Mechanisms of epigenomic and functional convergence between glucocorticoid- and IL4-driven macrophage programming.

Deochand, Dinesh K; Dacic, Marija; Bale, Michael J; Daman, Andrew W; Chaudhary, Vidyanath; Josefowicz, Steven Z; Oliver, David; Chinenov, Yurii et al. · Nat Commun · 2024

basic_science · Level V

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Abstract

Macrophages adopt distinct phenotypes in response to environmental cues, with type-2 cytokine interleukin-4 promoting a tissue-repair homeostatic state (M2<sub>IL4</sub>). Glucocorticoids (GC), widely used anti-inflammatory therapeutics, reportedly impart a similar phenotype (M2<sub>GC</sub>), but how such disparate pathways may functionally converge is unknown. We show using integrative functional genomics that M2<sub>IL4</sub> and M2<sub>GC</sub> transcriptomes share a striking overlap mirrored by a shift in chromatin landscape in both common and signal-specific gene subsets. This core homeostatic program is enacted by transcriptional effectors KLF4 and the glucocorticoid receptor, whose genome-wide occupancy and actions are integrated in a stimulus-specific manner by the nuclear receptor cofactor GRIP1. Indeed, many of the M2<sub>IL4</sub>:M2<sub>GC</sub>-shared transcriptomic changes were GRIP1-dependent. Consistently, GRIP1 loss attenuated phagocytic activity of both populations in vitro and macrophage tissue-repair properties in the murine colitis model in vivo. These findings provide a mechanistic framework for homeostatic macrophage programming by distinct signals, to better inform anti-inflammatory drug design.

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