Release of both native and non-native proteins from a cis-only GroEL ternary complex

被引:80
作者
Burston, SG
Weissman, JS
Farr, GW
Fenton, WA
Horwich, AL
机构
[1] YALE UNIV,SCH MED,HOWARD HUGHES MED INST,BOYER CTR,NEW HAVEN,CT 06510
[2] YALE UNIV,DEPT GENET,BOYER CTR,NEW HAVEN,CT 06510
关键词
D O I
10.1038/383096a0
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
PROTEIN folding by the double-ring chaperonin GroEL is initiated in cts ternary complexes, in which polypeptide is sequestered in the central channel of a GroEL ring, capped by the co-chaperonin GroES(1-3), The cis ternary complex is dissociated (half-life of similar to 15 s) by trans-sided ATP hydrolysis, which triggers release of GroES(4-6). For the substrate protein rhodanese, only similar to 15% of cis-localized molecules attain their native form before hydrolysis(2,7). A major question concerning the GroEL mechanism is whether both native and non-native forms are released from the cis complex, Here we address this question using a 'cis-only' mixed-ring GroEL complex that binds polypeptide and GroES on only one of its two rings, This complex mediates refolding of rhodanese but, as with wild-type GroEL, renaturation is quenched by addition of mutant GroEL 'traps', which bind but do not release polypeptide substrate(7,8), This indicates that nonnative forms are released from the cis complex, Quenching of refolding by traps was also observed under physiological conditions, both in undiluted Xenopus oocyte extract and in intact oocytes, We conclude that release of non-native forms from GroEL in vivo allows a kinetic partitioning among various chaperones and proteolytic components, which determines both the conformation and lifetime of a protein.
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页码:96 / 99
页数:4
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