Mutational analysis of the flagellar protein FliG: Sites of interaction with FliM and implications for organization of the switch complex

被引:75
作者
Brown, Perry N. [1 ]
Terrazas, Moises [1 ]
Paul, Koushik [1 ]
Blair, David F. [1 ]
机构
[1] Univ Utah, Dept Biol, Salt Lake City, UT 84112 USA
关键词
D O I
10.1128/JB.01281-06
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
The switch complex at the base of the bacterial flagellum is essential for flagellar assembly, rotation, and switching. In Escherichia coli and Salmonella, the complex contains about 26 copies of FliG, 34 copies of FliM, and more then 100 copies of FliN, together forming the basal body C ring. FliG is involved most directly in motor rotation and is located in the upper (membrane-proximal) part of the C ring. A crystal structure of the middle and C-terminal parts of FliG shows two globular domains connected by an a-helix and a short extended segment. The middle domain of FliG has a conserved surface patch formed by the residues EHPQ(125-128), and R-160 (the EHPQR motif), and the C-terminal domain has a conserved surface hydrophobic patch. To examine the functional importance of these and other surface features of FliG, we made mutations in residues distributed over the protein surface and measured the effects on flagellar assembly and function. Mutations preventing flagellar assembly occurred mainly in the vicinity of the EHPQR motif and the hydrophobic patch. Mutations causing aberrant clockwise or counterclockwise motor bias occurred in these same regions and in the waist between the upper and lower parts of the C-terminal domain. Pull-down assays with glutathione S-transferase-FliM showed that FliG interacts with FliM through both the EHPQR motif and the hydrophobic patch. We propose a model for the organization of FliG and FliM subunits that accounts for the FliG-FliM interactions identified here and for the different copy numbers of FliG and FliM in the flagellum.
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页码:305 / 312
页数:8
相关论文
共 63 条
[1]   Control of speed modulation (chemokinesis) in the unidirectional rotary motor of Sinorhizobium meliloti [J].
Attmannspacher, U ;
Scharf, B ;
Schmitt, R .
MOLECULAR MICROBIOLOGY, 2005, 56 (03) :708-718
[2]   The rotary motor of bacterial flagella [J].
Berg, HC .
ANNUAL REVIEW OF BIOCHEMISTRY, 2003, 72 :19-54
[3]   Torque generated by the flagellar motor of Escherichia coli while driven backward [J].
Berry, RM ;
Berg, HC .
BIOPHYSICAL JOURNAL, 1999, 76 (01) :580-587
[4]   RESTORATION OF TORQUE IN DEFECTIVE FLAGELLAR MOTORS [J].
BLAIR, DF ;
BERG, HC .
SCIENCE, 1988, 242 (4886) :1678-1681
[5]  
BLOCK SM, 1984, NATURE, V309, P470, DOI 10.1038/309470a0
[6]   The N terminus of the flagellar switch protein, FliM, is the binding domain for the chemotactic response regulator, CheY [J].
Bren, A ;
Eisenbach, M .
JOURNAL OF MOLECULAR BIOLOGY, 1998, 278 (03) :507-514
[7]   Crystal structure of the flagellar rotor protein FIN from Thermotoga maritima [J].
Brown, PN ;
Mathews, MAA ;
Joss, LA ;
Hill, CP ;
Blair, DF .
JOURNAL OF BACTERIOLOGY, 2005, 187 (08) :2890-2902
[8]   Crystal structure of the middle and C-terminal domains of the flagellar rotor protein FliG [J].
Brown, PN ;
Hill, CP ;
Blair, DF .
EMBO JOURNAL, 2002, 21 (13) :3225-3234
[9]   BACTERIAL MOTILITY - MEMBRANE TOPOLOGY OF THE ESCHERICHIA-COLI MOTB PROTEIN [J].
CHUN, SY ;
PARKINSON, JS .
SCIENCE, 1988, 239 (4837) :276-278
[10]   IDENTIFICATION OF A BACTERIAL SENSING PROTEIN AND EFFECTS OF ITS ELEVATED EXPRESSION [J].
CLEGG, DO ;
KOSHLAND, DE .
JOURNAL OF BACTERIOLOGY, 1985, 162 (01) :398-405