Biochemical coupling of the two nucleotide binding domains of ClpB - Covalent linkage is not a prerequisite for chaperone activity

被引:20
作者
Beinker, P [1 ]
Schlee, S [1 ]
Auvula, R [1 ]
Reinstein, J [1 ]
机构
[1] Max Planck Inst Med Res, Dept Biomol Mech, D-69120 Heidelberg, Germany
关键词
D O I
10.1074/jbc.M506672200
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
ClpB cooperates with the DnaK chaperone system in the reactivation of protein from aggregates and is a member of the ATPases associated with a variety of cellular activities (AAA+) protein family. The underlying disaggregation reaction is dependent on ATP hydrolysis at both AAA cassettes of ClpB but the role of each AAA cassette in the reaction cycle is largely unknown. Here we analyze the activity of the separately expressed and purified nucleotide binding domains of ClpB from Thermus thermophilus. The two fragments show different biochemical properties: the first construct is inactive in ATPase activity assays and binds nucleotides weakly, the second construct has a very high ATPase activity and interacts tightly with nucleotides. Both individual fragments have lost their chaperone function and are not able to form large oligomers. When combined in solution, however, the two fragments form a stable heterodimer with oligomerization capacities equivalent to wildtype ClpB. This non-covalent complex regains activity in reactivating protein aggregates in cooperation with the DnaK chaperone system. Upon complex formation the ATPase activity of fragment 2 is reduced to a level similar to wild-type ClpB. Hence functional ClpB can be reassembled from its isolated AAA cassettes showing that covalent linkage of these domains is not a prerequisite for the chaperone activity. The observation that the intrinsically high ATPase activity of AAA2 is suppressed by AAA1 allows a hypothetical assignment of their mechanistic function. Whereas the energy gained upon ATP hydrolysis at the AAA2 is likely to drive a conformational change of the structure of ClpB, AAA1 might function as a regulator of the chaperone cycle.
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页码:37965 / 37973
页数:9
相关论文
共 40 条
[1]   Structure and activity of ClpB from Escherichia coli -: Role of the amino- and carboxyl-terminal domains [J].
Barnett, ME ;
Zolkiewska, A ;
Zolkiewski, M .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2000, 275 (48) :37565-37571
[2]   The N terminus of C1pB from Thermus thermophilus is not essential for the chaperone activity [J].
Beinker, P ;
Schlee, S ;
Groemping, Y ;
Seidel, R ;
Reinstein, J .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2002, 277 (49) :47160-47166
[3]  
BERGMEYER HU, 1962, COLORIMETRIC ASSAYS, P573
[4]   The structures of HsIU and ATP-dependent protease HsIU-HsIV [J].
Bochtler, M ;
Hartmann, C ;
Song, HK ;
Bourenkov, GP ;
Bartunik, HD ;
Huber, R .
NATURE, 2000, 403 (6771) :800-805
[5]  
BRADFORD MM, 1976, ANAL BIOCHEM, V72, P248, DOI 10.1016/0003-2697(76)90527-3
[6]   Size-dependent disaggregation of stable protein aggregates by the DnaK chaperone machinery [J].
Diamant, S ;
Ben-Zvi, AP ;
Bukau, B ;
Goloubinoff, P .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2000, 275 (28) :21107-21113
[7]   ClpS, a substrate modulator of the ClpAP machine [J].
Dougan, DA ;
Reid, BG ;
Horwich, AL ;
Bukau, B .
MOLECULAR CELL, 2002, 9 (03) :673-683
[8]   SPECTROPHOTOMETRIC DETERMINATION OF PROTEIN CONCENTRATION IN CELL EXTRACTS CONTAINING TRANSFER-RNA AND RIBOSOMAL-RNAS [J].
EHRESMAN.B ;
IMBAULT, P ;
WEIL, JH .
ANALYTICAL BIOCHEMISTRY, 1973, 54 (02) :454-463
[9]  
Eriksson MJ, 2000, CELL STRESS CHAPERON, V5, P255, DOI 10.1379/1466-1268(2000)005<0255:TECHSP>2.0.CO
[10]  
2