The Caulobacter crescentus CgtA protein displays unusual guanine nucleotide binding and exchange properties

被引:69
作者
Lin, B [1 ]
Covalle, KL [1 ]
Maddock, JR [1 ]
机构
[1] Univ Michigan, Dept Biol, Ann Arbor, MI 48109 USA
关键词
D O I
10.1128/JB.181.18.5825-5832.1999
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
The Caulobacter crescentus CgtA protein is a member of the Obg-GTP1 subfamily of monomeric GTP-binding proteins. In vitro, CgtA specifically bound GTP and GDP but not GMP or ATP. CgtA bound GTP and GDP with moderate affinity at 30 degrees C and displayed equilibrium binding constants of 1.2 and 0.5 mu M, respectively, in the presence of Mg2+. In the absence of Mg2+, the affinity of CgtA for GTP and GDP was reduced 59- and 6-fold, respectively. N-Methyl-3'-O-anthranoyl (mant)-guanine nucleotide analogs were used to quantify GDP and GTP exchange. Spontaneous dissociation of both GDP and GTP in the presence of 5 to 12 mM Mg2+ was extremely rapid (k(d) = 1.4 and 1.5 s(-1), respectively), 10(3)- to 10(5)-fold faster than that of the well-characterized eukaryotic Ras-like GTP-binding proteins. The dissociation rate constant of GDP increased sevenfold in the absence of Mg2+. Finally, there was a low inherent GTPase activity with a single-turnover rate constant of 5.0 x 10(-4) s(-1) corresponding to a half-life of hydrolysis of 23 min. These data clearly demonstrate that the guanine nucleotide binding and exchange properties of CgtA are different from those of the well-characterized Ras-like GTP-binding proteins. Furthermore, these data are consistent with a model whereby the nucleotide occupancy of CgtA is controlled by the intracellular levels of guanine nucleotides.
引用
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页码:5825 / 5832
页数:8
相关论文
共 62 条
[41]   IS THERE A RATE-LIMITING STEP BEFORE GTP CLEAVAGE BY H-RAS P21 [J].
RENSLAND, H ;
LAUTWEIN, A ;
WITTINGHOFER, A ;
GOODY, RS .
BIOCHEMISTRY, 1991, 30 (46) :11181-11185
[42]   THE NUCLEOTIDE EXCHANGE-RATES OF RHO AND RAC SMALL GTP-BINDING PROTEINS ARE ENHANCED TO DIFFERENT EXTENTS BY THEIR REGULATORY PROTEIN SMG GDS [J].
SASAKI, T ;
KATO, M ;
NISHIYAMA, T ;
TAKAI, Y .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 1993, 194 (03) :1188-1193
[43]   DRG - A NOVEL DEVELOPMENTALLY REGULATED GTP-BINDING PROTEIN [J].
SAZUKA, T ;
TOMOOKA, Y ;
IKAWA, Y ;
NODA, M ;
KUMAR, S .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 1992, 189 (01) :363-370
[44]   X-RAY CRYSTAL-STRUCTURE ANALYSIS OF THE CATALYTIC DOMAIN OF THE ONCOGENE PRODUCT P21(H-RAS) COMPLEXED WITH CAGED GTP AND MANT DGPPNHP [J].
SCHEIDIG, AJ ;
FRANKEN, SM ;
CORRIE, JET ;
REID, GP ;
WITTINGHOFER, A ;
PAI, EF ;
GOODY, RS .
JOURNAL OF MOLECULAR BIOLOGY, 1995, 253 (01) :132-150
[45]  
SCHENKER T, 1994, J BIOL CHEM, V269, P25447
[46]   TIME-RESOLVED X-RAY CRYSTALLOGRAPHIC STUDY OF THE CONFORMATIONAL CHANGE IN HA-RAS P21 PROTEIN ON GTP HYDROLYSIS [J].
SCHLICHTING, I ;
ALMO, SC ;
RAPP, G ;
WILSON, K ;
PETRATOS, K ;
LENTFER, A ;
WITTINGHOFER, A ;
KABSCH, W ;
PAI, EF ;
PETSKO, GA ;
GOODY, RS .
NATURE, 1990, 345 (6273) :309-315
[47]   The role of the metal ion in the p2l(ras) catalysed GTP-hydrolysis: Mn2+ versus Mg2+ [J].
Schweins, T ;
Scheffzek, K ;
Assheuer, R ;
Wittinghofer, A .
JOURNAL OF MOLECULAR BIOLOGY, 1997, 266 (04) :847-856
[48]  
SELF AJ, 1995, METHOD ENZYMOL, V256, P67
[49]   Guanine-nucleotide binding and hydrolyzing kinetics of ORrab2, a rice small GTP binding protein expressed in Escherichia coli [J].
Seo, HS ;
Choi, CH ;
Kim, HY ;
Jeong, JY ;
Lee, SY ;
Cho, MJ ;
Bahk, JD .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1997, 249 (01) :293-300
[50]   KINETIC-ANALYSIS OF THE BINDING OF GUANINE-NUCLEOTIDE TO BOVINE BRAIN SMG-P25A [J].
SHOJI, I ;
KIKUCHI, A ;
KURODA, S ;
TAKAI, Y .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 1989, 162 (01) :273-281