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Halofilins as emerging bactofilin families of archaeal cell shape plasticity orchestrators
Journal article   Open access   Peer reviewed

Halofilins as emerging bactofilin families of archaeal cell shape plasticity orchestrators

Zachary Curtis, Pedro Escudeiro, John Mallon, Olivia Leland, Theopi Rados, Ashley Dodge, Katherine Andre, Jasmin Kwak, Kun Yun, Berith Isaac, …
Proceedings of the National Academy of Sciences - PNAS, Vol.121(40), p.e2401583121
10/2024
Handle:
https://hdl.handle.net/10192/61022
PMID: 39320913

Abstract

Archaeal Proteins - genetics Archaeal Proteins - metabolism Cell Membrane - metabolism Cytoskeleton - metabolism Haloferax volcanii - genetics Haloferax volcanii - metabolism
Bactofilins are rigid, nonpolar bacterial cytoskeletal filaments that link cellular processes to specific curvatures of the cytoplasmic membrane. Although homologs of bactofilins have been identified in archaea and eukaryotes, functional studies have remained confined to bacterial systems. Here, we characterize representatives of two families of archaeal bactofilins from the pleomorphic archaeon , halofilin A (HalA) and halofilin B (HalB). HalA and HalB polymerize in vitro, assembling into straight bundles. HalA polymers are highly dynamic and accumulate at positive membrane curvatures in vivo, whereas HalB forms more static foci that localize in areas of local negative curvatures on the outer cell surface. Gene deletions and live-cell imaging show that halofilins are critical in maintaining morphological integrity during shape transition from disk (sessile) to rod (motile). Morphological defects in Δ result in accumulation of highly positive curvatures in rods but not in disks. Conversely, disk-shaped cells are exclusively affected by deletion, resulting in flatter cells. Furthermore, while Δ and Δ cells imprecisely determine the future division plane, defects arise predominantly during the disk-to-rod shape remodeling. The deletion of in the haloarchaeon , whose cells are consistently rod-shaped, impacted morphogenesis but not cell division. Increased levels of halofilins enforced drastic deformations in cells devoid of the S-layer, suggesting that HalB polymers are more stable at defective S-layer lattice regions. Our results suggest that halofilins might play a significant mechanical scaffolding role in addition to possibly directing envelope synthesis.
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https://doi.org/10.1073/pnas.2401583121View
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