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Biology subjects

Beghiah, A.

Publications and source records attributed to Beghiah, A..

2 recordsLinked to original sources

Redox-Triggered Coupling Network Mediates Long-Range Energy Trans-duction in Respiratory Complex I

Complex I is a gigantic redox-driven proton pump that powers oxidative phosphorylation by a unique long-range (>200 [A]) proton-coupled electron transfer process. To elucidate the molecular principles underlying this intricate action-at-a-distance effect, we combine here multiscale quantum/classical (QM/MM) simulations with site-directed mutagenesis, proteoliposome experiments, and cryo-electron microscopy (cryo-EM). We find that quinol binding at a distinct site within a local membrane cavity, triggers a long-range protonation cascade over water-mediated proton wires along a conserved carboxylate pathway (E-channel). We identify a central mechanical switch point, comprising the conserved Tyr156H, the mutation of which impedes conformational changes along conserved loops, but not the proton transfer reaction itself. Using our integrative multi-disciplinary approach, we reveal central coupling sites along the redox-driven proton transport process mediating energy conversion in Complex I, and illustrate the power of theory-guided experiments.

biophysics↗

A Carboxylate Switch Point Controls Long-Range Energy Transduction in Respiratory Complex I

Complex I is a highly intricate membrane-bound protein that powers the cellular energy metabolism by a long-range (>300 [A]) proton-coupled electron transfer (PCET) reaction. Here, we investigate the unknown coupling mechanism of Complex I by probing the charge transfer reaction along its functionally central carboxylate pathway (E-channel). By combining biophysical and site-directed mutagenesis experiments with high-resolution (2.6-2.7 [A]) cryo-electron microscopy (cryo-EM) and multiscale simulations, we identify a conserved carboxylate switch point (D79NuoA) that mediates proton transfer by establishing a kinetic gate that couples the redox chemistry to proton pumping. We find that mutation of the identified site, as found in patients suffering from severe neurodegenerative disorders, perturbs the charge transfer mechanism, and results in a drastic (>80%) reduction of the long-range PCET activity. Our combined findings illustrate mechanistic principles of molecular gates underlying long-range charge transfer reactions, and show how disease mutations perturb the function of conserved switch points in energy transduction.

biophysics↗