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Mechanisms Of Synaptic Plasticity In The Adult

Mechanisms Of Synaptic Plasticity In The Adult
成人突触可塑性的机制
批准号:
6673277
负责人:
Serena M Dudek
金额:
$0.0万
依托单位国家:
美国
项目类别:
财政年份:
--
资助国家:
美国
项目状态:
未结题
起止时间:
至

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中文摘要
翻译
对于神经科学家和整个社会来说,一个关键问题是遗传和环境在人类大脑出生后发育中的相对作用。环境刺激范围很广,从有害的(例如化学毒物)到有益的(母亲的指示),但所有这些都有可能影响儿童基因组指导的发育程序。突触和发育可塑性小组的研究重点是确定1)大脑中的连接(突触)如何响应神经元活动而长期变化,2)出生后早期发育期间的突触可塑性如何不同于成人的可塑性,以及3)经验如何通过发育期间的突触消除来塑造脑回路。虽然只运作了六个月,但我们在制定将用于实现上述第一个项目的一些方法方面取得了重大进展。我们相信突触功效的长期变化需要新RNA的表达,为此,我们专注于神经元动作电位对基因表达的调节。为了测量由动作电位调节的酶活性,我们开发了一种从少量脑组织中分离细胞核的方法,该脑组织首先在体外进行电刺激。我们还完善了一种使用蛋白质/DNA阵列测量多达96个转录因子激活的方法。这些技术将允许检查神经元活动的转录调节,并将导致了解可塑性所需的基因是如何调节的。与上面列出的其他目标一起,这些研究应该使我们更好地理解环境因素如何在大脑发育中发挥作用,以便我们可以开始解决有毒物质暴露引起的脑部疾病的相关问题。
英文摘要
A critical issue for both neuroscientists and society at large concerns the relative roles of genetics and environment in the postnatal development of the human brain. Environmental stimuli are wide ranging, from the detrimental (chemical toxicants, for example) to the beneficial (a mother's instructions), but all have the potential to influence the developmental program of a child as directed by its genome. The research done in the Synaptic and Developmental Plasticity Group focuses on determining 1) how the connections in the brain (synapses) change on a long-term basis in response to neuronal activity, 2) how synaptic plasticity during early postnatal development is different from plasticity in the adult, and 3) how experience shapes brain circuitry through synapse elimination during development. Though only in operation for six months, we have made significant progress in developing some of the methodologies that will be used in achieving the first of the aforementioned projects. We believe that long-term changes in synaptic efficacy require expression of new RNA and toward that end, we have focused on the regulation of gene expression by neuronal action potentials. To measure enzyme activity modulated by action potentials, we have developed a method for isolating nuclei from small amounts of brain tissue, which had first been electrically stimulated in vitro. We have also perfected a method of measuring the activation of up to 96 transcription factors using a protein/DNA array. These techniques will allow the examination of transcriptional regulation by neuronal activity and will lead to an understanding of how genes required for plasticity are regulated. Together with the other goals listed above, these studies should bring us a better appreciation of how environmental factors play a role in brain development so that we may begin to address the associated problems of brain disease caused by toxicant exposure.
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