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中文摘要
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中枢神经系统(CNS)中神经回路的形成取决于神经元的活动能力。 未分化的干细胞和祖细胞产生不同类别的神经元和神经胶质细胞, 刻板的方式。我们的主要目标是了解分子的细节如何一般方面的 细胞周期调节和分化与细胞命运决定相协调。之前,我们发现了一个 被称为Olig2的bHLH类转录抑制因子,由运动神经元(MN)选择性表达 脊髓中的祖细胞,并参与协调MN发育的三个关键特征:MN- 特异性基因表达、细胞周期退出和一般神经元分化。由于Olig2的功能是 抑制子,我们假设Olig2必须通过其关闭 其他重要的调控基因,它们本身控制着茎的命运、增殖和分化, 以及中枢神经系统中的祖细胞。这些基因的身份目前尚不清楚。使用体外和体内 在鸡和小鼠脊髓中的基因功能测定中,我们将检测三个基因的调控表达, 新鉴定的Olig2靶点,并确定这些基因如何控制MN分化的不同方面。 首先,我们将确定Hes基因在控制前神经bHLH蛋白表达中的作用 神经生成素2和MN祖细胞分化的总体能力。第二,我们将研究 Id基因在抑制Olig2和Ngn 2调控MN分化时间方面发挥作用。 第三,我们将测试PLZF的作用,PLZF是一种控制其他组织中干细胞自我更新的转录因子, 维持脊髓祖细胞处于未分化状态。这些研究将提供 对干细胞和祖细胞如何变得特化以产生特定细胞类型的重要见解, 中枢神经系统,并提供了细胞分裂和分化的过程如何详细的了解 都是被控制的对这一过程的深入了解对于我们理解不同细胞类型在细胞中的作用是非常重要的。 神经系统最初形成,并且对于当前和未来开发干细胞疗法的努力至关重要。 修复受伤或患病的神经组织
英文摘要
The formation of neural circuits in the central nervous system (CNS) depends on the ability of undifferentiated stem and progenitor cells to produce distinct classes of neurons and glial cells in a stereotyped manner. Our main objective is to understand the molecular details of how general aspects of cell cycle regulation and differentiation are coordinated with cell fate decisions. Previously, we identified a bHLH class transcriptional represser called Olig2 that is selectively expressed by motor neuron (MN) progenitors in the spinal cord, and involved in coordinating three key features of MN development: MN- specific gene expression, cell cycle exit, and general neuronal differentiation. Since Olig2 functions as a represser, we hypothesize that Olig2 must direct MN formation through its ability to shut off the expression of other important regulatory genes that themselves control the fate, proliferation, and differentiation of stem and progenitor cells in the CNS. The identity of these genes is currently not known. Using in vitro and in vivo assays of gene function in chick and mouse spinal cord, we will examine the regulated expression of three newly identified Olig2 targets and determine how these genes control different aspects of MN differentiation. First, we will determine the role of Hes genes in controlling the expression of the proneural bHLH protein Neurogenin2 and the overall capacity of MN progenitors to differentiate. Second, we will examine the role that Id genes play in inhibiting the function of Olig2 and Ngn2 to control the timing of MN differentiation. Third, we will test the role of PLZF, a transcription factor that controls stem cell self-renewal in other tissues, in maintaining spinal cord progenitors in an undifferentiated state. Together, these studies will provide significant insight into how stem and progenitor cells become specialized to generate specific cell types in the CNS, and provide a detailed understanding of how the processes of cellular division and differentiation are controlled. Insights into this process are important for our understanding of how different cell types in the nervous system are initially formed, and critical for current and future efforts to develop stem cells therapies to repair injured or diseased neural tissue.
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Elucidating the molecular mechanisms behind human neurodevelopmental disorders using brain organoids
Elucidating the molecular mechanisms behind human neurodevelopmental disorders using brain organoids
Mechanisms underlying non-REM sleep and neural oscillation abnormalities in Dup15q and Rett Syndrome: Effects on Intellectual Disability
Mechanisms underlying non-REM sleep and neural oscillation abnormalities in Dup15q and Rett Syndrome: Effects on Intellectual Disability
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