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在补充有真核伴侣蛋白TRiC的细菌裂解物中进行翻译时高效产生天然肌动蛋白。

Efficient production of native actin upon translation in a bacterial lysate supplemented with the eukaryotic chaperonin TRiC.

作者信息

Stemp Markus J, Guha Suranjana, Hartl F Ulrich, Barral José M

机构信息

Department of Cellular Biochemistry, Max Planck Institute of Biochemistry, Am Klopferspitz 18, D-82152 Martinsried, Germany.

出版信息

Biol Chem. 2005 Aug;386(8):753-7. doi: 10.1515/BC.2005.088.

DOI:10.1515/BC.2005.088
PMID:16201870
Abstract

Recombinant expression of actin in bacteria results in non-native species that aggregate into inclusion bodies. Actin is a folding substrate of TRiC, the chaperonin of the eukaryotic cytosol. By employing bacterial in vitro translation lysates supplemented with purified chaperones, we have found that TRiC is the only eukaryotic chaperone necessary for correct folding of newly translated actin. The actin thus produced binds deoxyribonuclease I and polymerizes into filaments, hallmarks of its native state. In contrast to its rapid folding in the eukaryotic cytosol, actin translated in TRiC-supplemented bacterial lysate folds with slower kinetics, resembling the kinetics upon refolding from denaturant. Lysate supplementation with the bacterial chaperonin GroEL/ES or the DnaK/DnaJ/GrpE chaperones leads to prevention of actin aggregation, yet fails to support its correct folding. This combination of in vitro bacterial translation and TRiC-assisted folding allows a detailed analysis of the mechanisms necessary for efficient actin folding in vivo. In addition, it provides a robust alternative for the production of substantial amounts of eukaryotic proteins that otherwise misfold or lead to cellular toxicity upon expression in heterologous hosts.

摘要

肌动蛋白在细菌中的重组表达会产生聚集形成包涵体的非天然物种。肌动蛋白是真核细胞质伴侣蛋白TRiC的折叠底物。通过使用补充了纯化伴侣蛋白的细菌体外翻译裂解物,我们发现TRiC是新翻译的肌动蛋白正确折叠所必需的唯一真核伴侣蛋白。由此产生的肌动蛋白结合脱氧核糖核酸酶I并聚合成细丝,这是其天然状态的标志。与其在真核细胞质中快速折叠不同,在补充了TRiC的细菌裂解物中翻译的肌动蛋白折叠动力学较慢,类似于从变性剂中重折叠时的动力学。用细菌伴侣蛋白GroEL/ES或DnaK/DnaJ/GrpE伴侣蛋白补充裂解物可防止肌动蛋白聚集,但不能支持其正确折叠。这种体外细菌翻译和TRiC辅助折叠的组合允许对体内有效肌动蛋白折叠所需的机制进行详细分析。此外,它为大量生产真核蛋白提供了一种强大的替代方法,否则这些蛋白在异源宿主中表达时会错误折叠或导致细胞毒性。

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