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Biochemical evidence for calpain's involvement in long term synaptic plasticity.

机译:钙蛋白酶参与长期突触可塑性的生化证据。

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Calcium dependent neutral proteases (calpain) have been demonstrated to participate in long-term synaptic plasticity. To identify the critical downstream events, we studied the effects of calpain on several proteins that play important roles in synaptic function.;Calpain-mediated proteolysis of GRIP and PSD-95 was first studied in vitro by calpain I digestion of rat forebrain membranes. In both cases, several degradation products were identified suggesting the existence of multiple cutting sites. Most of the fragments were later confirmed following in situ calpain activation by brief NMDA stimulation of cultured hippocampal slices, which indicates that calpain-mediated proteolysis of GRIP and PSD-95 might occur in vivo. We also found the PSD-95 breakdown products were abundant in developing hippocampus, and dramatically declined during the adulthood. Combined with previous reports, we proposed that calpain degradation of PSD-95 is involved in synaptic remodeling during development, and possibly in adulthood following appropriate stimulus. To explore the potential functions of calpain-mediated GRIP degradation, we analyzed GRIP and GluR2 interaction using co-immunoprecipitation techniques. We found that calpain activation resulted in the disruption of GRIP-GluR2 interaction and since GRIP has been hypothesized as AMPA receptor anchoring protein, such disruption could facilitate release of the AMPA receptors from the synaptic sites.;To further address the impact of calpain activation on glutamate receptor trafficking, frozen-thawed rat forebrain sections were first treated with calcium to activate endogenous calpain, and PSD proteins were extracted as Triton-insoluble fractions. Following calpain activation, AMPA receptor subunits GluR1 and GluR2 are fragmented and, interestingly, the degradation species of the subunits were absent from PSDs and recovered in Triton-soluble fractions. Our data thus revealed the potential function of calpain in glutamate receptor trafficking.;The study on calpain degradation of alpha-CaMKII suggested that autophosphorylated form of alpha-CaMKII is resistant to calpain-mediated proteolysis. Since it has been previously shown that calpain decreases the activity of non-phosphorylated form of the kinase, our results thus argue that calpain might function to decrease the kinase activity.;In summary, our studies demonstrated the regulatory role of calpain on several important synaptic molecules and provided biochemical evidence for calpain involvement in synaptic modification.
机译:钙依赖性中性蛋白酶(钙蛋白酶)已被证明参与长期的突触可塑性。为了确定关键的下游事件,我们研究了钙蛋白酶对几种在突触功能中起重要作用的蛋白质的影响。钙蛋白酶介导的GRIP和PSD-95的蛋白水解首先是通过钙蛋白酶I消化大鼠前脑膜进行的。在两种情况下,均鉴定出几种降解产物,表明存在多个切割位点。大部分片段随后通过短暂的NMDA刺激培养的海马切片原位钙蛋白酶激活后得到证实,这表明钙蛋白酶介导的GRIP和PSD-95的蛋白水解可能在体内发生。我们还发现PSD-95分解产物在发育中的海马体中丰富,并且在成年期急剧下降。结合以前的报道,我们提出PSD-95的钙蛋白酶降解与发育过程中的突触重塑有关,并且可能在适当的刺激下可能与成年期有关。为了探索钙蛋白酶介导的GRIP降解的潜在功能,我们使用免疫共沉淀技术分析了GRIP和GluR2的相互作用。我们发现钙蛋白酶激活导致GRIP-GluR2相互作用的破坏,并且由于GRIP被假设为AMPA受体锚定蛋白,因此这种破坏可以促进AMPA受体从突触位点的释放。谷氨酸受体运输,首先用钙处理冻融的大鼠前脑切片以激活内源钙蛋白酶,并提取PSD蛋白作为Triton不溶级分。钙蛋白酶激活后,AMPA受体亚基GluR1和GluR2被片段化,有趣的是,PSD中不存在亚基的降解物质,并以Triton可溶级分回收。因此,我们的数据揭示了钙蛋白酶在谷氨酸受体运输中的潜在功能。;对钙蛋白酶降解α-CaMKII的研究表明,α-CaMKII的自磷酸化形式对钙蛋白酶介导的蛋白水解有抵抗力。由于以前已经证明钙蛋白酶降低了非磷酸化形式的激酶的活性,因此我们的结果因此认为钙蛋白酶可能起到降低激酶活性的作用。总之,我们的研究证明了钙蛋白酶对几种重要突触的调节作用。分子并为钙蛋白酶参与突触修饰提供了生化证据。

著录项

  • 作者

    Lu, Xiaoying.;

  • 作者单位

    University of Southern California.;

  • 授予单位 University of Southern California.;
  • 学科 Neurosciences.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 110 p.
  • 总页数 110
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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