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Biology subjects

Simsive, L.

Publications and source records attributed to Simsive, L..

3 recordsLinked to original sources

Fast prediction of acidic amino acid sidechain conformations for cryo-EM modeling

Cryogenic-electron microscopy (cryo-EM) has revolutionized the field of protein structural biology. The structures of large membrane proteins are now routinely determined by cryo-EM to near atomic resolution. However, in the medium resolution range of cryo-EM maps (>[~]2 [A]), negatively charged sidechains of acidic residues are not well-resolved due to the negative electrostatic potential of the region. This may lead to incorrect sidechain models for residues like glutamic acid or aspartic acid that are central for proton transfer activity in various respiratory and photosynthetic enzymes. We previously proposed that the acidic residues with weak or non-existent cryo-EM density can be modeled to represent their low proton affinity conformations. Here, we tested this hypothesis on a larger data set of acidic amino acid residues in two high-resolution respiratory complex I structures. By using faster sidechain modeling and proton affinity prediction tools, we created a workflow that generates sidechain conformations of selected amino acid residues. We validated the sidechain conformation predictions by Q-score analysis and atomistic molecular dynamics simulations in different charged states. The proposed workflow provides a way to rapidly obtain sidechain conformations of acidic residues with weak cryo-EM densities and can be integrated into the existing cryo-EM modeling pipelines to speed up sidechain rotamer prediction.

biophysics↗

Quinone-transporting filaments extend the respiratory chain of Gram positive bacteria

Cellular respiration depends on transferring electrons to hydrophobic quinones in membrane bilayers, constraining capacity to available surface area. Expanding this capacity is thought to have driven cellular complexity and eukaryogenesis, with Gram-negative bacteria evolving internal invaginations and eukaryotes using membrane-bound organelles. Whether Gram-positive bacteria, which lack such membranes, evolved alternatives was unknown. Here, we show that Bacillus subtilis forms a quinone-transporting pseudomembrane composed of filaments of the NADH dehydrogenase Ndh and the quinone-transporting protein Ncp. Cryo-EM, lipidomics, and molecular dynamics reveal that Ndh and Ncp co-assemble with phospholipids into a complex containing a solvent-excluded hydrophobic lumen that sequesters quinones. These complexes further assemble into filaments, linking chambers into a continuous conduit that amplifies quinone reduction while occupying minimal membrane space. Phylogenetic analysis suggests this recent innovation is widespread in Bacillota. Quinone-transporting filaments thus reveal a third strategy for overcoming surface-area limits and provide principles for engineering synthetic energy systems.

biochemistry↗

Proton transfer through a charged conduit in respiratory complex I - long range effects and conformational gating

Energy coupling processes in respiratory complex I - a large redox-driven proton pump in the inner mitochondrial membrane - remains one of the most enigmatic problems in modern bioenergetics. Recent high-resolution cryo EM structures of complex I revealed extensive hydration in the interior of the protein, including the buried E channel, which is an acidic charged conduit that bridges the quinone binding cavity with the extended membrane domain of the enzyme. Despite the general agreement that E channel participates in proton transfer, absence of proton density in the cryo-EM maps pose a significant challenge to develop viable models of proton pumping. By adhering to the hypothesis that E channel catalyzes transfer of proton(s) from the quinone binding cavity to the membrane-bound proton pumping site(s), we performed hybrid quantum mechanics/molecular mechanics (QM/MM) molecular dynamics (MD) simulations using the ~2.4 A cryo-EM structure of mitochondrial complex I from Mus musculus. By combining classical atomistic MD simulations with the hybrid QM/MM free energy calculations, we identify several energetically favorable Grotthuss-competent proton transfer paths in the E channel region. As part of the long-range coupling in complex I, our calculations show that protonation of a single acidic amino acid residue in the distal MM surroundings can alter the dynamics of proton transfer in the E channel region. Additionally, we pinpoint the gating function of a highly conserved tyrosine residue in the E channel, which undergoes conformational flipping to establish an energetically favorable proton transfer path. In the context of the redox-coupled proton pumping mechanism of complex I, we propose a stepping-stone model of proton transfer through the E channel.

biochemistry↗