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Engineering rotor ring stoichiometries in the ATP synthase
Author(s) -
Denys Pogoryelov,
Adriana L. Klyszejko,
Ganna O. Krasnoselska,
Eva-Maria Heller,
Vanessa Leone,
Julian D. Langer,
Janet Vonck,
Daniel J. Müller,
José D. FaraldoGómez,
Thomas Meier
Publication year - 2012
Publication title -
proceedings of the national academy of sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.011
H-Index - 771
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.1120027109
Subject(s) - atp synthase , protein subunit , stoichiometry , ring (chemistry) , bioenergetics , mutagenesis , chemistry , stereochemistry , biophysics , crystallography , biology , enzyme , mutant , biochemistry , organic chemistry , gene , mitochondrion
ATP synthase membrane rotors consist of a ring of c-subunits whose stoichiometry is constant for a given species but variable across different ones. We investigated the importance of c/c-subunit contacts by site-directed mutagenesis of a conserved stretch of glycines (GxGxGxGxG) in a bacterial c11 ring. Structural and biochemical studies show a direct, specific influence on the c-subunit stoichiometry, revealing c<11 , c12 , c13 , c14 , and c>14 rings. Molecular dynamics simulations rationalize this effect in terms of the energetics and geometry of the c-subunit interfaces. Quantitative data from a spectroscopic interaction study demonstrate that the complex assembly is independent of the c-ring size. Real-time ATP synthesis experiments in proteoliposomes show the mutant enzyme, harboring the larger c12 instead of c11 , is functional at lower ion motive force. The high degree of compliance in the architecture of the ATP synthase rotor offers a rationale for the natural diversity of c-ring stoichiometries, which likely reflect adaptations to specific bioenergetic demands. These results provide the basis for bioengineering ATP synthases with customized ion-to-ATP ratios, by sequence modifications.

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