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非洲爪蟾小热休克蛋白Hsp30C和Hsp30D可使受热和化学变性的荧光素酶保持可折叠状态。

Xenopus small heat shock proteins, Hsp30C and Hsp30D, maintain heat- and chemically denatured luciferase in a folding-competent state.

作者信息

Abdulle Rashid, Mohindra Ashvin, Fernando Pasan, Heikkila John J

机构信息

Department of Biology, University of Waterloo, Ontario, Canada.

出版信息

Cell Stress Chaperones. 2002 Jan;7(1):6-16. doi: 10.1379/1466-1268(2002)007<0006:xshsph>2.0.co;2.

Abstract

In this study we characterized the chaperone functions of Xenopus recombinant Hsp30C and Hsp30D by using an in vitro rabbit reticulocyte lysate (RRL) refolding assay system as well as a novel in vivo Xenopus oocyte microinjection assay. Whereas heat- or chemically denaturated luciferase (LUC) did not regain significant enzyme activity when added to RRL or microinjected into Xenopus oocytes, compared with native LUC, denaturation of LUC in the presence of Hsp30C resulted in a reactivation of enzyme activity up to 80-100%. Recombinant Hsp30D, which differs from Hsp30C by 19 amino acids, was not as effective as its isoform in preventing LUC aggregation or maintaining it in a folding-competent state. Removal of the first 17 amino acids from the N-terminal region of Hsp30C had little effect on its ability to maintain LUC in a folding-competent state. However, deletion of the last 25 residues from the C-terminal end dramatically reduced Hsp30C chaperone activity. Coimmunoprecipitation and immunoblot analyses revealed that Hsp30C remained associated with heat-denatured LUC during incubation in reticulocyte lysate and that the C-terminal mutant exhibited reduced affinity for unfolded LUC. Finally, we found that Hsc70 present in RRL interacted only with heat-denatured LUC bound to Hsp30C. These findings demonstrate that Xenopus Hsp30 can maintain denatured target protein in a folding-competent state and that the C-terminal end is involved in this function.

摘要

在本研究中,我们通过使用体外兔网织红细胞裂解物(RRL)重折叠检测系统以及一种新型的体内非洲爪蟾卵母细胞显微注射检测,对非洲爪蟾重组Hsp30C和Hsp30D的伴侣功能进行了表征。与天然荧光素酶(LUC)相比,当热变性或化学变性的LUC添加到RRL中或显微注射到非洲爪蟾卵母细胞中时,其并未恢复显著的酶活性。然而,在Hsp30C存在的情况下LUC变性后,酶活性可重新激活至80 - 100%。重组Hsp30D与Hsp30C有19个氨基酸的差异,在防止LUC聚集或将其维持在可折叠状态方面不如其异构体有效。从Hsp30C的N端区域去除前17个氨基酸对其将LUC维持在可折叠状态的能力影响不大。然而,从C端删除最后25个残基会显著降低Hsp30C的伴侣活性。免疫共沉淀和免疫印迹分析表明,在网织红细胞裂解物中孵育期间,Hsp30C与热变性的LUC保持结合,并且C端突变体对未折叠的LUC的亲和力降低。最后,我们发现RRL中存在的Hsc70仅与结合到Hsp30C的热变性LUC相互作用。这些发现表明,非洲爪蟾Hsp30可以将变性的靶蛋白维持在可折叠状态,并且C端参与了这一功能。

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