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伴侣蛋白60与线粒体硫氧还蛋白之间稳定的、可再激活复合物的特性研究

Characterization of a stable, reactivatable complex between chaperonin 60 and mitochondrial rhodanese.

作者信息

Mendoza J A, Butler M C, Horowitz P M

机构信息

Department of Biochemistry, University of Texas Health Science Center, San Antonio 78284-7760.

出版信息

J Biol Chem. 1992 Dec 5;267(34):24648-54.

PMID:1360012
Abstract

Efficient formation of the cpn60-rhodanese complex can be achieved by mixing unfolded rhodanese with excess cpn60 at low temperature. By employing these conditions, a stable and highly reactivatable complex is formed. The complex is not formed when native enzyme is used. Concentrations of NaCl, as high as 0.75 M, do not have any effect on the formation or disruption of the binary complex. cpn60-bound rhodanese contains an exposed hydrophobic surface, as detected by the binding of the fluorescent reporter, 1-anilinonaphthalene-8-sulfonic acid. The intrinsic fluorescence of cpn60-bound rhodanese reports that the average tryptophan is in an intermediate environment between that found in unfolded and native states. This form of rhodanese has an accessibility to quenching by acrylamide or iodide that is intermediate between the unfolded and native forms of the enzyme. Protease susceptibility studies show that rhodanese bound to cpn60 exhibits a trypsin digestion pattern similar to the native enzyme, although it is more rapidly proteolyzed. The results suggest that the conformation of cpn60-bound rhodanese resembles a native-like conformation, but with increased flexibility. Further, only intact rhodanese or enzyme lacking its N-terminal sequence can interact with cpn60 and form a stable binary complex. The protein fragment corresponding to the rhodanese N-terminal sequence did not form part of a stable complex with cpn60.

摘要

通过在低温下将未折叠的硫氧还蛋白与过量的伴侣蛋白60混合,可以高效形成伴侣蛋白60-硫氧还蛋白复合物。采用这些条件,可形成一种稳定且高度可再活化的复合物。使用天然酶时则不会形成该复合物。高达0.75 M的NaCl浓度对二元复合物的形成或破坏没有任何影响。如通过荧光报告分子1-苯胺基萘-8-磺酸的结合所检测到的,与伴侣蛋白60结合的硫氧还蛋白含有一个暴露的疏水表面。与伴侣蛋白60结合的硫氧还蛋白的固有荧光表明,平均色氨酸处于未折叠状态和天然状态之间的中间环境。这种形式的硫氧还蛋白对丙烯酰胺或碘化物淬灭的可及性处于该酶未折叠形式和天然形式之间的中间水平。蛋白酶敏感性研究表明,与伴侣蛋白60结合的硫氧还蛋白表现出与天然酶相似的胰蛋白酶消化模式,尽管其蛋白水解速度更快。结果表明,与伴侣蛋白60结合的硫氧还蛋白的构象类似于天然样构象,但具有更高的灵活性。此外,只有完整的硫氧还蛋白或缺少其N端序列的酶才能与伴侣蛋白60相互作用并形成稳定的二元复合物。与硫氧还蛋白N端序列对应的蛋白质片段未与伴侣蛋白60形成稳定复合物的一部分。

相似文献

1
Characterization of a stable, reactivatable complex between chaperonin 60 and mitochondrial rhodanese.伴侣蛋白60与线粒体硫氧还蛋白之间稳定的、可再激活复合物的特性研究
J Biol Chem. 1992 Dec 5;267(34):24648-54.
2
Chaperonin cpn60 from Escherichia coli protects the mitochondrial enzyme rhodanese against heat inactivation and supports folding at elevated temperatures.来自大肠杆菌的伴侣蛋白cpn60可保护线粒体酶硫氰酸酶免受热失活,并在高温下支持其折叠。
J Biol Chem. 1992 Sep 5;267(25):17631-4.
3
Alteration of the quaternary structure of cpn60 modulates chaperonin-assisted folding. Implications for the mechanism of chaperonin action.
J Biol Chem. 1994 Jan 28;269(4):2447-51.
4
The chaperonin assisted and unassisted refolding of rhodanese can be modulated by its N-terminal peptide.伴侣蛋白辅助和非辅助的硫氧还蛋白重折叠可被其N端肽调控。
J Protein Chem. 1994 Jan;13(1):15-22. doi: 10.1007/BF01891988.
5
Chaperonins facilitate the in vitro folding of monomeric mitochondrial rhodanese.伴侣蛋白促进单体线粒体硫氰酸酶的体外折叠。
J Biol Chem. 1991 Jul 15;266(20):13044-9.
6
Sulfhydryl modification of E. coli Cpn60 leads to loss of its ability to support refolding of rhodanese but not to form a binary complex.大肠杆菌Cpn60的巯基修饰导致其丧失支持硫氰酸酶重折叠的能力,但不影响其二元复合物的形成。
J Protein Chem. 1992 Dec;11(6):589-94. doi: 10.1007/BF01024958.
7
Intermediates in the chaperonin-assisted refolding of rhodanese are trapped at low temperature and show a small stoichiometry.硫氰酸酶在伴侣蛋白辅助下重折叠过程中的中间体在低温下被捕获,且化学计量比小。
J Biol Chem. 1991 Sep 15;266(26):16973-6.
8
Physical characterization of a reactivatable liposome-bound rhodanese folding intermediate.
Biochemistry. 1993 Dec 21;32(50):13941-8. doi: 10.1021/bi00213a025.
9
Monomeric chaperonin-60 and its 50-kDa fragment possess the ability to interact with non-native proteins, to suppress aggregation, and to promote protein folding.单体伴侣蛋白60及其50 kDa片段具有与非天然蛋白质相互作用、抑制聚集和促进蛋白质折叠的能力。
J Biol Chem. 1994 Mar 18;269(11):8529-34.
10
Active rhodanese lacking nonessential sulfhydryl groups contains an unstable C-terminal domain and can be bound, inactivated, and reactivated by GroEL.
J Biol Chem. 2003 Jan 17;278(3):1693-9. doi: 10.1074/jbc.M207574200. Epub 2002 Nov 13.

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GroEL Recognizes an Amphipathic Helix and Binds to the Hydrophobic Side.伴侣蛋白GroEL识别两亲性螺旋并结合至疏水侧。
J Biol Chem. 2009 Feb 13;284(7):4324-31. doi: 10.1074/jbc.M804818200. Epub 2008 Dec 12.
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GroEL-mediated protein folding: making the impossible, possible.
GroEL介导的蛋白质折叠:化不可能为可能。
Crit Rev Biochem Mol Biol. 2006 Jul-Aug;41(4):211-39. doi: 10.1080/10409230600760382.
4
A structural model for GroEL-polypeptide recognition.一种用于GroEL-多肽识别的结构模型。
Proc Natl Acad Sci U S A. 1997 Apr 15;94(8):3571-5. doi: 10.1073/pnas.94.8.3571.
5
The chaperonin assisted and unassisted refolding of rhodanese can be modulated by its N-terminal peptide.伴侣蛋白辅助和非辅助的硫氧还蛋白重折叠可被其N端肽调控。
J Protein Chem. 1994 Jan;13(1):15-22. doi: 10.1007/BF01891988.
6
Interaction of GroEL with a highly structured folding intermediate: iterative binding cycles do not involve unfolding.GroEL与高度结构化折叠中间体的相互作用:迭代结合循环不涉及去折叠。
Proc Natl Acad Sci U S A. 1995 Aug 29;92(18):8100-4. doi: 10.1073/pnas.92.18.8100.