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1
Thermolabile folding intermediates: inclusion body precursors and chaperonin substrates.热不稳定折叠中间体:包涵体前体和伴侣蛋白底物。
FASEB J. 1996 Jan;10(1):57-66. doi: 10.1096/fasebj.10.1.8566549.
2
Selective in vivo rescue by GroEL/ES of thermolabile folding intermediates to phage P22 structural proteins.GroEL/ES对噬菌体P22结构蛋白热不稳定折叠中间体的体内选择性拯救。
J Biol Chem. 1994 Nov 11;269(45):27941-51.
3
Prevalence of temperature sensitive folding mutations in the parallel beta coil domain of the phage P22 tailspike endorhamnosidase.噬菌体P22尾刺内鼠李糖苷酶平行β-螺旋结构域中温度敏感折叠突变的发生率。
J Mol Biol. 1997 Mar 21;267(1):88-102. doi: 10.1006/jmbi.1996.0841.
4
Cold rescue of the thermolabile tailspike intermediate at the junction between productive folding and off-pathway aggregation.在有效折叠与非天然聚集交界处对热不稳定尾刺中间体进行低温挽救。
Protein Sci. 1998 Jul;7(7):1516-23. doi: 10.1002/pro.5560070704.
5
Multimeric intermediates in the pathway to the aggregated inclusion body state for P22 tailspike polypeptide chains.P22尾刺多肽链形成聚集性包涵体状态途径中的多聚体中间体。
Protein Sci. 1995 May;4(5):900-8. doi: 10.1002/pro.5560040509.
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Plasticity and steric strain in a parallel beta-helix: rational mutations in the P22 tailspike protein.平行β-螺旋中的可塑性与空间位阻:P22尾刺蛋白中的合理突变
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Mechanism of phage P22 tailspike protein folding mutations.噬菌体P22尾刺蛋白折叠突变的机制。
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The interdigitated beta-helix domain of the P22 tailspike protein acts as a molecular clamp in trimer stabilization.P22尾刺蛋白的指状β-螺旋结构域在三聚体稳定中起分子钳的作用。
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Phage P22 tailspike protein: removal of head-binding domain unmasks effects of folding mutations on native-state thermal stability.噬菌体P22尾刺蛋白:去除头部结合结构域可揭示折叠突变对天然态热稳定性的影响。
Protein Sci. 1998 Oct;7(10):2223-32. doi: 10.1002/pro.5560071021.
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Thermostability of temperature-sensitive folding mutants of the P22 tailspike protein.P22尾刺蛋白温度敏感型折叠突变体的热稳定性
J Biol Chem. 1989 Jun 25;264(18):10693-8.

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The Right-Handed Parallel β-Helix Topology of Pectin Methylesterase Is Intimately Associated with Both Sequential Folding and Resistance to High Pressure.果胶甲酯酶右手平行β-螺旋拓扑结构与顺序折叠和高压抗性密切相关。
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Toward a cell-free hydantoinase process: screening for expression optimization and one-step purification as well as immobilization of hydantoinase and carbamoylase.迈向无细胞海因酶工艺:筛选表达优化、一步纯化以及海因酶和氨甲酰酶的固定化。
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Inducible polymerization and two-dimensional assembly of the repeats-in-toxin (RTX) domain from the Pseudomonas aeruginosa alkaline protease.诱导聚合和铜绿假单胞菌碱性蛋白酶重复毒素 (RTX) 结构域的二维组装。
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Protein quantity on the air-solid interface determines degradation rates of human growth hormone in lyophilized samples.气固界面上的蛋白质数量决定了冻干样品中人生长激素的降解速率。
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The role of interactions between bacterial chaperone, aspartate aminotransferase, and viral protein during virus infection in high temperature environment: the interactions between bacterium and virus proteins.高温环境下病毒感染中细菌伴侣蛋白、天冬氨酸氨基转移酶和病毒蛋白之间相互作用的作用:细菌和病毒蛋白之间的相互作用。
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10
The C-terminal cysteine annulus participates in auto-chaperone function for Salmonella phage P22 tailspike folding and assembly.C 末端半胱氨酸环参与沙门氏菌噬菌体 P22 尾刺折叠和组装的自伴侣功能。
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本文引用的文献

1
Reconstitution of active dimeric ribulose bisphosphate carboxylase from an unfoleded state depends on two chaperonin proteins and Mg-ATP.从无折叠状态重构活性二聚体核酮糖二磷酸羧化酶依赖于两种伴侣蛋白和Mg-ATP。
Nature. 1989;342(6252):884-9. doi: 10.1038/342884a0.
2
Stability and folding of ultrastable proteins: eye lens crystallins and enzymes from thermophiles.超稳定蛋白质的稳定性与折叠:眼晶状体晶状体蛋白及嗜热菌中的酶
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A quantitative assessment of the role of the chaperonin proteins in protein folding in vivo.伴侣蛋白在体内蛋白质折叠中作用的定量评估。
FASEB J. 1996 Jan;10(1):5-9. doi: 10.1096/fasebj.10.1.8566548.
4
New domain motif: the structure of pectate lyase C, a secreted plant virulence factor.新的结构域基序:果胶酸裂解酶C的结构,一种分泌型植物致病因子。
Science. 1993 Jun 4;260(5113):1503-7. doi: 10.1126/science.8502994.
5
Three-dimensional transformation of capsids associated with genome packaging in a bacterial virus.与细菌病毒中基因组包装相关的衣壳的三维转变
J Mol Biol. 1993 May 5;231(1):65-74. doi: 10.1006/jmbi.1993.1257.
6
Temperature-sensitive mutations in the phage P22 coat protein which interfere with polypeptide chain folding.
J Biol Chem. 1993 May 5;268(13):9358-68.
7
Nucleation and growth phases in the polymerization of coat and scaffolding subunits into icosahedral procapsid shells.衣壳和支架亚基聚合成二十面体原衣壳壳的成核和生长阶段。
Biophys J. 1993 Mar;64(3):824-35. doi: 10.1016/S0006-3495(93)81443-7.
8
Folding of the phage P22 coat protein in vitro.噬菌体P22外壳蛋白的体外折叠
Biochemistry. 1993 Oct 12;32(40):10839-47. doi: 10.1021/bi00091a040.
9
Temperature-sensitive mutations and second-site suppressor substitutions affect folding of the P22 tailspike protein in vitro.温度敏感突变和第二位点抑制性取代影响P22尾刺蛋白在体外的折叠。
J Biol Chem. 1993 Sep 25;268(27):20071-5.
10
Conformational transformations in the protein lattice of phage P22 procapsids.噬菌体P22原衣壳蛋白晶格中的构象转变。
Biophys J. 1993 Jul;65(1):227-35. doi: 10.1016/S0006-3495(93)81073-7.

热不稳定折叠中间体:包涵体前体和伴侣蛋白底物。

Thermolabile folding intermediates: inclusion body precursors and chaperonin substrates.

作者信息

King J, Haase-Pettingell C, Robinson A S, Speed M, Mitraki A

机构信息

Department of Biology, Massachusetts Institute of Technology, Cambridge 02139, USA.

出版信息

FASEB J. 1996 Jan;10(1):57-66. doi: 10.1096/fasebj.10.1.8566549.

DOI:10.1096/fasebj.10.1.8566549
PMID:8566549
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2040114/
Abstract

An unexpected aspect of the expression of cloned genes is the frequent failure of newly synthesized polypeptide chains to reach their native state, accumulating instead as insoluble inclusion bodies. Amyloid deposits represent a related state associated with a variety of human diseases. The critical folding intermediates at the juncture of productive folding and the off-pathway aggregation reaction have been identified for the phage P22 tailspike and coat proteins. Though the parallel beta coil tailspike is thermostable, an early intracellular folding intermediate is thermolabile. As the temperature of intracellular folding is increased, this species partitions to inclusion bodies, a kinetic trap within the cell. The earliest intermediates along the in vitro aggregation pathway, sequential multimers of the thermolabile folding intermediates, have been directly identified by native gel electrophoresis. Temperature-sensitive folding (tsf) mutations identify sites in the beta coil domain, which direct the junctional intermediate down the productive pathway. Global suppressors of tsf mutants inhibit the pathway to inclusion bodies, rescuing the mutant chains. These mutants identify sites important for avoiding aggregation. Coat folding intermediates also partition to inclusion bodies as temperature is increased. Coat tsf mutants are suppressed by overexpression of the GroE chaperonin, indicating that the thermolabile intermediate is a physiological substrate for GroE. We suggest that many proteins are likely to have thermolabile intermediates in their intracellular folding pathways, which will be precursors to inclusion body formation at elevated temperatures and therefore substrates for heat shock chaperonins.

摘要

克隆基因表达中一个意想不到的方面是新合成的多肽链常常无法达到其天然状态,而是积累形成不溶性的包涵体。淀粉样沉积物代表了一种与多种人类疾病相关的状态。噬菌体P22尾刺蛋白和外壳蛋白在有效折叠和错误折叠聚集反应交界处的关键折叠中间体已被确定。虽然平行β螺旋尾刺蛋白是耐热的,但早期细胞内折叠中间体是热不稳定的。随着细胞内折叠温度的升高,这种中间体就会进入包涵体,这是细胞内的一个动力学陷阱。通过天然凝胶电泳已直接鉴定出沿体外聚集途径最早的中间体,即热不稳定折叠中间体的连续多聚体。温度敏感折叠(tsf)突变确定了β螺旋结构域中的位点,这些位点将连接中间体导向有效折叠途径。tsf突变体的全局抑制子抑制通向包涵体的途径,拯救突变链。这些突变体确定了对避免聚集很重要的位点。随着温度升高,外壳折叠中间体也会进入包涵体。外壳tsf突变体可通过GroE伴侣蛋白的过表达得到抑制,这表明热不稳定中间体是GroE的生理底物。我们认为,许多蛋白质在其细胞内折叠途径中可能有热不稳定中间体,这些中间体在温度升高时将成为包涵体形成的前体,因此是热休克伴侣蛋白的底物。