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Karimullina, E.

Publications and source records attributed to Karimullina, E..

3 recordsLinked to original sources

Cryo-EM Structure of Salmonella typhimurium ArnC; the Key Enzyme in Lipid-A Modification Conferring Polymyxin Resistance

1Polymyxins are last-resort antimicrobial peptides administered clinically against multi-drug resistant bacteria, including Gram-negative ESKAPE pathogens. However, an increasing number of pathogens employ a defense strategy involving a relay of enzymes encoded by the pmrE(ugd) loci and the arnBCDTEF operon. As a result, an Ara-4N headgroup is added to the lipid-A component of outer membrane (OM) lipopolysaccharides (LPS) rendering polymyxins ineffective. Here, we report the cryo-EM structures of glycosyltransferase ArnC from Salmonella typhimurium resolved in both apo and UDP-bound forms at resolutions 2.75 [A] and 3.8 [A], respectively. The structure of the ArnC protomer comprises of three distinct regions: an N-terminal glycosyltransferase domain, transmembrane region, and the interface helices (IHs). ArnC forms a stable tetramer with C2 symmetry through interactions in the C-terminal region, which is expected to protrude into the cytosol, where the {beta}8 strand inserts into the adjacent protomer. ArnC protomers have two distinct types of interfaces involving multiple hydrogen bonds and salt bridges. The binding of UDP induces conformational changes that stabilizes structurally labile A-loop, spanning residues 201 to 213, and part of the putative catalytic pocket formed by IH1 and IH2. The comparative analysis of ArnC structures with homologs GtrB and DPMS suggests the key residues involved in ArnC catalytic activity.

biochemistry↗

Structural architecture of TolQ-TolR inner membrane protein complex from opportunistic pathogen Acinetobacter baumannii

Gram-negative bacteria harness the proton motive force (PMF) within their inner membrane (IM) to uphold the integrity of their cell envelope, an indispensable aspect for both division and survival. The IM TolQ-TolR complex is the essential part of the Tol-Pal system, serving as a conduit for PMF energy transfer to the outer membrane. Here we present cryo-EM reconstructions of Acinetobacter baumannii TolQ in apo and TolR- bound forms at atomic resolution. The apo TolQ configuration manifests as a symmetric pentameric pore, featuring a trans-membrane funnel leading towards a cytoplasmic chamber. In contrast, the TolQ-TolR complex assumes a proton non-permeable stance, characterized by the TolQ pentamers flexure to accommodate the TolR dimer, where two protomers undergo a translation-based relationship. Our structure-guided analysis and simulations support the rotor-stator mechanism of action, wherein the rotation of the TolQ pentamer harmonizes with the TolR protomers interplay. These findings broaden our mechanistic comprehension of molecular stator units empowering critical functions within the Gram-negative bacterial cell envelope. TeaserApo TolQ and TolQ-TolR structures depict structural rearrangements required for cell envelope organization in bacterial cell division.

molecular biology↗

Monomer and dimer structures of cytochrome bo3 ubiquinol oxidase from Escherichia coli

The E. coli cytochrome bo3 ubiquinol oxidase is a four-subunit heme-copper oxidase that serves as a proton pump in the E. coli aerobic respiratory chain. Despite many mechanistic studies on this protein, it is unclear whether this ubiquinol oxidase functions as a monomer, or as a dimer in a manner similar to its eukaryotic counterparts - the mitochondrial electron transport complexes. In this study, we determined the monomeric and dimeric structures of the E. coli cytochrome bo3 ubiquinol oxidase reconstituted in amphipol by cryogenic electron microscopy single particle reconstruction (cryo-EM SPR) to a resolution of 3.15 [A] and 3.46 [A], respectively. We have discovered that the protein can form a dimer in C2 symmetry, with the dimerization interface maintained by interactions between the subunit II of one monomer and the subunit IV of the other monomer. Moreover, the dimerization does not induce significant structural changes in each monomer, except the movement of a loop in subunit IV (residues 67-74).

biophysics↗