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1
Genetic study of interactions between the cytoskeletal assembly protein sla1 and prion-forming domain of the release factor Sup35 (eRF3) in Saccharomyces cerevisiae.酿酒酵母中细胞骨架组装蛋白sla1与释放因子Sup35(eRF3)的朊病毒形成结构域之间相互作用的遗传学研究。
Genetics. 1999 Sep;153(1):81-94. doi: 10.1093/genetics/153.1.81.
2
The small heat shock protein Hsp31 cooperates with Hsp104 to modulate Sup35 prion aggregation.小分子热休克蛋白Hsp31与Hsp104协同作用,调节Sup35朊病毒聚集体。
Prion. 2016 Nov;10(6):444-465. doi: 10.1080/19336896.2016.1234574.
3
Poly(A)-binding protein acts in translation termination via eukaryotic release factor 3 interaction and does not influence [PSI(+)] propagation.聚腺苷酸结合蛋白通过与真核释放因子3相互作用参与翻译终止,且不影响[PSI(+)]的传播。
Mol Cell Biol. 2002 May;22(10):3301-15. doi: 10.1128/MCB.22.10.3301-3315.2002.
4
Interactions of the chaperone Hsp104 with yeast Sup35 and mammalian PrP.伴侣蛋白Hsp104与酵母Sup35及哺乳动物PrP的相互作用。
Proc Natl Acad Sci U S A. 1997 Dec 9;94(25):13932-7. doi: 10.1073/pnas.94.25.13932.
5
Chaperones that cure yeast artificial [PSI+] and their prion-specific effects.治愈酵母人工[PSI+]的分子伴侣及其朊病毒特异性效应。
Curr Biol. 2000 Nov 16;10(22):1443-6. doi: 10.1016/s0960-9822(00)00802-2.
6
Antagonistic interactions between yeast chaperones Hsp104 and Hsp70 in prion curing.酵母伴侣蛋白Hsp104和Hsp70在朊病毒治愈中的拮抗相互作用。
Mol Cell Biol. 1999 Feb;19(2):1325-33. doi: 10.1128/MCB.19.2.1325.
7
N-terminal domain of yeast Hsp104 chaperone is dispensable for thermotolerance and prion propagation but necessary for curing prions by Hsp104 overexpression.酵母Hsp104分子伴侣的N端结构域对于耐热性和朊病毒传播并非必需,但对于通过Hsp104过表达治愈朊病毒却是必需的。
Genetics. 2006 Jun;173(2):611-20. doi: 10.1534/genetics.106.056820. Epub 2006 Apr 2.
8
A systematic evaluation of the function of the protein-remodeling factor Hsp104 in [PSI+] prion propagation in S. cerevisiae by comprehensive chromosomal mutations.通过全面的染色体突变对蛋白质重塑因子Hsp104在酿酒酵母中[PSI+]朊病毒传播功能的系统评估。
Prion. 2007 Jan-Mar;1(1):69-77. doi: 10.4161/pri.1.1.4060. Epub 2007 Jan 26.
9
Importance of low-oligomeric-weight species for prion propagation in the yeast prion system Sup35/Hsp104.低寡聚体分子量物种在酵母朊病毒系统Sup35/Hsp104中对朊病毒传播的重要性。
Proc Natl Acad Sci U S A. 2003 Aug 5;100(16):9286-91. doi: 10.1073/pnas.1233535100. Epub 2003 Jul 22.
10
Modulation of prion formation, aggregation, and toxicity by the actin cytoskeleton in yeast.酵母中肌动蛋白细胞骨架对朊病毒形成、聚集及毒性的调控
Mol Cell Biol. 2006 Jan;26(2):617-29. doi: 10.1128/MCB.26.2.617-629.2006.

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Implications of the Actin Cytoskeleton on the Multi-Step Process of [] Prion Formation.肌动蛋白细胞骨架对[ ]朊病毒形成的多步骤过程的影响。
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Mutant Huntingtin Protein Interaction Map Implicates Dysregulation of Multiple Cellular Pathways in Neurodegeneration of Huntington's Disease.亨廷顿病神经退行性变中多个细胞通路的失调涉及突变亨廷顿蛋白相互作用图谱。
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Dangerous Stops: Nonsense Mutations Can Dramatically Increase Frequency of Prion Conversion.危险的停顿:无意义突变可显著增加朊病毒转化的频率。
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The actin cytoskeletal network plays a role in yeast prion transmission and contributes to prion stability.肌动蛋白细胞骨架网络在酵母朊病毒传播中发挥作用,并有助于朊病毒的稳定性。
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8
DMSO-mediated curing of several yeast prion variants involves Hsp104 expression and protein solubilization, and is decreased in several autophagy related gene (atg) mutants.DMSO 介导的几种酵母朊病毒变体的修复涉及 Hsp104 的表达和蛋白质溶解,并且在几种自噬相关基因(atg)突变体中减少。
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Yeast Sup35 Prion Structure: Two Types, Four Parts, Many Variants.酵母 Sup35 朊病毒结构:两种类型,四个部分,多种变体。
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The Pub1 and Upf1 Proteins Act in Concert to Protect Yeast from Toxicity of the [PSI⁺] Prion.Pub1 和 Upf1 蛋白协同作用保护酵母免受 [PSI⁺] 朊病毒毒性的影响。
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本文引用的文献

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CYTOPLASMIC INHERITANCE OF THE ORGANIZATION OF THE CELL CORTEX IN PARAMECIUM AURELIA.尾草履虫细胞皮层组织的细胞质遗传
Proc Natl Acad Sci U S A. 1965 Feb;53(2):275-82. doi: 10.1073/pnas.53.2.275.
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Prion domain initiation of amyloid formation in vitro from native Ure2p.朊病毒结构域在体外由天然Ure2p引发淀粉样蛋白形成。
Science. 1999 Feb 26;283(5406):1339-43. doi: 10.1126/science.283.5406.1339.
3
Antagonistic interactions between yeast chaperones Hsp104 and Hsp70 in prion curing.酵母伴侣蛋白Hsp104和Hsp70在朊病毒治愈中的拮抗相互作用。
Mol Cell Biol. 1999 Feb;19(2):1325-33. doi: 10.1128/MCB.19.2.1325.
4
SH3GL3 associates with the Huntingtin exon 1 protein and promotes the formation of polygln-containing protein aggregates.SH3GL3与亨廷顿蛋白外显子1蛋白结合,并促进含多聚谷氨酰胺蛋白聚集体的形成。
Mol Cell. 1998 Oct;2(4):427-36. doi: 10.1016/s1097-2765(00)80142-2.
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Huntingtin acts in the nucleus to induce apoptosis but death does not correlate with the formation of intranuclear inclusions.亨廷顿蛋白在细胞核中发挥作用以诱导细胞凋亡,但细胞死亡与核内包涵体的形成并无关联。
Cell. 1998 Oct 2;95(1):55-66. doi: 10.1016/s0092-8674(00)81782-1.
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Mechanism of inhibition of Psi+ prion determinant propagation by a mutation of the N-terminus of the yeast Sup35 protein.酵母 Sup35 蛋白 N 端突变抑制 Psi+ 朊病毒决定簇传播的机制。
EMBO J. 1998 Oct 1;17(19):5805-10. doi: 10.1093/emboj/17.19.5805.
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A critical role for amino-terminal glutamine/asparagine repeats in the formation and propagation of a yeast prion.氨基末端谷氨酰胺/天冬酰胺重复序列在酵母朊病毒形成和传播中的关键作用。
Cell. 1998 Jun 26;93(7):1241-52. doi: 10.1016/s0092-8674(00)81467-1.
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Genetic and environmental factors affecting the de novo appearance of the [PSI+] prion in Saccharomyces cerevisiae.影响酿酒酵母中[PSI+]朊病毒从头出现的遗传和环境因素。
Genetics. 1997 Oct;147(2):507-19. doi: 10.1093/genetics/147.2.507.
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Prion diseases and the BSE crisis.朊病毒疾病与疯牛病危机。
Science. 1997 Oct 10;278(5336):245-51. doi: 10.1126/science.278.5336.245.
10
The protein product of the het-s heterokaryon incompatibility gene of the fungus Podospora anserina behaves as a prion analog.粪生粪壳菌(Podospora anserina)的het-s异核体不相容基因的蛋白质产物表现为一种朊病毒类似物。
Proc Natl Acad Sci U S A. 1997 Sep 2;94(18):9773-8. doi: 10.1073/pnas.94.18.9773.

酿酒酵母中细胞骨架组装蛋白sla1与释放因子Sup35(eRF3)的朊病毒形成结构域之间相互作用的遗传学研究。

Genetic study of interactions between the cytoskeletal assembly protein sla1 and prion-forming domain of the release factor Sup35 (eRF3) in Saccharomyces cerevisiae.

作者信息

Bailleul P A, Newnam G P, Steenbergen J N, Chernoff Y O

机构信息

School of Biology, Georgia Institute of Technology, Atlanta, Georgia 30332-0230, USA.

出版信息

Genetics. 1999 Sep;153(1):81-94. doi: 10.1093/genetics/153.1.81.

DOI:10.1093/genetics/153.1.81
PMID:10471702
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1460745/
Abstract

Striking similarities between cytoskeletal assembly and the "nucleated polymerization" model of prion propagation suggest that similar or overlapping sets of proteins may assist in both processes. We show that the C-terminal domain of the yeast cytoskeletal assembly protein Sla1 (Sla1C) specifically interacts with the N-terminal prion-forming domain (Sup35N) of the yeast release factor Sup35 (eRF3) in the two-hybrid system. Sla1C and several other Sup35N-interacting proteins also exhibit two-hybrid interactions with the poly-Gln-expanded N-proximal fragment of human huntingtin, which promotes Huntington disease-associated aggregation. The Sup35N-Sla1C interaction is inhibited by Sup35N alterations that make Sup35 unable to propagate the [PSI(+)] state and by the absence of the chaperone protein Hsp104, which is essential for [PSI] propagation. In a Sla1(-) background, [PSI] curing by dimethylsulfoxide or excess Hsp104 is increased, while translational readthrough and de novo [PSI] formation induced by excess Sup35 or Sup35N are decreased. These data show that, in agreement with the proposed function of Sla1 during cytoskeletal formation, Sla1 assists in [PSI] formation and propagation, but is not required for these processes. Sla1(-) strains are sensitive to some translational inhibitors, and some sup35 mutants, obtained in a Sla1(-) background, are sensitive to Sla1, suggesting that the interaction between Sla1 and Sup35 proteins may play a role in the normal function of the translational apparatus. We hypothesize that Sup35N is involved in regulatory interactions with intracellular structural networks, and [PSI] prion may be formed as a by-product of this process.

摘要

细胞骨架组装与朊病毒传播的“成核聚合”模型之间惊人的相似性表明,可能有相似或重叠的蛋白质组在这两个过程中发挥作用。我们发现在双杂交系统中,酵母细胞骨架组装蛋白Sla1的C末端结构域(Sla1C)与酵母释放因子Sup35(eRF3)的N末端朊病毒形成结构域(Sup35N)特异性相互作用。Sla1C和其他几种与Sup35N相互作用的蛋白质也与人亨廷顿蛋白的多聚谷氨酰胺扩展的N近端片段表现出双杂交相互作用,该片段会促进与亨廷顿病相关的聚集。Sup35N-Sla1C相互作用受到使Sup35无法传播[PSI(+)]状态的Sup35N改变以及伴侣蛋白Hsp104缺失的抑制,Hsp104对[PSI]传播至关重要。在Sla1(-)背景下,二甲基亚砜或过量Hsp104诱导的[PSI]消除增加,而过量Sup35或Sup35N诱导的翻译通读和新生[PSI]形成减少。这些数据表明,与Sla1在细胞骨架形成过程中所提出的功能一致,Sla1有助于[PSI]的形成和传播,但这些过程并非必需。Sla1(-)菌株对某些翻译抑制剂敏感,并且在Sla1(-)背景下获得的一些sup35突变体对Sla1敏感,这表明Sla1与Sup35蛋白之间的相互作用可能在翻译装置的正常功能中发挥作用。我们推测Sup35N参与了与细胞内结构网络的调节相互作用,并且[PSI]朊病毒可能是这一过程的副产物。