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Veronezi, G. M.

Publications and source records attributed to Veronezi, G. M..

2 recordsLinked to original sources

Divergent condensates tune transcriptional responses during stress

Dynamic reorganization of the transcription machinery within nuclear membrane-less compartments is an emergent feature of mammalian stress response, associated with critical cellular decisions. However, mechanisms governing the subcellular formation of these stress-induced condensates and their role in transcription regulation remain poorly understood. Here, we find that heat shock factor 1 (HSF1), transcriptional mediator of protein and cellular homeostasis, forms condensates during various adverse conditions, but these assemblies exhibit context-dependent divergent transcriptional outcomes. During heat shock, HSF1 orchestrates the coordinated assembly of transcription hubs via canonical activation, including post-translational modifications (PTMs), trimerization, and DNA binding. While HSF1s disordered regions restrict condensate formation in unstressed situations, they promote stress-induced condensate maturation to transcriptionally active states. Strikingly, HSF1 condensates that form during other environmental and chemotherapeutic stresses stall at distinct stages of hub formation, assemble independent of PTMs, and exhibit reduced sub-condensate dynamics. These aspects culminate in attenuated genomic occupancy and transcriptional output at HSF1-associated loci, consistent with functional impairment of HSF1 and the transcription machinery via sequestration. Our work suggests that stress-induced transcription factor condensates drive conserved responses during physiological perturbations, but can be inactivated during pathological insults, rationalizing HSF1 and transcriptional dysfunction across degenerative diseases and toxic exposures.

molecular biology↗

Epigenetically regulated p53 activity maintains intestinal regulatory T cell identity to prevent inflammation

Regulatory T cells (Tregs) are critical guardians of immune homeostasis that must operate in diverse and often inflammatory conditions. However, the mechanisms that Tregs use to maintain their stability and function, especially in response to the stresses of distinct microenvironments, remain incompletely understood. Previous work identified the repressive chromatin modification histone 3 lysine 27 trimethylation (H3K27me3) as a rheostat for Treg function. Here, we find that loss of H3K27me3 in Tregs activates the tumor suppressor p53. Stabilization of p53 using the MDM2 inhibitor Nutlin-3 protected Tregs from losing their master transcription factor Foxp3 in vitro when cultured with the Th17 cytokines IL-6 and IL-1{beta}, while p53 deficiency rendered Tregs more prone to Foxp3 loss. Treg-specific p53 deficiency resulted in accumulation of cells that had lost Foxp3 expression ("ex-Tregs") and reduction of suppressive markers on Tregs specifically in the colon. Additionally, these mice exhibited inflammation in the colon at homeostasis and increased severity of induced colitis. These results demonstrate a specific role for p53 in the maintenance of Treg stability in Th17-polarizing environments and present a possible target for improving Treg-based immunotherapies for diseases defined by intestinal inflammation, such as inflammatory bowel disease (IBD).

immunology↗