Redirection of SKN-1 abates the negative metabolic outcomes of a perceived pathogen infection.

Nhan, James D; Turner, Christian D; Anderson, Sarah M; Yen, Chia-An; Dalton, Hans M; Cheesman, Hilary K; Ruter, Dana L; Uma Naresh, Nandhitha et al. · Proc Natl Acad Sci U S A · 2019

basic_science · Level V

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Abstract

Early host responses toward pathogens are essential for defense against infection. In <i>Caenorhabditis elegans</i>, the transcription factor, SKN-1, regulates cellular defenses during xenobiotic intoxication and bacterial infection. However, constitutive activation of SKN-1 results in pleiotropic outcomes, including a redistribution of somatic lipids to the germline, which impairs health and shortens lifespan. Here, we show that exposing <i>C. elegans</i> to <i>Pseudomonas aeruginosa</i> similarly drives the rapid depletion of somatic, but not germline, lipid stores. Modulating the epigenetic landscape refines SKN-1 activity away from innate immunity targets, which alleviates negative metabolic outcomes. Similarly, exposure to oxidative stress redirects SKN-1 activity away from pathogen response genes while restoring somatic lipid distribution. In addition, activating p38/MAPK signaling in the absence of pathogens, is sufficient to drive SKN-1-dependent loss of somatic fat. These data define a SKN-1- and p38-dependent axis for coordinating pathogen responses, lipid homeostasis, and survival and identify transcriptional redirection, rather than inactivation, as a mechanism for counteracting the pleiotropic consequences of aberrant transcriptional activity.

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