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EXPRESSION AND REGULATION OF KAINATE RECEPTORS

EXPRESSION AND REGULATION OF KAINATE RECEPTORS
红藻氨酸受体的表达和调节
批准号:
2379716
负责人:
JOHN MARSHALL
金额:
$10.47万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
1995
资助国家:
美国
项目状态:
已结题
起止时间:
1995-04-28 至 2000-02-29

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中文摘要
翻译
谷氨酸是哺乳动物中枢神经系统中的主要兴奋性神经递质, 盖茨的三种主要类型的离子亲电受体,即NMDA,AMPA和 红藻氨酸,基于它们的药理作用和分子性质 受体亚基。这项建议将重点放在红藻氨酸受体上。 到目前为止,已经克隆了哪五个亚基:GluR5、GluR6、GluR7、KA1和 Ka2.虽然这些亚单位在整个大脑中都有表达,但很快- 脱敏的海人藻酸受体仅在背根中发现 神经节(Huettner,1990)。在这项研究中,我们将研究亚基 天然红藻氨酸受体的组成、生物物理性质 可以通过不同的亚基形式进行调节,并发挥作用 通道特性调节中的磷酸化。海人藻酸受体 被认为在调节快速突触传递中起关键作用 并可能在发育过程中调节钙离子的进入。因此,一个更好的 对它们的结构、功能和调节的理解将提供 洞察它们在突触可塑性和细胞死亡中的作用。 红藻氨酸受体亚单位RNA和蛋白质的发育性表达 将在小脑颗粒细胞中进行研究,以确定哪些亚型是 存在于这种单一的神经元类型中。膜片钳实验将 重新确定这些通道的功能属性 在HEK293细胞中表达。对于这个项目,我们将主要使用克隆的 海人藻酸受体cDNA稳定整合到基因组或暂时整合 转染HEK293细胞。稳定的表达系统提供了 小脑颗粒细胞的额外和必要的信息,因为 相同通道的单个种群可以在没有 其他谷氨酸受体基因产物。对其影响的生物化学研究 红藻氨酸受体表达的磷酸化将在 稳定的细胞系以及小脑颗粒细胞的鉴定 功能差异。稳定的细胞和小脑的优势 颗粒细胞是大量的海人藻酸受体可以 获得用于生化分析的调节水平的 表面表达和磷酸化。通力合作,两人 方法可以提供对分子机制的强有力的见解。 这是中枢神经系统中红藻氨酸受体功能的基础。
英文摘要
Glutamate, the major excitatory neurotransmitter in the mammalian CNS, gates three major types of ionotropic receptors, named NMDA, AMPA and kainate, based on their pharmacology and molecular properties of the receptor subunits. This proposal will focus on the kainate receptor of which five subunits have been cloned so far: GluR5, GluR6, GluR7, KA1 and KA2. Although these subunits are expressed throughout the brain, fast- desensitizing kainate receptors have only been found in the dorsal root ganglion (Huettner, 1990). In this study, we will investigate the subunit composition of native kainate receptors, how the biophysical properties can be regulated by different subunit forms, and the role of phosphorylation in the modulation of channel properties. Kainate receptors are believed to play a key role in mediating fast synaptic transmission and may regulate Ca2+ entry during development. Therefore, a better understanding of their structure, function and modulation will provide insight into their role in synaptic plasticity and cell death. The developmental expression of kainate receptor subunit RNA and protein will be studied in cerebellar granule cells to identify which isoforms are present in this single neuronal type. Patchclamp experiments will determine the functional properties of these channels recombinantly expressed in HEK293 cells. For this project, we will primarily use cloned kainate receptor cDNAs stably integrated into the genome or transiently transfected into HEK293 cells. The stable expression system provides additional and necessary information to cerebellar granule cells because a single population of identical channels can be studied in the absence of other glutamate-receptor gene products. Biochemical studies on the effect of phosphorylation on kainate receptor expression will be performed on the stable cell lines, as well as cerebellar granule cells to identify functional differences. The advantage of stable cells and cerebellar granule cells is that large quantities of kainate receptors can be obtained for biochemical analysis of the regulation of the level of surface expression and phosphorylation. Working together, the two approaches can provide powerful insights into the molecular mechanisms that underlie kainate receptor function in the CNS.
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