Role of the helical protrusion in the conformational change and molecular chaperone activity of the archaeal group II chaperonin

被引:32
作者
Iizuka, R
So, S
Inobe, T
Yoshida, T
Zako, T
Kuwajima, K
Yohda, M
机构
[1] Tokyo Univ Agr & Technol, Dept Biotechnol & Life Sci, Tokyo 1848588, Japan
[2] Univ Tokyo, Grad Sch Sci, Dept Phys, Bunkyo Ku, Tokyo 1130033, Japan
关键词
D O I
10.1074/jbc.M400839200
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
To elucidate the exact role of the helical protrusion of a group II chaperonin in its molecular chaperone function, three deletion mutants of the chaperonin from a hyperthermophilic archaeum (Thermococcus sp. strain KS-1) lacking one-third, two-thirds, and the whole of the helical protrusion were constructed. The helical protrusion is thought to be substituted for the co-chaperonin GroES of a group I chaperonin and to be important for binding to unfolded proteins. Protease sensitivity assays and small angle x-ray scattering experiments were performed to demonstrate the conformation change of the wild type protein and the deletion mutants by adenine nucleotides. Whereas the binding of ATP to the wild type protein induced a structural transition corresponding to the closure of the built-in lid, it did not cause significant structural changes in deletion mutants. Although the mutants effectively protected proteins from thermal aggregation, ATP-dependent protein folding ability was remarkably diminished. We conclude that the helical protrusion is not necessarily important for binding to unfolded proteins, but its ATP-dependent conformational change mediates folding of captured unfolded proteins.
引用
收藏
页码:18834 / 18839
页数:6
相关论文
共 29 条
[1]   LARGE-APERTURE TV DETECTOR WITH A BERYLLIUM-WINDOWED IMAGE INTENSIFIER FOR X-RAY-DIFFRACTION [J].
AMEMIYA, Y ;
ITO, K ;
YAGI, N ;
ASANO, Y ;
WAKABAYASHI, K ;
UEKI, T ;
ENDO, T .
REVIEW OF SCIENTIFIC INSTRUMENTS, 1995, 66 (02) :2290-2294
[2]   Fast compaction of α-lactalbumin during folding studied by stopped-flow X-ray scattering [J].
Arai, M ;
Ito, K ;
Inobe, T ;
Nakao, M ;
Maki, K ;
Kamagata, K ;
Kihara, H ;
Amemiya, Y ;
Kuwajima, K .
JOURNAL OF MOLECULAR BIOLOGY, 2002, 321 (01) :121-132
[3]   Gene duplication and gene conversion shape the evolution of archaeal chaperonins [J].
Archibald, JM ;
Roger, AJ .
JOURNAL OF MOLECULAR BIOLOGY, 2002, 316 (05) :1041-1050
[4]   Gene duplication and the evolution of group II chaperonins: Implications for structure and function [J].
Archibald, JM ;
Blouin, C ;
Doolittle, WF .
JOURNAL OF STRUCTURAL BIOLOGY, 2001, 135 (02) :157-169
[5]  
BRADFORD MM, 1976, ANAL BIOCHEM, V72, P248, DOI 10.1016/0003-2697(76)90527-3
[6]   THE CRYSTAL-STRUCTURE OF THE BACTERIAL CHAPERONIN GROEL AT 2.8-ANGSTROM [J].
BRAIG, K ;
OTWINOWSKI, Z ;
HEGDE, R ;
BOISVERT, DC ;
JOACHIMIAK, A ;
HORWICH, AL ;
SIGLER, PB .
NATURE, 1994, 371 (6498) :578-586
[7]   The Hsp70 and Hsp60 chaperone machines [J].
Bukau, B ;
Horwich, AL .
CELL, 1998, 92 (03) :351-366
[8]   Crystal structure of the thermosome, the archaeal chaperonin and homolog of CCT [J].
Ditzel, L ;
Löwe, J ;
Stock, D ;
Stetter, KO ;
Huber, H ;
Huber, R ;
Steinbacher, S .
CELL, 1998, 93 (01) :125-138
[9]   Group II chaperonin in a thermophilic methanogen, Methanococcus thermolithotrophicus -: Chaperone activity and filament-forming ability [J].
Furutani, M ;
Iida, T ;
Yoshida, T ;
Maruyama, T .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1998, 273 (43) :28399-28407
[10]   Group II chaperonins: New TRiC(k)s and turns of a protein folding machine [J].
Gutsche, I ;
Essen, LO ;
Baumeister, F .
JOURNAL OF MOLECULAR BIOLOGY, 1999, 293 (02) :295-312