LOCATION OF A FOLDING PROTEIN AND SHAPE CHANGES IN GROEL-GROES COMPLEXES IMAGED BY CRYOELECTRON MICROSCOPY

被引:321
作者
CHEN, S
ROSEMAN, AM
HUNTER, AS
WOOD, SP
BURSTON, SG
RANSON, NA
CLARKE, AR
SAIBIL, HR
机构
[1] UNIV BRISTOL,DEPT BIOCHEM,BRISTOL BS8 1TD,ENGLAND
[2] UNIV BRISTOL,CTR MOLEC RECOGNIT,BRISTOL BS8 1TD,ENGLAND
基金
英国惠康基金;
关键词
D O I
10.1038/371261a0
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 mediated by the molecular chaperone GroEL occurs by its binding to non-native polypeptide substrates and is driven by ATP hydrolysis(1). Both of these processes are influenced by the reversible association of the co-protein, GroES (refs 2-4). GroEL and other chaperonin 60 molecules(5) are large, cylindrical oligomers consisting of two stacked heptameric rings of subunits(6,7); each ring forms a cage-like structure(8) thought to bind polypeptides in a central cavity(8-10). Chaperonins play a passive role in folding by binding or sequestering folding proteins to prevent their aggregation(11-13), but they may also actively unfold substrate proteins trapped in misfolded forms, enabling them to assume productive folding conformations(14-16). Biochemical studies show that GroES improves the efficiency of GroEL function(2,3,17), but the structural basis for this is unknown. Here we report the first direct visualization, by cryo-electron microscopy, of a non-native protein substrate (malate dehydrogenase) bound to the mobile, outer domains at one end of GroEL. Addition of GroES to GroEL in the presence of ATP causes a dramatic hinge opening of about 60 degrees. GroES binds to the equivalent surface of the GroEL outer domains, but on the opposite end of the GroEL oligomer to the protein substrate.
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页码:261 / 264
页数:4
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