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脂肪 Hippo 和 Notch 信号对果蝇视神经上皮细胞增殖和分化的影响。

Influence of fat-hippo and notch signaling on the proliferation and differentiation of Drosophila optic neuroepithelia.

机构信息

Howard Hughes Medical Institute, Waksman Institute and Department of Molecular Biology and Biochemistry, Rutgers, The State University of New Jersey, Piscataway, NJ 08854, USA.

出版信息

Development. 2010 Jul;137(14):2397-408. doi: 10.1242/dev.050013.

Abstract

The Drosophila optic lobe develops from neuroepithelial cells, which function as symmetrically dividing neural progenitors. We describe here a role for the Fat-Hippo pathway in controlling the growth and differentiation of Drosophila optic neuroepithelia. Mutation of tumor suppressor genes within the pathway, or expression of activated Yorkie, promotes overgrowth of neuroepithelial cells and delays or blocks their differentiation; mutation of yorkie inhibits growth and accelerates differentiation. Neuroblasts and other neural cells, by contrast, appear unaffected by Yorkie activation. Neuroepithelial cells undergo a cell cycle arrest before converting to neuroblasts; this cell cycle arrest is regulated by Fat-Hippo signaling. Combinations of cell cycle regulators, including E2f1 and CyclinD, delay neuroepithelial differentiation, and Fat-Hippo signaling delays differentiation in part through E2f1. We also characterize roles for Jak-Stat and Notch signaling. Our studies establish that the progression of neuroepithelial cells to neuroblasts is regulated by Notch signaling, and suggest a model in which Fat-Hippo and Jak-Stat signaling influence differentiation by their acceleration of cell cycle progression and consequent impairment of Delta accumulation, thereby modulating Notch signaling. This characterization of Fat-Hippo signaling in neuroepithelial growth and differentiation also provides insights into the potential roles of Yes-associated protein in vertebrate neural development and medullablastoma.

摘要

果蝇的视神经叶由神经上皮细胞发育而来,这些细胞作为对称分裂的神经祖细胞发挥作用。我们在这里描述了 Fat-Hippo 通路在控制果蝇视神经上皮细胞的生长和分化中的作用。该通路中的肿瘤抑制基因发生突变,或表达激活的 Yorkie,会促进神经上皮细胞的过度生长,并延迟或阻止其分化;而 yorkie 的突变则抑制生长并加速分化。相比之下,神经母细胞和其他神经细胞似乎不受 Yorkie 激活的影响。神经上皮细胞在转化为神经母细胞之前经历细胞周期阻滞;这种细胞周期阻滞受 Fat-Hippo 信号的调节。包括 E2f1 和 CyclinD 在内的细胞周期调节剂的组合会延迟神经上皮细胞的分化,Fat-Hippo 信号通过 E2f1 部分调节分化。我们还研究了 Jak-Stat 和 Notch 信号的作用。我们的研究确立了 Notch 信号对神经上皮细胞向神经母细胞的进展的调节作用,并提出了一个模型,即 Fat-Hippo 和 Jak-Stat 信号通过加速细胞周期进程并因此损害 Delta 的积累来影响分化,从而调节 Notch 信号。这种 Fat-Hippo 信号在神经上皮细胞生长和分化中的作用的表征也为 Yes 相关蛋白在脊椎动物神经发育和髓母细胞瘤中的潜在作用提供了线索。

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