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Doyle, M. T.

Publications and source records attributed to Doyle, M. T..

2 recordsLinked to original sources

The patatin-like protein PlpD forms novel structurally dynamic homodimers in the Pseudomonas aeruginosa outer membrane

Members of the Omp85 superfamily of outer membrane proteins (OMPs) found in Gram-negative bacteria, mitochondria and chloroplasts are characterized by a distinctive 16-stranded {beta}-barrel transmembrane domain and at least one periplasmic POTRA domain. All previously studied Omp85 proteins promote critical OMP assembly and/or protein translocation reactions. Pseudomonas aeruginosa PlpD is the prototype of an Omp85 protein family that contains an N-terminal patatin-like (PL) domain that is thought to be translocated across the OM by a C-terminal {beta}-barrel domain. Challenging the current dogma, we found that the PlpD PL-domain resides exclusively in the periplasm and, unlike previously studied Omp85 proteins, PlpD forms a homodimer. Remarkably, the PL-domain contains a segment that exhibits unprecedented dynamicity by undergoing transient strand-swapping with the neighboring {beta}-barrel domain. Our results show that the Omp85 superfamily is more structurally diverse than currently believed and suggest that the Omp85 scaffold was utilized during evolution to generate novel functions.

microbiology↗

Cryo-EM structures reveal multiple stages of bacterial outer membrane protein folding

Transmembrane {beta}-barrel proteins are folded into the outer membrane (OM) of Gram-negative bacteria by the {beta}-barrel assembly machine (BAM) via an unexplained process that occurs without known external energy sources. Here we used single-particle cryo-EM to visualize the folding dynamics of a model {beta}-barrel protein (EspP) by BAM. We found that BAM binds the highly conserved "{beta}-signal" motif of EspP to correctly orient {beta}-strands in the OM during folding. We also found that the folding of EspP proceeds via remarkable "hybrid-barrel" intermediates in which membrane integrated {beta}-sheets are attached to the essential BAM subunit, BamA. The structures show an unprecedented deflection of the membrane surrounding the EspP intermediates and suggest that {beta}-sheets progressively fold towards BamA to form a {beta}-barrel. Along with in vivo experiments that tracked {beta}-barrel folding while the OM tension was modified, our results support a model in which BAM harnesses OM elasticity to accelerate {beta}-barrel folding.

biochemistry↗