Dimerization interactions of the b subunit of the Escherichia coli F1F0-ATPase

被引:52
作者
McLachlin, DT [1 ]
Dunn, SD [1 ]
机构
[1] UNIV WESTERN ONTARIO,DEPT BIOCHEM,LONDON,ON N6A 5C1,CANADA
关键词
D O I
10.1074/jbc.272.34.21233
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
Site-directed mutagenesis and N-terminal truncations were used to examine dimerization interactions in the b subunit of Escherichia coli F1F0-ATPase. Individual cysteine residues were incorporated into b(syn), a soluble form of the protein lacking the membrane-spanning N-terminal domain, in two main areas: the heptad repeat region and the hydrophobic region which begins at residue Val-124. The tendencies of these cysteine residues to form disulfide bonds with the corresponding cysteine in the b(syn) dimer were tested using disulfide exchange by glutathione and air oxidation catalyzed by Cu2+. Within the heptad repeat region, only cysteines at residues 59 and 60, which occupy the b and c positions of the heptad repeat, showed significant tendencies to form disulfides, a result inconsistent with a coiled-coil model for b(syn). Mixed disulfide formation most readily occurred with the S60C + L65C and A61C + L65C pairs, Cysteines at positions 124, 128, 132, and 139 showed strong tendencies to form disulfides with their mates in the dimer, suggesting a parallel alpha-helical interaction between the subunits in this region, Deletion of residues N-terminal to either Glu-34 or Asp-53 had no apparent effect on dimerization as determined by sedimentation equilibrium, while deletion of all residues N-terminal to Lys-67 produced a monomeric form, These results imply that residues 53-66 but not 24-52 are essential for b(syn) dimerization, Taken together the results are consistent with a model in which the two b subunits interact in more than one region, including a parallel alignment of helices containing residues 124-139.
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页码:21233 / 21239
页数:7
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