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REGULATION OF GABA EXPRESSION BY NEUROTOXINS

REGULATION OF GABA EXPRESSION BY NEUROTOXINS
神经毒素对 GABA 表达的调节
批准号:
2156004
负责人:
JEAN MILES LAUDER
金额:
$16.58万
依托单位国家:
美国
项目类别:
财政年份:
1994
资助国家:
美国
项目状态:
已结题
起止时间:
1994-07-01 至 1997-06-30

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中文摘要
翻译
GABA是成人大脑中的主要抑制性神经递质。GABA/A 受体由多个亚基组成,在结构上与C1-相连。 频道。这些受体通过以下途径介导GABA的抑制作用 导致c1-内流,导致超极化。有机氯 杀虫剂阻断昆虫和脊椎动物中这些受体的功能 通过在GABA结合部位充当竞争性拮抗剂 (环二烯)或直接结合到c1通道(林丹)。γ-氨基丁酸 作为发育中的神经元的营养信号,也可能影响 大脑发育过程中自身受体的表达。在工作中 假说是有机氯化合物对特定靶标的能力 GABA/A受体可能使发育中的神经系统 容易受到这些神经毒素的伤害。这一假设将通过以下方式进行检验 体内和体外模型以确定是否暴露于 有机氯农药改变GABA/A的发育性表达 受体、受体功能或表达这些的细胞的发育 受体(GABA受体细胞)。对于我们的活体模型,杀虫剂将 对妊娠大鼠进行定量聚合酶链式反应分析 脑内GABA/A受体亚单位编码基因转录水平的研究 胚胎、新生儿和出生后发育的后代。量化 然后将使用原位杂交来进行更详细的分析 特定地区的影响。受体功能将通过以下方式评估 36/C_1-通量分析。如果农药改变了受体的表达或功能, 初级培养将从胚胎脑区产生,在这些区域 效果被发现了。这些文化将被评估为适当的 体外模型,允许快速分析直接影响 农药对GABA/A受体表达、功能及发育的影响 GABA感受性细胞。这些研究将提供重要信息 关于有机氯农药可能构成风险的问题 通过它们改变表情的能力来影响发育中的大脑 或GABA/A受体的功能。
英文摘要
GABA is the main inhibitory neurotransmitter in the adult brain. GABA/A receptors, composed of multiple subunits, are structurally linked to C1- channels. These receptors mediate the inhibitory actions of GABA by causing C1-influx resulting in hyperpolarization. Organochlorine pesticides block functions of these receptors in insects and vertebrates by acting as competitive antagonists at the GABA binding site (cyclodienes) or binding directly to the C1- channel (lindane). GABA acts as a trophic signal for developing neurons, and may also influence the expression of its own receptors during brain development. The working hypothesis is that the ability of organochlorines to specifically target GABA/A receptors may make the developing nervous system especially vulnerable to these neurotoxins. This hypothesis will be tested using in vivo and in vitro models to determine whether exposure to organochlorine pesticides alters developmental expression of GABA/A receptors, receptor function, or development of cells that express these receptors (GABA-receptive cells). For our in vivo model, pesticides will be administered to pregnant rats followed by quantitative PCR to analyze levels of mRNA transcripts encoding GABA/A receptor subunits in brains of embryos, neonates and postnatally developing offspring. Quantitative in situ hybridization will then be used to allow a more detailed analysis of region-specific effects. Receptor function will be evaluated by 36/C1- flux assays. If pesticides alter receptor expression or function, primary cultures will be produced from embryonic brain regions where such effects are found. These cultures will be evaluated as an appropriate in vitro model to allow rapid analysis of the direct effects of pesticides on GABA/A receptor expression, function, and development of GABA-receptive cells. These studies will provide important information regarding the possibility that organochlorine pesticides may pose a risk to the developing brain by virtue of their ability to alter expression or function of GABA/A receptors.
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