the development of global scientific research, including in China. The high similarity in genomic features between fruit fly and human enables this tiny insect to benefit the biomedical studies of human diseases. In the past decades, Chinese biologists have used fruit fly to make numerous achievements on understanding the fundamental questions in many diverse areas of biology. Here, we review some of the recent fruit fly studies in China, and mainly focus on those studies in the fields of stem cell biology, cancer therapy and regeneration medicine, neurological disorders and epigenetics. Served as a model organism over a century, fruit fly has significantly pushed forward the development of global scientific research, including in China. The high similarity in genomic features between fruit fly and human enables this tiny insect to benefit the biomedical studies of human diseases. In the past decades, Chinese biologists have used fruit fly to make numerous achievements on understanding the fundamental questions in many diverse areas of biology. Here, we review some of the recent fruit fly studies in China, and mainly focus on those studies in the fields of stem cell biology, cancer therapy and regeneration medicine, neurological disorders and epigenetics.
出处 《Journal of Genetics and Genomics》 SCIE CAS CSCD 2018年第11期583-592,共10页 遗传学报(英文版)
关键词 China DEVELOPMENT EPIGENETICS Fruit fly GENETICS NEUROLOGY Signaling pathway China Development Epigenetics Fruit fly Genetics Neurology Signaling pathway
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  • 1Daniel Kirilly,Ting Xie.The Drosophila ovary: an active stem cell community[J].Cell Research,2007,17(1):15-25. 被引量:8
  • 2Clement V Sanchez P de Tribolet N Radovanovic I Ruiz i Altaba A.HEDGEHOG-GLI1 signaling regulates human glioma growth, cancer stem cell self-renewal, and tumorigenicity[J].中国神经肿瘤杂志,2007,5(2):122-122. 被引量:97
  • 3Axelrod, J.D., Matsuno. K., Artavanis-Tsakonas, S., and Perrimon, N. (1996). Interaction between Wingless and Notch signaling pathways mediated by Dishevelled. Science 271: 1826-1832.
  • 4Bilic, J., Huang, Y.L., Davidson, G., Zimmermann, T., Cruciat, C.M.,Bienz, M., and Niehrs, C. (2007). War induces LRP6 signalosomes and promotes dishevelled-dependent LRP6 phosphorylation. Science 316: 1619-1622.
  • 5Bryantsev, A.L., and Cripps, R.M. (2009). Cardiac gene regulatory networks in Drosophila. Biochim. Biophys. Acta 1789: 343-353.
  • 6Cavallo, R.A., Cox, R.T., Moline, M.M., Roose, J., Polevoy, G.A., Clevers, H., and Peifer, M.A. (1998). Bejsovec, Drosophila Tcf and Groucho interact to repress Wingless signaling activity. Nature 395: 604-608.
  • 7Chen, X., Shevtsov, S.P., Hsich, E., Cui, L., Haq, S., Aronovitz, M., Kerkela, R., Molkentin, J.D., Liao, R., Salomon, R.N., Patten, R., and Force, T. (2006). The β-catenin/T-cell factor/lymphocyte enhancer factor signaling pathway is required for normal and stress-induced cardiac hypertrophy. Mol. Cell. Biol. 26: 4462-4473.
  • 8Christodoulides, C., Laudes, M., Cawthorn, W.P., Schinner, S., Soos, M., O'rahilly, S., Sethl, J.K., and Vidai-Puig, A. (2006). The Wnt antagonist Dickkopf-1 and its receptors are coordinately regulated during early human adipogenesis. J. Cell Sci. 119: 2613-2620.
  • 9Clevers, H. (2006). Wnt/beta-catenin signaling in development and disease. Cell 127: 469-480.
  • 10Cohen, E.D., Tian, Y., and Morrisey, E.E. (2008). Wnt signaling: an essential regulator of cardiovascular differentiation, morphogenesis, and progenitor self-renewal. Development 135: 789-798.

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