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The Shigella flexneri effector IpaH1.4 facilitates RNF213 degradation and protects cytosolic bacteria against interferon-induced ubiquitylation.

Publication ,  Journal Article
Saavedra-Sanchez, L; Dickinson, MS; Apte, S; Zhang, Y; de Jong, M; Skavicus, S; Heaton, NS; Alto, NM; Coers, J
Published in: bioRxiv
September 5, 2024

A central signal that marshals host defense against many infections is the lymphocyte-derived cytokine interferon-gamma (IFNγ). The IFNγ receptor is expressed on most human cells and its activation leads to the expression of antimicrobial proteins that execute diverse cell-autonomous immune programs. One such immune program consists of the sequential detection, ubiquitylation, and destruction of intracellular pathogens. Recently, the IFNγ-inducible ubiquitin E3 ligase RNF213 was identified as a pivotal mediator of such a defense axis. RNF213 provides host protection against viral, bacterial, and protozoan pathogens. To establish infections, potentially susceptible intracellular pathogens must have evolved mechanisms that subdue RNF213-controlled cell-autonomous immunity. In support of this hypothesis, we demonstrate here that a causative agent of bacillary dysentery, Shigella flexneri, uses the type III secretion system (T3SS) effector IpaH1.4 to induce the degradation of RNF213. S. flexneri mutants lacking IpaH1.4 expression are bound and ubiquitylated by RNF213 in the cytosol of IFNγ-primed host cells. Linear (M1-) and lysine-linked ubiquitin is conjugated to bacteria by RNF213 independent of the linear ubiquitin chain assembly complex (LUBAC). We find that ubiquitylation of S. flexneri is insufficient to kill intracellular bacteria, suggesting that S. flexneri employs additional virulence factors to escape from host defenses that operate downstream from RNF213-driven ubiquitylation. In brief, this study identified the bacterial IpaH1.4 protein as a direct inhibitor of mammalian RNF213 and highlights evasion of RNF213-driven immunity as a characteristic of the human-tropic pathogen Shigella.

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Published In

bioRxiv

DOI

EISSN

2692-8205

Publication Date

September 5, 2024

Location

United States
 

Citation

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Saavedra-Sanchez, L., Dickinson, M. S., Apte, S., Zhang, Y., de Jong, M., Skavicus, S., … Coers, J. (2024). The Shigella flexneri effector IpaH1.4 facilitates RNF213 degradation and protects cytosolic bacteria against interferon-induced ubiquitylation. BioRxiv. https://doi.org/10.1101/2024.09.05.611450
Saavedra-Sanchez, Luz, Mary S. Dickinson, Shruti Apte, Yifeng Zhang, Maarten de Jong, Samantha Skavicus, Nicholas S. Heaton, Neal M. Alto, and Jörn Coers. “The Shigella flexneri effector IpaH1.4 facilitates RNF213 degradation and protects cytosolic bacteria against interferon-induced ubiquitylation.BioRxiv, September 5, 2024. https://doi.org/10.1101/2024.09.05.611450.
Saavedra-Sanchez L, Dickinson MS, Apte S, Zhang Y, de Jong M, Skavicus S, et al. The Shigella flexneri effector IpaH1.4 facilitates RNF213 degradation and protects cytosolic bacteria against interferon-induced ubiquitylation. bioRxiv. 2024 Sep 5;
Saavedra-Sanchez, Luz, et al. “The Shigella flexneri effector IpaH1.4 facilitates RNF213 degradation and protects cytosolic bacteria against interferon-induced ubiquitylation.BioRxiv, Sept. 2024. Pubmed, doi:10.1101/2024.09.05.611450.
Saavedra-Sanchez L, Dickinson MS, Apte S, Zhang Y, de Jong M, Skavicus S, Heaton NS, Alto NM, Coers J. The Shigella flexneri effector IpaH1.4 facilitates RNF213 degradation and protects cytosolic bacteria against interferon-induced ubiquitylation. bioRxiv. 2024 Sep 5;

Published In

bioRxiv

DOI

EISSN

2692-8205

Publication Date

September 5, 2024

Location

United States