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Quinone Catalysis Modulates Proton Transfer Reactions in the Membrane Domain of Respiratory Complex I.
Kim, Hyunho; Saura, Patricia; Pöverlein, Maximilian C; Gamiz-Hernandez, Ana P; Kaila, Ville R I.
Afiliação
  • Kim H; Department of Biochemistry and Biophysics, Stockholm University, Stockholm 10691, Sweden.
  • Saura P; Department of Biochemistry and Biophysics, Stockholm University, Stockholm 10691, Sweden.
  • Pöverlein MC; Department of Biochemistry and Biophysics, Stockholm University, Stockholm 10691, Sweden.
  • Gamiz-Hernandez AP; Department of Biochemistry and Biophysics, Stockholm University, Stockholm 10691, Sweden.
  • Kaila VRI; Department of Biochemistry and Biophysics, Stockholm University, Stockholm 10691, Sweden.
J Am Chem Soc ; 145(31): 17075-17086, 2023 08 09.
Article em En | MEDLINE | ID: mdl-37490414
ABSTRACT
Complex I is a redox-driven proton pump that drives electron transport chains and powers oxidative phosphorylation across all domains of life. Yet, despite recently resolved structures from multiple organisms, it still remains unclear how the redox reactions in Complex I trigger proton pumping up to 200 Å away from the active site. Here, we show that the proton-coupled electron transfer reactions during quinone reduction drive long-range conformational changes of conserved loops and trans-membrane (TM) helices in the membrane domain of Complex I from Yarrowia lipolytica. We find that the conformational switching triggers a π → α transition in a TM helix (TM3ND6) and establishes a proton pathway between the quinone chamber and the antiporter-like subunits, responsible for proton pumping. Our large-scale (>20 µs) atomistic molecular dynamics (MD) simulations in combination with quantum/classical (QM/MM) free energy calculations show that the helix transition controls the barrier for proton transfer reactions by wetting transitions and electrostatic effects. The conformational switching is enabled by re-arrangements of ion pairs that propagate from the quinone binding site to the membrane domain via an extended network of conserved residues. We find that these redox-driven changes create a conserved coupling network within the Complex I superfamily, with point mutations leading to drastic activity changes and mitochondrial disorders. On a general level, our findings illustrate how catalysis controls large-scale protein conformational changes and enables ion transport across biological membranes.
Assuntos

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Prótons / Complexo I de Transporte de Elétrons Idioma: En Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Prótons / Complexo I de Transporte de Elétrons Idioma: En Ano de publicação: 2023 Tipo de documento: Article