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本文引用的文献

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Cellular quality control by the ubiquitin-proteasome system and autophagy.细胞的泛素-蛋白酶体系统和自噬的质量控制。
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The E3 ubiquitin ligase CHIP in normal cell function and in disease conditions.E3 泛素连接酶 CHIP 在正常细胞功能和疾病条件中的作用。
Ann N Y Acad Sci. 2020 Jan;1460(1):3-10. doi: 10.1111/nyas.14206. Epub 2019 Aug 15.
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Branching Out: Improved Signaling by Heterotypic Ubiquitin Chains.分支延伸:异型泛素链增强的信号转导。
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Cooperation of mitochondrial and ER factors in quality control of tail-anchored proteins.线粒体和内质网因子在尾部锚定蛋白质量控制中的合作。
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6
Genome-wide CRISPR Analysis Identifies Substrate-Specific Conjugation Modules in ER-Associated Degradation.全基因组 CRISPR 分析鉴定内质网相关降解中的底物特异性连接模块。
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Recognition of the Diglycine C-End Degron by CRL2 Ubiquitin Ligase.CRL2泛素连接酶对二甘氨酸C末端降解子的识别。
Mol Cell. 2018 Dec 6;72(5):813-822.e4. doi: 10.1016/j.molcel.2018.10.021.
8
Distinct proteostasis circuits cooperate in nuclear and cytoplasmic protein quality control.不同的蛋白稳态回路在核和细胞质蛋白质量控制中合作。
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Ubiquitin-dependent protein degradation at the endoplasmic reticulum and nuclear envelope.内质网和核膜中泛素依赖性蛋白降解。
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10
Protein Quality Control Degradation in the Nucleus.核内蛋白质质量控制降解。
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含蛋白质量控制 degron 的底物通过泛素连接酶在细胞质和细胞核中被靶向。

Protein quality control degron-containing substrates are differentially targeted in the cytoplasm and nucleus by ubiquitin ligases.

机构信息

Department of Molecular Biophysics and Biochemistry, Yale University, New Haven, CT 06511, USA.

Department of Chemistry, Yale University, New Haven, CT 06511, USA.

出版信息

Genetics. 2021 Mar 3;217(1):1-19. doi: 10.1093/genetics/iyaa031.

DOI:10.1093/genetics/iyaa031
PMID:33683364
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8045714/
Abstract

Intracellular proteolysis by the ubiquitin-proteasome system regulates numerous processes and contributes to protein quality control (PQC) in all eukaryotes. Covalent attachment of ubiquitin to other proteins is specified by the many ubiquitin ligases (E3s) expressed in cells. Here we determine the E3s in Saccharomyces cerevisiae that function in degradation of proteins bearing various PQC degradation signals (degrons). The E3 Ubr1 can function redundantly with several E3s, including nuclear-localized San1, endoplasmic reticulum/nuclear membrane-embedded Doa10, and chromatin-associated Slx5/Slx8. Notably, multiple degrons are targeted by more ubiquitylation pathways if directed to the nucleus. Degrons initially assigned as exclusive substrates of Doa10 were targeted by Doa10, San1, and Ubr1 when directed to the nucleus. By contrast, very short hydrophobic degrons-typical targets of San1-are shown here to be targeted by Ubr1 and/or San1, but not Doa10. Thus, distinct types of PQC substrates are differentially recognized by the ubiquitin system in a compartment-specific manner. In human cells, a representative short hydrophobic degron appended to the C-terminus of GFP-reduced protein levels compared with GFP alone, consistent with a recent study that found numerous natural hydrophobic C-termini of human proteins can act as degrons. We also report results of bioinformatic analyses of potential human C-terminal degrons, which reveal that most peptide substrates of Cullin-RING ligases (CRLs) are of low hydrophobicity, consistent with previous data showing CRLs target degrons with specific sequences. These studies expand our understanding of PQC in yeast and human cells, including the distinct but overlapping PQC E3 substrate specificity of the cytoplasm and nucleus.

摘要

细胞内蛋白质的泛素-蛋白酶体系统降解调控着真核生物中众多的过程,并有助于蛋白质质量控制(PQC)。泛素与其他蛋白质的共价连接由细胞中表达的许多泛素连接酶(E3)指定。在这里,我们确定了酿酒酵母中用于降解带有各种 PQC 降解信号(degrons)的蛋白质的 E3。E3 Ubr1 可以与包括核定位的 San1、内质网/核膜嵌入的 Doa10 和染色质相关的 Slx5/Slx8 在内的几种 E3 冗余发挥作用。值得注意的是,如果导向细胞核,多个 degrons 会被更多的泛素化途径靶向。最初被指定为 Doa10 专属底物的 degrons,当被导向细胞核时,会被 Doa10、San1 和 Ubr1 靶向。相比之下,非常短的疏水性 degrons——San1 的典型靶标——在这里被 Ubr1 和/或 San1 靶向,但不是 Doa10。因此,不同类型的 PQC 底物以特定于区室的方式被泛素系统以不同的方式识别。在人类细胞中,GFP 末端添加代表性的短疏水性 degron 会降低蛋白水平,与最近一项研究发现的许多人类蛋白的天然疏水性 C 末端可以作为 degrons 的结果一致。我们还报告了对潜在人类 C 末端 degrons 的生物信息学分析结果,该结果显示 Cullin-RING 连接酶(CRL)的大多数肽底物的疏水性较低,与之前的数据一致,表明 CRL 以特定序列靶向 degrons。这些研究扩展了我们对酵母和人类细胞 PQC 的理解,包括细胞质和细胞核中不同但重叠的 PQC E3 底物特异性。