The consequences of mutations Ile(265) --> Ala, Thr(267) --> Ala, Gly(271) --> Ala, and Gly(274) --> Ala for the partial reaction steps of the Na(+),K(+)-ATPase transport cycle were analyzed. The mutated residues are part of the long loop ("A-M3 linker") connecting the cytoplasmic A-domain with transmembrane segment M3. It was found that mutation Ile(265) --> Ala displaces the E(1)-E(2) and E(1)P-E(2)P equilibria in favor of E(1)/E(1)P, whereas mutations Thr(267) --> Ala, Gly(271) --> Ala, and Gly(274) --> Ala displace these conformational equilibria in favor of E(2)/E(2)P. The mutations affect both the rearrangement of the cytoplasmic domains (seen by changes in phosphoenzyme properties and apparent ATP/vanadate affinities) and the membrane sector (indicated by change in K(+)/Rb(+) deocclusion rate). Destabilization of E(2)/E(2)P in Ile(265) --> Ala, as well as a direct effect on the intrinsic affinity of the E(2) form for vanadate, may be explained on the basis of the E(2) crystal structures of the Ca(2+)-ATPase, showing interaction of the equivalent isoleucine with conserved residues near the catalytic region of the P-domain. The rate of phosphorylation from ATP was unaffected in Ile(265) --> Ala, indicating a lack of interference with the catalytic function in E(1)/E(1)P. The effects of mutations Thr(267) --> Ala, Gly(271) --> Ala, and Gly(274) --> Ala provide the first evidence in the literature of a relative stabilization of E(2)/E(2)P resulting from perturbation of the A-M3 linker region. These mutations may lead to increased strain of the A-M3 linker in E(1)/E(1)P, increased stability of the A3 helix of the A-M3 linker in E(2)/E(2)P, and/or a change of the orientation of the A3 helix, facilitating its interaction with the P-domain.
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