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Active rhodanese lacking nonessential sulfhydryl groups contains an unstable C-terminal domain and can be bound, inactivated, and reactivated by GroEL.

作者信息

Ybarra Jesse, Bhattacharyya Anusri Mitra, Panda Markandeswar, Horowitz Paul M

机构信息

Department of Biochemistry, University of Texas Health Science Center, San Antonio, Texas 78229-3900, USA.

出版信息

J Biol Chem. 2003 Jan 17;278(3):1693-9. doi: 10.1074/jbc.M207574200. Epub 2002 Nov 13.

DOI:10.1074/jbc.M207574200
PMID:12433928
Abstract

Mutation of all nonessential cysteine residues in rhodanese turns the enzyme into a form (C3S) that is fully active but less stable than wild type (WT). This less stable mutant allowed testing of two hypotheses; (a) the two domains of rhodanese are differentially stable, and (b) the chaperonin GroEL can bind better to less stable proteins. Reduced temperatures during expression and purification were required to limit inclusion bodies and obtain usable quantities of soluble C3S. C3S and WT have the same secondary structures by circular dichroism. C3S, in the absence of the substrate thiosulfate, is cleaved by trypsin to give a stable 21-kDa species. With thiosulfate, C3S is resistant to proteolysis. In contrast, wild type rhodanese is not proteolyzed significantly under any of the experimental conditions used here. Mass spectrometric analysis of bands from SDS gels of digested C3S indicated that the C-terminal domain of C3S was preferentially digested. Active C3S can exist in a state(s) recognized by GroEL, and it displays additional accessibility of tryptophans to acrylamide quenching. Unlike WT, the sulfur-loaded mutant form (C3S-ES) shows slow inactivation in the presence of GroEL. Both WT and C3S lacking transferred sulfur (WT-E and C3S-E) become inactivated. Inactivation is not due to irreversible covalent modification, since GroEL can reactivate both C3S-E and WT-E in the presence of GroES and ATP. C3S-E can be reactivated to 100%, the highest reactivation observed for any form of rhodanese. These results suggest that inactivation of C3S-E or WT-E is due to formation of an altered, labile conformation accessible from the native state. This conformation cannot as easily be achieved in the presence of the substrate, thiosulfate.

摘要

相似文献

1
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.
2
Active rhodanese lacking nonessential sulfhydryl groups has increased hydrophobic exposure not observed in wild-type enzyme.缺乏非必需巯基的活性硫氰酸酶比野生型酶具有更高的疏水性暴露。
Protein J. 2004 May;23(4):255-61. doi: 10.1023/b:jopc.0000027850.01893.2e.
3
Partitioning of rhodanese onto GroEL. Chaperonin binds a reversibly oxidized form derived from the native protein.硫氰酸酶在伴侣蛋白GroEL上的分配。伴侣蛋白结合了源自天然蛋白质的可逆氧化形式。
J Biol Chem. 1998 Oct 30;273(44):28677-81. doi: 10.1074/jbc.273.44.28677.
4
Hydrogen peroxide induces the dissociation of GroEL into monomers that can facilitate the reactivation of oxidatively inactivated rhodanese.过氧化氢可诱导GroEL解离成单体,这些单体能够促进氧化失活的硫氰酸酶的重新激活。
Int J Biochem Cell Biol. 2004 Mar;36(3):505-18. doi: 10.1016/j.biocel.2003.08.012.
5
NH2-terminal sequence truncation decreases the stability of bovine rhodanese, minimally perturbs its crystal structure, and enhances interaction with GroEL under native conditions.氨基末端序列截短会降低牛硫代硫酸硫转移酶的稳定性,对其晶体结构的影响最小,并在天然条件下增强与分子伴侣GroEL的相互作用。
J Biol Chem. 1999 May 14;274(20):13938-47. doi: 10.1074/jbc.274.20.13938.
6
Rhodanese can partially refold in its GroEL-GroES-ADP complex and can be released to give a homogeneous product.硫氰酸酶可以在其GroEL - GroES - ADP复合物中部分重新折叠,并可以释放出来以得到均质产物。
Biochemistry. 2002 Feb 19;41(7):2421-8. doi: 10.1021/bi0115378.
7
Oxidized GroEL can function as a chaperonin.氧化型GroEL可作为伴侣蛋白发挥作用。
Front Biosci. 2004 Jan 1;9:724-31. doi: 10.2741/1258.
8
Mutation of cysteine 254 facilitates the conformational changes accompanying the interconversion of persulfide-substituted and persulfide-free rhodanese.半胱氨酸254的突变促进了伴随二硫化物取代和无二硫化物硫氰酸酶相互转化的构象变化。
J Biol Chem. 1994 Mar 18;269(11):7903-13.
9
The aggregation state of rhodanese during folding influences the ability of GroEL to assist reactivation.
J Biol Chem. 2001 Aug 3;276(31):28739-43. doi: 10.1074/jbc.M102500200. Epub 2001 Jun 7.
10
Isolation and characterization of rhodanese intermediates during thermal inactivation and their implications for the mechanism of protein aggregation.热失活过程中硫代硫酸硫转移酶中间体的分离与表征及其对蛋白质聚集机制的影响
Biochemistry. 2002 Jan 8;41(1):422-9. doi: 10.1021/bi011726q.

引用本文的文献

1
Active rhodanese lacking nonessential sulfhydryl groups has increased hydrophobic exposure not observed in wild-type enzyme.缺乏非必需巯基的活性硫氰酸酶比野生型酶具有更高的疏水性暴露。
Protein J. 2004 May;23(4):255-61. doi: 10.1023/b:jopc.0000027850.01893.2e.