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酵母 20S 蛋白酶体α5 亚基中 Cys 和 Ser 残基的突变影响门控和时序寿命。

Mutations of Cys and Ser residues in the α5-subunit of the 20S proteasome from Saccharomyces cerevisiae affects gating and chronological lifespan.

机构信息

Laboratory of Biochemistry and Biophysics, Instituto Butantan, São Paulo-SP, Brazil; Department of Genetics and Evolutive Biology, IB- Universidade de São Paulo, São Paulo-SP, Brazil.

Laboratory of Biochemistry and Biophysics, Instituto Butantan, São Paulo-SP, Brazil; Program of Morfofunctional Sciences, Department of Anatomy, ICB- Universidade de São Paulo, São Paulo-SP, Brazil.

出版信息

Arch Biochem Biophys. 2019 May 15;666:63-72. doi: 10.1016/j.abb.2019.03.012. Epub 2019 Mar 30.

Abstract

In addition to autophagy, proteasomes are critical for regulating intracellular protein levels and removing misfolded proteins. The 20S proteasome (20SPT), the central catalytic unit, is sometimes flanked by regulatory units at one or both ends. Additionally, proteosomal activation has been associated with increased lifespan in many organisms. Our group previously reported that the gating (open/closed) of the free 20S proteasome is redox controlled, and that S-glutathionylation of two Cys residues (Cys76 and Cys221) in the α5 subunit promotes gate opening. The present study constructed site-directed mutants of these Cys residues, and evaluated the effects these mutations have on proteosome gate opening and yeast cell survival. Notably, the double mutation of both Cys residues (Cys76 and Cys221) rendered the cells nonviable, whereas the lifespan of the yeast carrying the single mutations (α5-C76S or α5-C221S) was attenuated when compared to the wild type counterpart. Furthermore, it was found that α5-C76S or α5-C221S 20SPT were more likely to be found with the gate in a closed conformation. In contrast, a random α5-subunit double mutation (S35P/C221S) promoted gate opening, increased chronological lifespan and provided resistance to oxidative stress. The 20SPT core particle purified from the long-lived strain degraded model proteins (e.g., α-synuclein) more efficiently than preparations obtained from the wild-type counterpart, and also displayed an increased chymotrypsin-like activity. Mass spectrometric analyses of the C76S, C221S, S35P/C221S, S35P and S35P/C76S mutants provided evidence that the highly conserved Cys76 residue of the α5-subunit is the key determinant for gate opening and cellular survival. The present study reveals a sophisticated regulatory mechanism that controls gate opening, which appears to be based on the interactions among multiple residues within the α5-subunit, and consequently impacts the lifespan of yeast.

摘要

除了自噬作用外,蛋白酶体对于调节细胞内蛋白质水平和清除错误折叠的蛋白质也非常重要。20S 蛋白酶体(20SPT)是中央催化单元,有时在其一端或两端被调节单元所包围。此外,蛋白酶体的激活与许多生物的寿命延长有关。我们的研究小组之前报道过,自由 20SPT 的门控(打开/关闭)受氧化还原控制,并且α5 亚基中的两个半胱氨酸残基(Cys76 和 Cys221)的 S-谷胱甘肽化促进门的打开。本研究构建了这些 Cys 残基的定点突变体,并评估了这些突变对蛋白酶体门控打开和酵母细胞存活的影响。值得注意的是,两个 Cys 残基(Cys76 和 Cys221)的双突变使细胞失去活力,而携带单突变(α5-C76S 或 α5-C221S)的酵母的寿命与野生型相比则减弱。此外,发现α5-C76S 或α5-C221S 20SPT 更有可能处于关闭构象的门控状态。相比之下,随机的α5 亚基双突变(S35P/C221S)促进了门控的打开,增加了时序寿命并提供了对氧化应激的抗性。从长寿菌株中纯化的 20SPT 核心颗粒比从野生型对照物中获得的制剂更有效地降解模型蛋白(例如α-突触核蛋白),并且还显示出增加的糜蛋白酶样活性。C76S、C221S、S35P/C221S、S35P 和 S35P/C76S 突变体的质谱分析提供了证据,表明α5 亚基中高度保守的 Cys76 残基是门控打开和细胞存活的关键决定因素。本研究揭示了一种复杂的调控机制,该机制控制着门控的打开,这似乎基于α5 亚基内多个残基之间的相互作用,并因此影响酵母的寿命。

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