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YAP 在早期外胚层特化和亨廷顿病人类神经管形成模型中的作用。

Role of YAP in early ectodermal specification and a Huntington's Disease model of human neurulation.

机构信息

Laboratory of of Stem Cell Biology and Molecular Embryology, The Rockefeller University, New York, United States.

Howard Hughes Medical Institute, The Rockefeller University, New York, United States.

出版信息

Elife. 2022 Apr 22;11:e73075. doi: 10.7554/eLife.73075.

Abstract

The Hippo pathway, a highly conserved signaling cascade that functions as an integrator of molecular signals and biophysical states, ultimately impinges upon the transcription coactivator Yes-associated protein 1 (YAP). Hippo-YAP signaling has been shown to play key roles both at the early embryonic stages of implantation and gastrulation, and later during neurogenesis. To explore YAP's potential role in neurulation, we used self-organizing neuruloids grown from human embryonic stem cells on micropatterned substrates. We identified YAP activation as a key lineage determinant, first between neuronal ectoderm and nonneuronal ectoderm, and later between epidermis and neural crest, indicating that YAP activity can enhance the effect of BMP4 stimulation and therefore affect ectodermal specification at this developmental stage. Because aberrant Hippo-YAP signaling has been implicated in the pathology of Huntington's Disease (HD), we used isogenic mutant neuruloids to explore the relationship between signaling and the disease. We found that HD neuruloids demonstrate ectopic activation of gene targets of YAP and that pharmacological reduction of YAP's transcriptional activity can partially rescue the HD phenotype.

摘要

Hippo 通路是一条高度保守的信号级联反应,作为分子信号和生物物理状态的整合者,最终影响转录共激活因子 Yes 相关蛋白 1(YAP)。已经表明 Hippo-YAP 信号在着床和原肠胚形成的早期胚胎阶段以及后来的神经发生过程中发挥关键作用。为了探索 YAP 在神经胚形成中的潜在作用,我们使用在微图案化基质上从人胚胎干细胞生长的自组织神经原。我们确定 YAP 的激活是一个关键的谱系决定因素,首先是在神经元外胚层和非神经元外胚层之间,然后是在表皮和神经嵴之间,表明 YAP 活性可以增强 BMP4 刺激的效果,从而影响这个发育阶段的外胚层特化。因为异常的 Hippo-YAP 信号已被牵连到亨廷顿病(HD)的病理学中,我们使用同基因突变神经原来探索信号与疾病之间的关系。我们发现 HD 神经原显示 YAP 的基因靶标的异位激活,并且药理学降低 YAP 的转录活性可以部分挽救 HD 表型。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e4ea/9033270/a059006da067/elife-73075-fig1.jpg

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