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Helix-Loop-Helix Proteins and Vertebrate Neurogenesis

Helix-Loop-Helix Proteins and Vertebrate Neurogenesis
螺旋-环-螺旋蛋白和脊椎动物神经发生
批准号:
6925525
负责人:
DAVID L TURNER
金额:
$28.2万
依托单位国家:
美国
项目类别:
财政年份:
1999
资助国家:
美国
项目状态:
已结题
起止时间:
1999-12-20 至 2007-06-30

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中文摘要
翻译
描述(申请人提供):碱性-螺旋-环-螺旋(BHLH)转录因子家族是脊椎动物神经元形成和分化的关键调节因子。神经bHLH蛋白是小鼠神经元形成所必需的,这些蛋白的强制表达可以启动神经前体细胞或未定植的胚胎癌细胞的细胞周期退出和神经元分化。我们的数据表明,bHLH蛋白增加了至少一种细胞周期蛋白依赖性激酶抑制物(CDKi)的表达,这可能有助于神经元细胞周期的退出。在这里,我建议进一步分析CDKi蛋白在神经细胞周期退出、对bHLH蛋白强制表达的反应以及在小鼠大脑皮质分化神经元中的作用。此外,我们还将描述CDKi表达受神经性bHLH蛋白调控的机制(S)。 在神经元分化过程中,神经bHLH蛋白的表达是连续的,其中一些在神经前体细胞中表达,另一些在分化过程中表达。目前尚不清楚在神经元分化过程中表达的bHLH蛋白是否具有与神经前体中表达的bHLH蛋白不同的功能。为了解决这个问题,我们将确定在神经元分化过程中表达的神经D家族的成员是否在功能上需要神经前体bHLH蛋白的下游,如Neurogenin 1,以介导细胞周期退出和神经元分化。我们最近开发的一种基于哺乳动物表达载体的RNA干扰方法将有助于这些研究以及我们对CDKi功能的研究。 这项研究应该能更好地理解包括人类在内的哺乳动物神经发生和神经元分化的调控机制。从长远来看,这些信息应该有助于制定战略,以替换因损伤或神经退行性疾病而失去的神经元。
英文摘要
DESCRIPTION (provided by applicant): The basic-helix-loop-helix (bHLH) family of transcription factors are key regulators of neuron formation and differentiation in vertebrates. Neural bHLH proteins are required for neuron formation in the mouse, and forced expression of these proteins can initiate cell cycle withdrawal and neuronal differentiation in neural progenitors or uncommitted embryonic carcinoma cells. Our data indicates that the bHLH proteins increase expression of at least one cyclin-dependent-kinase inhibitor (CDKi), and this is likely to contribute to neuronal cell cycle exit. Here I propose to further analyze the role of CDKi proteins in neuronal cell cycle exit, in response to forced expression of bHLH proteins and in differentiating neurons from the mouse cerebral cortex. In addition, we will characterize the mechanism(s) by which CDKi expression is regulated by the neural bHLH proteins. During neuronal differentiation, neural bHLH proteins are expressed in a sequential cascade, with some bHLH proteins expressed in neural progenitors and others expressed during differentiation. It is not known if the bHLH proteins expressed during neuronal differentiation have functions distinct from those bHLH proteins expressed in neural precursors. To address this question, we will determine whether members of the neuroD family of bHLH proteins, which are expressed during neuronal differentiation, are functionally required downstream of neural precursor bHLH proteins such as neurogenin 1 to mediate cell cycle exit and neuronal differentiation. These studies, as well as our studies on CDKi function, will be facilitated by a mammalian expression vector-based method for RNA interference that we have recently developed. This research should lead to a better understanding of the mechanisms that regulate neurogenesis and neuronal differentiation in mammals, including humans. In the long term, such information should contribute to developing strategies for replacement of neurons lost due to injury or neurodegenerative diseases.
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