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Biology subjects

Medrano, S.

Publications and source records attributed to Medrano, S..

2 recordsLinked to original sources

Protein Kinase A Inhibition Epigenetically Silences Ren1

RationaleRenin-expressing cells are myoendocrine cells crucial for survival which detect changes in blood pressure and release renin to maintain homeostasis. One of the pathways responsible for renin expression includes cAMP as a crucial factor. cAMP binds to subunits of protein kinase A (PKA), ultimately recruiting both CBP and p300. Binding to the cAMP-responsive element in the renin enhancer region thus amplifies renin transcription. ObjectiveTo evaluate transcriptomic and epigenomic changes occurring at the renin locus via cAMP pathway inhibition. Methods and ResultsWe treated As4.1 cells (a tumoral cell line that constitutively expresses renin) with the PKA inhibitor H89 (treated) or DMSO (control). We then performed independent ATAC-seq, scRNA-seq, and ChIP-seq for H3K27Ac and P300 binding on biological replicates of treated and control As4.1 cells. Ren1 expression is significantly reduced following PKA inhibition with a corresponding loss in H3K27Ac and P300 binding at the locus. A restricted set of nine genes with overlapping dynamically accessible regions, differential gene expression, and H3K27Ac and P300 binding were identified with roles among three primary renin regulatory paradigms. ConclusionsThe data suggests that cAMP pathway inhibition controls renin expression through a reduction not in accessibility alone, but via a switch from an active to poised state of epigenetic control, a shift towards a less differentiated cellular identity, and the disruption of not only cAMP, but baroreceptor and Notch mediated renin regulatory pathways.

genomics↗

Determinants of renin cell differentiation: a single cell epi-transcriptomics approach

RationaleRenin cells are essential for survival. They control the morphogenesis of the kidney arterioles, and the composition and volume of our extracellular fluid, arterial blood pressure, tissue perfusion, and oxygen delivery. It is known that renin cells and associated arteriolar cells descend from FoxD1+ progenitor cells, yet renin cells remain challenging to study due in no small part to their rarity within the kidney. As such, the molecular mechanisms underlying the differentiation and maintenance of these cells remain insufficiently understood. ObjectiveWe sought to comprehensively evaluate the chromatin states and transcription factors (TFs) that drive the differentiation of FoxD1+ progenitor cells into those that compose the kidney vasculature with a focus on renin cells. Methods and ResultsWe isolated single nuclei of FoxD1+ progenitor cells and their descendants from FoxD1cre/+;R26R-mTmG mice at embryonic day 12 (E12) (ncells=1234), embryonic day 18 (E18) (ncells=3696), postnatal day 5 (P5) (ncells=1986), and postnatal day 30 (P30) (ncells=1196). Using integrated scRNA-seq and scATAC-seq we established the developmental trajectory that leads to the mosaic of cells that compose the kidney arterioles, and specifically identified the factors that determine the elusive, myo-endocrine adult renin-secreting juxtaglomerular (JG) cell. We confirm the role of Nfix in JG cell development and renin expression, and identified the myocyte enhancer factor-2 (MEF2) family of TFs as putative drivers of JG cell differentiation. ConclusionsWe provide the first developmental trajectory of renin cell differentiation as they become JG cells in a single-cell atlas of kidney vascular open chromatin and highlighted novel factors important for their stage-specific differentiation. This improved understanding of the regulatory landscape of renin expressing JG cells is necessary to better learn the control and function of this rare cell population as overactivation or aberrant activity of the RAS is a key factor in cardiovascular and kidney pathologies.

developmental biology↗