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2
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Structure and in vivo function of Hsp90.热休克蛋白90(Hsp90)的结构与体内功能。
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A novel chaperone-activity-reducing mechanism of the 90-kDa molecular chaperone HSP90.90 kDa分子伴侣热休克蛋白90(HSP90)一种新的伴侣活性降低机制。
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HtpG is essential for the thermal stress management in cyanobacteria.HtpG对于蓝细菌的热应激管理至关重要。
FEBS Lett. 1999 Sep 17;458(2):117-23. doi: 10.1016/s0014-5793(99)01134-5.
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Heat-induced expression and chemically induced expression of the Escherichia coli stress protein HtpG are affected by the growth environment.大肠杆菌应激蛋白HtpG的热诱导表达和化学诱导表达受生长环境的影响。
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Monomer arrangement in HSP90 dimer as determined by decoration with N and C-terminal region specific antibodies.通过用N端和C端区域特异性抗体进行标记确定的HSP90二聚体中的单体排列。
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The 90-kDa molecular chaperone family: structure, function, and clinical applications. A comprehensive review.90 kDa分子伴侣家族:结构、功能及临床应用。综述。
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7
Requirement for Hsp90 and a CyP-40-type cyclophilin in negative regulation of the heat shock response.热休克反应负调控中Hsp90和一种CyP-40型亲环蛋白的需求
J Biol Chem. 1998 Jul 24;273(30):18974-8. doi: 10.1074/jbc.273.30.18974.
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Molecular mechanism governing heme signaling in yeast: a higher-order complex mediates heme regulation of the transcriptional activator HAP1.酵母中血红素信号传导的分子机制:一种高阶复合物介导转录激活因子HAP1的血红素调节。
Mol Cell Biol. 1998 Jul;18(7):3819-28. doi: 10.1128/MCB.18.7.3819.
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Purification and characterization of prokaryotic and eukaryotic Hsp90.原核生物和真核生物热休克蛋白90(Hsp90)的纯化与特性分析
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10
The physical association of multiple molecular chaperone proteins with mutant p53 is altered by geldanamycin, an hsp90-binding agent.格尔德霉素(一种与热休克蛋白90结合的试剂)改变了多种分子伴侣蛋白与突变型p53的物理关联。
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90 kDa热休克蛋白家族中蛋白质的底物结合特性

Substrate-binding characteristics of proteins in the 90 kDa heat shock protein family.

作者信息

Nemoto T K, Ono T, Tanaka K

机构信息

Department of Oral Biochemistry, Nagasaki University School of Dentistry, 1-7-1 Sakamoto, Nagasaki 852-8588, Japan.

出版信息

Biochem J. 2001 Mar 15;354(Pt 3):663-70. doi: 10.1042/0264-6021:3540663.

DOI:10.1042/0264-6021:3540663
PMID:11237871
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1221698/
Abstract

In the present study we investigated the substrate-binding characteristics of three members of the 90 kDa heat shock protein (HSP90) family, namely the alpha isoform of human HSP90 (HSP90alpha), human GRP94 (94 kDa glucose-regulated protein, a form of HSP90 from endoplasmic reticulum), and HtpG (the Escherichia coli homologue of HSP90) and the domain responsible for these characteristics. The recombinant forms of HSP90alpha, GRP94 and HtpG existed as dimers and became oligomerized at higher temperatures. Among the three family members, HtpG required the highest temperature (65 degrees C) for its transition to oligomeric forms. The precipitation of the substrate protein, glutathione S-transferase, which occurred at 55 degrees C, was efficiently prevented by the simultaneous presence of a sufficient amount of HSP90alpha or GRP94, but not by HtpG, which was still present as a dimer at that temperature. However, precipitation was stopped completely at 65-70 degrees C, at which temperature HtpG was oligomerized. Thus the transition of HSP90-family proteins to a state with self-oligomerization ability is essential for preventing the precipitation of substrate proteins. We then investigated the domain responsible for the substrate binding of HtpG on the basis of the three domain structures. The self-oligomerizing and substrate-binding activities towards glutathione S-transferase and citrate synthase were both located in a single domain, the N-terminal domain (residues 1-336) of HtpG. We therefore propose that the primary peptide-binding site is located in the N-terminal domain of HSP90-family proteins.

摘要

在本研究中,我们调查了90 kDa热休克蛋白(HSP90)家族的三个成员,即人HSP90的α异构体(HSP90α)、人GRP94(94 kDa葡萄糖调节蛋白,一种来自内质网的HSP90形式)和HtpG(HSP90的大肠杆菌同源物)的底物结合特性以及负责这些特性的结构域。HSP90α、GRP94和HtpG的重组形式以二聚体形式存在,并在较高温度下发生寡聚化。在这三个家族成员中,HtpG转变为寡聚形式所需的温度最高(65℃)。在55℃时发生的底物蛋白谷胱甘肽S-转移酶的沉淀,可通过同时存在足量的HSP90α或GRP94而有效防止,但HtpG不能防止,在该温度下HtpG仍以二聚体形式存在。然而,在65 - 70℃时沉淀完全停止,此时HtpG发生寡聚化。因此,HSP90家族蛋白转变为具有自寡聚化能力的状态对于防止底物蛋白沉淀至关重要。然后,我们基于三种结构域结构研究了负责HtpG底物结合的结构域。对谷胱甘肽S-转移酶和柠檬酸合酶的自寡聚化及底物结合活性均位于单个结构域,即HtpG的N端结构域(第1 - 336位氨基酸残基)。因此,我们提出主要的肽结合位点位于HSP90家族蛋白的N端结构域。