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The role of the proteasome-associated protein Ecm29 in quality control of the proteasome.

机译:蛋白酶体相关蛋白Ecm29在蛋白酶体质量控制中的作用。

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摘要

The ubiquitin-proteasome pathway is the major pathway of selective protein degradation in the cell. Disruption of this pathway affects cellular protein homeostasis and contributes to diseases like cancer, and neurodegeneration. The end point of this pathway is the proteasome, a complex protease formed by 66 polypeptides. Structurally, it can be subdivided into the Core Particle (CP) and the Regulatory Particle (RP). The CP harbors the proteolytic sites, whereas, the RP contains six orthologous AAA-ATPases, the Rpt proteins. These Rpt's are essential for proteasome function and are at the interface between RP and CP. The work in this thesis focuses on the Rpt subunit Rpt5 from yeast. The C-terminal tail of Rpt5 has been shown to contribute to the binding with the CP. However, our study showed it is also essential for the interaction with Nas2, one of nine proteasome-specific chaperones. Thus, Nas2 might function as a regulator of the Rpt5-CP interaction. Further analyses suggested that Nas2 has an additional function in assembly, and that mutating the tail of Rpt5 results in increased binding of the proteasome-associated protein Ecm29 to the proteasome. We showed that Ecm29 binds Rpt5 directly, thereby inducing a closed conformation of the CP substrate entry channel, and inhibiting proteasomal ATPase activity. Consistent with these activities, several proteasome mutant strains showed Ecm29-dependent accumulation of unstable substrates. Thus, Ecm29 is an inhibitor of the proteasome in vivo and in vitro. Interestingly, besides the Rpt5 mutants, several other proteasome mutants show increased levels of Ecm29, suggesting Ecm29 has a role in quality control. Consistent with this, we observed that Ecm29 associates preferably with specific mutants and nucleotide-depleted proteasomes.;Based on our data we propose a model, where early in assembly Nas2 binds to the Rpt5 tail inhibiting the Rpt5-CP interaction directly. Later in assembly Ecm29 performs a quality control function, where it recognizes and remains bound to defective proteasomes. By inhibiting these proteasomes Ecm29 prevents the aberrant degradation of proteins.
机译:泛素-蛋白酶体途径是细胞中选择性蛋白质降解的主要途径。该途径的破坏会影响细胞蛋白质的动态平衡,并导致癌症和神经退行性疾病等疾病。该途径的终点是蛋白酶体,是由66种多肽形成的复杂蛋白酶。从结构上讲,它可以细分为核心粒子(CP)和调节粒子(RP)。 CP带有蛋白水解位点,而RP包含六个直系同源AAA-ATPase,即Rpt蛋白。这些Rpt对于蛋白酶体功能至关重要,并且位于RP和CP之间。本文的工作集中在酵母的Rpt亚基Rpt5上。 Rpt5的C末端尾巴已显示出与CP的结合。但是,我们的研究表明,它与9个蛋白酶体特异性伴侣蛋白之一Nas2的相互作用也是必不可少的。因此,Nas2可能充当Rpt5-CP相互作用的调节剂。进一步的分析表明,Nas2在装配中还具有其他功能,并且突变Rpt5的尾部会导致蛋白酶体相关蛋白Ecm29与蛋白酶体的结合增加。我们表明,Ecm29直接结合Rpt5,从而诱导CP底物进入通道的封闭构象,并抑制蛋白酶体ATPase活性。与这些活动一致,几个蛋白酶体突变菌株显示了Ecm29依赖性不稳定底物的积累。因此,Ecm29在体内和体外是蛋白酶体的抑制剂。有趣的是,除Rpt5突变体外,其他一些蛋白酶体突变体也显示Ecm29水平升高,表明Ecm29在质量控制中具有作用。与此相一致,我们观察到Ecm29最好与特定的突变体和核苷酸耗尽的蛋白酶体结合。基于我们的数据,我们提出了一个模型,其中在装配初期,Nas2与Rpt5尾部结合,直接抑制Rpt5-CP相互作用。在组装的后期,Ecm29执行质量控制功能,在其中识别并保持与有缺陷的蛋白酶体结合。通过抑制这些蛋白酶体,Ecm29可防止蛋白质的异常降解。

著录项

  • 作者单位

    Kansas State University.;

  • 授予单位 Kansas State University.;
  • 学科 Biology Molecular.;Chemistry Biochemistry.;Biology Cell.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 139 p.
  • 总页数 139
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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