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Asadollahi, K.

Publications and source records attributed to Asadollahi, K..

3 recordsLinked to original sources

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↗

The allosteric mechanism of G-protein-coupled receptors is induced fit, not conformational selection

The allosteric mechanism of G-protein-coupled receptors (GPCRs) involves a population shift from inactive to active receptor conformations in response to the binding of ligand agonists. Two possible kinetic mechanisms for this population shift are induced fit and conformational selection. The two mechanisms differ in the temporal sequence of binding events and conformational changes: Ligand bindings occurs prior to the change from the inactive to the active receptor conformation in the induced-fit mechanism, and after the conformational change in the conformational-selection mechanism. In this article, we discuss the current evidence from experiments that probe the binding kinetics of GPCRs to identify the allosteric mechanism. For the peptide-activated neurotensin receptor 1, the modeling of kinetic data from stopped-flow mixing experiments indicates an induced-fit mechanism 1. The conformational exchange rates of the induced-fit mechanism obtained from this modeling agree with rates measured by saturation transfer difference NMR experiments of the peptide-receptor complex, which corroborates the mechanism. For the small-molecule-activated {beta}2-andrenergic receptor, an induced-fit mechanism has been inferred from a comparison of ligand-association rates for the inactive and the active receptor conformation 2. A stabilization of the active receptor conformation by G proteins or nanobodies leads to a decrease of ligand association rates, which indicates that ligand binding occurs in the inactive conformation and, thus, prior to the change from the inactive to the active conformation as in the induced-fit mechanism. A structural explanation for the induced-fit mechanism of the {beta}2-andrenergic receptor is a closed lid over the binding site that blocks ligand entry in the active conformation. Since constriction and closing of the ligand-binding site in the active conformation is rather common for small-molecule-activated and peptide-activated GPCRs, induced fit likely is shared as allosteric mechanism by these GPCRs.

biophysics↗

Inhibiting heme-piracy by pathogenic Escherichia coli using de novo-designed proteins

Iron is an essential nutrient for most bacteria and is often growth-limiting during infection, due to the host sequestering free iron as part of the innate immune response. To obtain the iron required for growth, many bacterial pathogens encode transporters capable of extracting the iron-containing cofactor heme directly from host proteins. Pathogenic E. coli and Shigella spp. produce the outer membrane transporter ChuA, which binds host hemoglobin and extracts its heme cofactor, before importing heme into the cell. Heme extraction by ChuA is a dynamic process, with the transporter capable of rapidly extracting heme from hemoglobin in the absence of an external energy source, without forming a stable ChuA-hemoglobin complex. In this work, we utilise a combination of structural modelling, Cryo-EM, X-ray crystallography, mutagenesis, and phenotypic analysis to understand the mechanistic detail of this process. Based on this understanding we utilise artificial intelligence-based protein design to create binders capable of inhibiting E. coli growth by blocking hemoglobin binding to ChuA. By screening a limited number of these designs, we identify several binders that inhibit E. coli growth at low nanomolar concentrations, without experimental optimisation. We determine the structure of a subset of these binders, alone and in complex with ChuA, demonstrating that they closely match the computational design. This work demonstrates the utility of de novo-designed proteins for inhibiting bacterial nutrient uptake and uses a workflow that could be applied to integral membrane proteins in other organisms.

biochemistry↗