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Structure and in vitro molecular chaperone activity of cytosolic small heat shock proteins from pea.豌豆胞质小热激蛋白的结构及体外分子伴侣活性
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本文引用的文献

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Expression of a Conserved Family of Cytoplasmic Low Molecular Weight Heat Shock Proteins during Heat Stress and Recovery.热应激和恢复期间细胞质低分子量热休克蛋白保守家族的表达。
Plant Physiol. 1991 Aug;96(4):1038-47. doi: 10.1104/pp.96.4.1038.
2
Acquisition of Thermotolerance in Soybean Seedlings : Synthesis and Accumulation of Heat Shock Proteins and their Cellular Localization.大豆幼苗耐热性的获得:热激蛋白的合成与积累及其细胞定位。
Plant Physiol. 1984 Jan;74(1):152-60. doi: 10.1104/pp.74.1.152.
3
Characterization and Physiological Function of Class I Low-Molecular-Mass, Heat-Shock Protein Complex in Soybean.大豆中I类低分子量热休克蛋白复合体的特性及生理功能
Plant Physiol. 1995 Jun;108(2):693-701. doi: 10.1104/pp.108.2.693.
4
Molecular chaperones and protein folding in plants.植物中的分子伴侣与蛋白质折叠
Plant Mol Biol. 1996 Oct;32(1-2):191-222. doi: 10.1007/BF00039383.
5
The molecular evolution of the small heat-shock proteins in plants.植物中小热激蛋白的分子进化
Genetics. 1995 Oct;141(2):785-95. doi: 10.1093/genetics/141.2.785.
6
Induction of Chinese hamster HSP27 gene expression in mouse cells confers resistance to heat shock. HSP27 stabilization of the microfilament organization.中国仓鼠HSP27基因在小鼠细胞中的诱导表达赋予了对热休克的抗性。HSP27对微丝组织的稳定作用。
J Biol Chem. 1993 Feb 15;268(5):3420-9.
7
ATP-dependent chaperoning activity of reticulocyte lysate.网织红细胞裂解物的ATP依赖性伴侣活性。
J Biol Chem. 1994 Apr 1;269(13):9493-9.
8
The function of heat-shock proteins in stress tolerance: degradation and reactivation of damaged proteins.热休克蛋白在应激耐受中的作用:受损蛋白质的降解与再激活。
Annu Rev Genet. 1993;27:437-96. doi: 10.1146/annurev.ge.27.120193.002253.
9
Alpha-crystallin, a molecular chaperone, forms a stable complex with carbonic anhydrase upon heat denaturation.α-晶状体蛋白作为一种分子伴侣,在热变性时会与碳酸酐酶形成稳定的复合物。
Biochem Biophys Res Commun. 1993 Feb 15;190(3):786-93. doi: 10.1006/bbrc.1993.1118.
10
Small heat shock proteins are molecular chaperones.小分子热休克蛋白是分子伴侣。
J Biol Chem. 1993 Jan 25;268(3):1517-20.

一种小分子热休克蛋白能稳定结合热变性的模型底物,并可使底物维持在具备折叠能力的状态。

A small heat shock protein stably binds heat-denatured model substrates and can maintain a substrate in a folding-competent state.

作者信息

Lee G J, Roseman A M, Saibil H R, Vierling E

机构信息

Department of Biochemistry, The University of Arizona, Tucson 85721-0106, USA.

出版信息

EMBO J. 1997 Feb 3;16(3):659-71. doi: 10.1093/emboj/16.3.659.

DOI:10.1093/emboj/16.3.659
PMID:9034347
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1169668/
Abstract

The small heat shock proteins (sHSPs) recently have been reported to have molecular chaperone activity in vitro; however, the mechanism of this activity is poorly defined. We found that HSP18.1, a dodecameric sHSP from pea, prevented the aggregation of malate dehydrogenase (MDH) and glyceraldehyde-3-phosphate dehydrogenase heated to 45 degrees C. Under conditions in which HSP18.1 prevented aggregation of substrates, size-exclusion chromatography and electron microscopy revealed that denatured substrates coated the HSP18.1 dodecamers to form expanded complexes. SDS-PAGE of isolated complexes demonstrated that each HSP18.1 dodecamer can bind the equivalent of 12 MDH monomers, indicating that HSP18.1 has a large capacity for non-native substrates compared with other known molecular chaperones. Photoincorporation of the hydrophobic probe 1,1'-bi(4-anilino)naphthalene-5,5'-disulfonic acid (bis-ANS) into a conserved C-terminal region of HSP18.1 increased reversibly with increasing temperature, but was blocked by prior binding of MDH, suggesting that bis-ANS incorporates proximal to substrate binding regions and that substrate-HSP18.1 interactions are hydrophobic. We also show that heat-denatured firefly luciferase bound to HSP18.1, in contrast to heat-aggregated luciferase, can be reactivated in the presence of rabbit reticulocyte or wheat germ extracts in an ATP-dependent process. These data support a model in which sHSPs prevent protein aggregation and facilitate substrate refolding in conjunction with other molecular chaperones.

摘要

最近有报道称,小热休克蛋白(sHSPs)在体外具有分子伴侣活性;然而,这种活性的机制尚不清楚。我们发现,来自豌豆的十二聚体sHSP——HSP18.1,可防止苹果酸脱氢酶(MDH)和3-磷酸甘油醛脱氢酶在加热至45℃时发生聚集。在HSP18.1防止底物聚集的条件下,尺寸排阻色谱和电子显微镜显示,变性底物覆盖在HSP18.1十二聚体上,形成扩展复合物。对分离出的复合物进行SDS-PAGE分析表明,每个HSP18.1十二聚体可结合相当于12个MDH单体的量,这表明与其他已知分子伴侣相比,HSP18.1对非天然底物具有较大的容纳能力。将疏水探针1,1'-双(4-苯胺基)萘-5,5'-二磺酸(bis-ANS)光掺入HSP18.1保守的C末端区域,其含量随温度升高而可逆增加,但MDH的预先结合可阻断这种增加,这表明bis-ANS在底物结合区域附近掺入,且底物与HSP18.1的相互作用是疏水的。我们还表明,与热聚集的荧光素酶不同,与HSP18.1结合的热变性萤火虫荧光素酶在兔网织红细胞或小麦胚芽提取物存在的情况下,可通过ATP依赖的过程重新激活。这些数据支持了一个模型,即sHSPs可防止蛋白质聚集,并与其他分子伴侣一起促进底物的重新折叠。