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Biology subjects

Grzesik, H.

Publications and source records attributed to Grzesik, H..

2 recordsLinked to original sources

Virotrap Reveals Salmonella SopB as A Ubiquitinated Cargo for Host ESCRT-0

The pathogenic bacterium Salmonella survives and replicates in host cells within a Salmonella-containing vacuole (SCV), a membranous niche it actively remodels via secreted effectors. The phosphoinositide phosphatase SopB is a key effector implicated in SCV biogenesis, yet its host protein interactome has remained incompletely defined. Using the mass spectrometry-based interactomics technology Virotrap, we identify a novel set of SopB-associated host proteins, including the ESCRT-0 subunit HGS and other membrane remodeling proteins. We demonstrate that SopB directly interacts with HGS via its ubiquitin-binding domains, and show that SopB promotes ESCRT-0 recruitment to the SCV, yet ultimately counteracts its anti-replicative effect. As the ESCRT machinery plays a central role in cargo sorting and membrane remodeling, we propose a new SopB-dependent strategy by which Salmonella hijacks host endosomal trafficking to build its intracellular niche.

microbiology↗

MX2 restricts HIV-1 and herpes simplex virus-1 by forming cytoplasmic biomolecular condensates that mimic nuclear pore complexes

Human myxovirus resistance 2 (MX2) can potently restrict HIV-1 and herpesviruses at a post-entry step by a process that requires MX2 interaction with the capsids of these viruses. The involvement of other host cell factors in this process, however, remains poorly understood. Here, we mapped the proximity interactome of MX2 revealing strong enrichment of phenylalanine-glycine (FG)-rich proteins related to the nuclear pore complex as well as proteins that are part of cytoplasmic ribonucleoprotein granules. MX2 interacted with these proteins to form multiprotein cytoplasmic biomolecular condensates that were essential for its anti-HIV-1 and -herpes simplex virus-1 (HSV-1) activity. MX2 condensate formation required the disordered N-terminal region of MX2 and its dimerization. Incoming HIV-1 and HSV-1 capsids associated with MX2 at these dynamic cytoplasmic biomolecular condensates. Our results demonstrate that MX2 forms cytoplasmic condensates that act as nuclear pore decoys, which trap capsids and induce premature viral genome release, and thereby interfere with nuclear targeting of HIV-1 and HSV-1.

microbiology↗