RNA chaperone activity and RNA-binding properties of the E-coli protein StpA

被引:58
作者
Mayer, Oliver [1 ]
Rajkowitsch, Lukas [1 ]
Lorenz, Christina [1 ]
Konrat, Robert [1 ]
Schroeder, Renee [1 ]
机构
[1] Univ Vienna, Max F Perutz, A-1030 Vienna, Austria
基金
奥地利科学基金会;
关键词
D O I
10.1093/nar/gkl1143
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
The E. coli protein StpA has RNA annealing and strand displacement activities and it promotes folding of RNAs by loosening their structures. To understand the mode of action of StpA, we analysed the relationship of its RNA chaperone activity to its RNA-binding properties. For acceleration of annealing of two short RNAs, StpA binds both molecules simultaneously, showing that annealing is promoted by crowding. StpA binds weakly to RNA with a preference for unstructured molecules. Binding of StpA to RNA is strongly dependent on the ionic strength, suggesting that the interactions are mainly electrostatic. A mutant variant of the protein, with a glycine to valine change in the nucleic-acid-binding domain, displays weaker RNA binding but higher RNA chaperone activity. This suggests that the RNA chaperone activity of StpA results from weak and transient interactions rather than from tight binding to RNA. We further discuss the role that structural disorder in proteins may play in chaperoning RNA folding, using bioinformatic sequence analysis tools, and provide evidence for the importance of conformational disorder and local structural preformation of chaperone nucleic-acid-binding sites.
引用
收藏
页码:1257 / 1269
页数:13
相关论文
共 55 条
[1]   FinO is an RNA chaperone that facilitates sense-antisense RNA interactions [J].
Arthur, DC ;
Ghetu, AF ;
Gubbins, MJ ;
Edwards, RA ;
Frost, LS ;
Glover, JNM .
EMBO JOURNAL, 2003, 22 (23) :6346-6355
[2]   Characterization of Escherichia coli cspE, whose product negatively regulates transcription of cspA, the gene for the major cold shock protein [J].
Bae, WH ;
Phadtare, S ;
Severinov, K ;
Inouye, M .
MOLECULAR MICROBIOLOGY, 1999, 31 (05) :1429-1441
[3]   The structural and functional organization of H-NS-like proteins is evolutionarily conserved in Gram-negative bacteria [J].
Bertin, P ;
Benhabiles, N ;
Krin, E ;
Laurent-Winter, C ;
Tendeng, C ;
Turlin, E ;
Thomas, A ;
Danchin, A ;
Brasseur, R .
MOLECULAR MICROBIOLOGY, 1999, 31 (01) :319-329
[4]   The H-NS dimerization domain defines a new fold contributing to DNA recognition [J].
Bloch, V ;
Yang, YS ;
Margeat, E ;
Chavanieu, A ;
Augé, MT ;
Robert, B ;
Arold, S ;
Rimsky, S ;
Kochoyan, M .
NATURE STRUCTURAL BIOLOGY, 2003, 10 (03) :212-218
[5]   Two distinct binding modes of a protein cofactor with its target RNA [J].
Bokinsky, Gregory ;
Nivon, Lucas G. ;
Liu, Shixin ;
Chai, Geqing ;
Hong, Minh ;
Weeks, Kevin M. ;
Zhuang, Xiaowei .
JOURNAL OF MOLECULAR BIOLOGY, 2006, 361 (04) :771-784
[6]   Identification of the Hfq-binding site on DsrA RNA: Hfq binds without altering DsrA secondary structure [J].
Brescia, CC ;
Mikulecky, PJ ;
Feig, AL ;
Sledjeski, DD .
RNA, 2003, 9 (01) :33-43
[7]   Influence of specific mutations on the thermal stability of the td group I intron in vitro and on its splicing efficiency in vivo:: A comparative study [J].
Brion, P ;
Schroeder, R ;
Michel, F ;
Westhof, E .
RNA, 1999, 5 (07) :947-958
[8]   Analysis of the cooperative thermal unfolding of the td intron of bacteriophage T4 [J].
Brion, P ;
Michel, F ;
Schroeder, R ;
Westhof, E .
NUCLEIC ACIDS RESEARCH, 1999, 27 (12) :2494-2502
[9]   A tyrosyl-tRNA synthetase protein induces tertiary folding of the group I intron catalytic core [J].
Caprara, MG ;
Mohr, G ;
Lambowitz, AM .
JOURNAL OF MOLECULAR BIOLOGY, 1996, 257 (03) :512-531
[10]   Interaction of the Neurospora crassa mitochondrial tyrosyl-tRNA synthetase (CYT-18 protein) with the group I intron P4-P6 domain.: Thermodynamic analysis and the role of metal ions [J].
Caprara, MG ;
Myers, CA ;
Lambowitz, AM .
JOURNAL OF MOLECULAR BIOLOGY, 2001, 308 (02) :165-190