Cryo-EM structure and polar assembly of the PS2 S-layer of <i>Corynebacterium glutamicum</i>.

Sogues, Adrià; Sleutel, Mike; Petit, Julienne; Megrian, Daniela; Bayan, Nicolas; Wehenkel, Anne Marie; Remaut, Han · Proc Natl Acad Sci U S A · 2025

basic_science · Level V

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Abstract

The polar-growing <i>Corynebacteriales</i> have a complex cell envelope architecture characterized by the presence of a specialized outer membrane composed of mycolic acids. In some <i>Corynebacteriales</i>, this mycomembrane is further supported by a proteinaceous surface layer or "S-layer," whose function, structure, and mode of assembly remain largely enigmatic. Here, we isolated ex vivo PS2 S-layers from the industrially important <i>Corynebacterium glutamicum</i> and determined its atomic structure by 3D cryo-EM reconstruction. PS2 monomers consist of a six-helix bundle "core," a three-helix bundle "arm," and a C-terminal transmembrane (TM) helix. The PS2 core oligomerizes into hexameric units anchored in the mycomembrane by a channel-like coiled-coil of the TM helices. The PS2 arms mediate trimeric lattice contacts, crystallizing the hexameric units into an intricate semipermeable lattice. Using pulse-chase live cell imaging, we show that the PS2 lattice is incorporated at the poles, coincident with the actinobacterial elongasome. Finally, phylogenetic analysis shows a paraphyletic distribution and dispersed chromosomal location of PS2 in <i>Corynebacteriales</i> as a result of multiple recombination events and losses. These findings expand our understanding of S-layer biology and enable applications of membrane-supported self-assembling bioengineered materials.

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