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Super-enhancers maintain renin-expressing cell identity and memory to preserve multi-system homeostasis
Maria Florencia Martinez, Silvia Medrano, Robin Isadora Brown, Turan Tufan, Stephen Shang, Nadia Bertoncello, Omar Guessoum, Mazhar Adli, Brian C. Belyea, Maria Luisa S. Sequeira-Lopez, R. Ariel Gomez
Maria Florencia Martinez, Silvia Medrano, Robin Isadora Brown, Turan Tufan, Stephen Shang, Nadia Bertoncello, Omar Guessoum, Mazhar Adli, Brian C. Belyea, Maria Luisa S. Sequeira-Lopez, R. Ariel Gomez
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Research Article Endocrinology Nephrology

Super-enhancers maintain renin-expressing cell identity and memory to preserve multi-system homeostasis

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Abstract

Renin cells are crucial for survival — they control fluid-electrolyte and blood pressure homeostasis, vascular development, regeneration, and oxygen delivery to tissues. During embryonic development, renin cells are progenitors for multiple cell types that retain the memory of the renin phenotype. When there is a threat to survival, those descendants are transformed and reenact the renin phenotype to restore homeostasis. We tested the hypothesis that the molecular memory of the renin phenotype resides in unique regions and states of these cells’ chromatin. Using renin cells at various stages of stimulation, we identified regions in the genome where the chromatin is open for transcription, mapped histone modifications characteristic of active enhancers such as H3K27ac, and tracked deposition of transcriptional activators such as Med1, whose deletion results in ablation of renin expression and low blood pressure. Using the rank ordering of super-enhancers, epigenetic rewriting, and enhancer deletion analysis, we found that renin cells harbor a unique set of super-enhancers that determine their identity. The most prominent renin super-enhancer may act as a chromatin sensor of signals that convey the physiologic status of the organism, and is responsible for the transformation of renin cell descendants to the renin phenotype, a fundamental process to ensure homeostasis.

Authors

Maria Florencia Martinez, Silvia Medrano, Robin Isadora Brown, Turan Tufan, Stephen Shang, Nadia Bertoncello, Omar Guessoum, Mazhar Adli, Brian C. Belyea, Maria Luisa S. Sequeira-Lopez, R. Ariel Gomez

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Figure 7

Super-enhancers acting as chromatin sensors of the extracellular milieu control the identity and memory of renin cells to maintain homeostasis.

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Super-enhancers acting as chromatin sensors of the extracellular milieu ...
See main text for details. The inset illustrates events that occur in renin cells in order to maintain or reenact the renin phenotype. The cAMP pathway is activated through the β-adrenergic receptor or the prostaglandin E2 receptor. Phosphorylated CREB enters the nucleus and binds the CRE element at the enhancer of the renin gene. As the Notch receptor is activated by cell-cell interaction, its intracellular domain (NICD) enters the nucleus and binds the transcription factor RBPJ. As these events occur, the chromatin is made accessible at the renin locus, which is characterized by the deposition of H3K27ac due to p300 histone acetyl transferase activity; MED1 establishes the bridge between the renin enhancer and Pol II. These key components act together to activate the transcriptional machinery. Moreover, other super-enhancers (color dots) may cooperate to fully establish the renin phenotype. β-AR, beta adrenergic receptor; PGE2, prostaglandin E2; AC, adenylate cyclase; Gsα, activating G protein–coupled subunit; PKA, protein kinase A; CREBP, phosphorylated cAMP responsive element binding protein.

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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