Literature DB >> 18430731

Determination of the number of active GroES subunits in the fused heptamer GroES required for interactions with GroEL.

Tatsuya Nojima1, Shigeto Murayama, Masasuke Yoshida, Fumihiro Motojima.   

Abstract

A double-heptamer ring chaperonin GroEL binds denatured substrate protein, ATP, and GroES to the same heptamer ring and encapsulates substrate into the central cavity underneath GroES where productive folding occurs. GroES is a disk-shaped heptamer, and each subunit has a GroEL-binding loop. The residues of the GroEL subunit responsible for GroES binding largely overlap those involved in substrate binding, and the mechanism by which GroES can replace the substrate when GroES binds to GroEL/substrate complex remains to be clarified. To address this question, we generated single polypeptide GroES by fusing seven subunits with various combinations of active and GroEL binding-defective subunits. Functional tests of the fused GroES variants indicated that four active GroES subunits were required for efficient formation of the stable GroEL/GroES complex and five subunits were required for the productive GroEL/substrate/GroES complex. An increase in the number of defective GroES subunits resulted in a slowing of encapsulation and folding. These results indicate the presence of an intermediate GroEL/substrate/GroES complex in which the substrate and GroES bind to GroEL by sharing seven common binding sites.

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Year:  2008        PMID: 18430731     DOI: 10.1074/jbc.M709825200

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  11 in total

1.  Single-molecule study on the decay process of the football-shaped GroEL-GroES complex using zero-mode waveguides.

Authors:  Tomoya Sameshima; Ryo Iizuka; Taro Ueno; Junichi Wada; Mutsuko Aoki; Naonobu Shimamoto; Iwao Ohdomari; Takashi Tanii; Takashi Funatsu
Journal:  J Biol Chem       Date:  2010-05-28       Impact factor: 5.157

2.  Polypeptide in the chaperonin cage partly protrudes out and then folds inside or escapes outside.

Authors:  Fumihiro Motojima; Masasuke Yoshida
Journal:  EMBO J       Date:  2010-10-19       Impact factor: 11.598

Review 3.  Chaperone machines for protein folding, unfolding and disaggregation.

Authors:  Helen Saibil
Journal:  Nat Rev Mol Cell Biol       Date:  2013-09-12       Impact factor: 94.444

4.  Stimulating the substrate folding activity of a single ring GroEL variant by modulating the cochaperonin GroES.

Authors:  Melissa Illingworth; Andrew Ramsey; Zhida Zheng; Lingling Chen
Journal:  J Biol Chem       Date:  2011-07-10       Impact factor: 5.157

5.  Probing open conformation of GroEL rings by cross-linking reveals single and double open ring structures of GroEL in ADP and ATP.

Authors:  Tatsuya Nojima; Masasuke Yoshida
Journal:  J Biol Chem       Date:  2009-06-11       Impact factor: 5.157

Review 6.  Protein folding and aggregation in bacteria.

Authors:  Raimon Sabate; Natalia S de Groot; Salvador Ventura
Journal:  Cell Mol Life Sci       Date:  2010-04-01       Impact factor: 9.261

7.  Effects of C-terminal Truncation of Chaperonin GroEL on the Yield of In-cage Folding of the Green Fluorescent Protein.

Authors:  So Ishino; Yasushi Kawata; Hideki Taguchi; Naoko Kajimura; Katsumi Matsuzaki; Masaru Hoshino
Journal:  J Biol Chem       Date:  2015-04-17       Impact factor: 5.157

8.  Escherichia coli transcription termination factor NusA: heat-induced oligomerization and chaperone activity.

Authors:  Kun Li; Tianyi Jiang; Bo Yu; Limin Wang; Chao Gao; Cuiqing Ma; Ping Xu; Yanhe Ma
Journal:  Sci Rep       Date:  2013       Impact factor: 4.379

9.  The Cpn10(1) co-chaperonin of A. thaliana functions only as a hetero-oligomer with Cpn20.

Authors:  Anna Vitlin Gruber; Gal Zizelski; Abdussalam Azem; Celeste Weiss
Journal:  PLoS One       Date:  2014-11-24       Impact factor: 3.240

Review 10.  ATP-driven molecular chaperone machines.

Authors:  Daniel K Clare; Helen R Saibil
Journal:  Biopolymers       Date:  2013-11       Impact factor: 2.505

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