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A Modified Two Kidney One Clip Mouse Model of Renin Regulation in Renal Artery Stenosis
Published on: October 26, 2020
Chronic Stimulation of Renin Cells Leads to Vascular Pathology
Masafumi Oka1, Silvia Medrano1, Maria Luisa S Sequeira-Lόpez1
1From the Department of Pediatrics, University of Virginia, Charlottesville.
Abstract:
Experimental or spontaneous genomic mutations of the renin-angiotensin system or its pharmacological inhibition in early life leads to renal abnormalities, including poorly developed renal medulla, papillary atrophy, hydronephrosis, inability to concentrate the urine, polyuria, polydipsia, renal failure, and anemia. At the core of such complex phenotype is the presence of unique vascular abnormalities: the renal arterioles do not branch or elongate properly and they have disorganized, concentric hypertrophy. This lesion has been puzzling because it is often found in hypertensive individuals whereas mutant or pharmacologically inhibited animals are hypotensive. Remarkably, when renin cells are ablated with diphtheria toxin, the vascular hypertrophy does not occur, suggesting that renin cells per se may contribute to the vascular disease. To test this hypothesis, on a Ren1 background, we generated mutant mice with reporter expression (Ren1;Ren1-Cre;R26R.mTmG and Ren1;Ren1-Cre;R26R.LacZ) to trace the fate of renin cells. To assess whether renin cells maintain their renin promoter active, we used Ren1;Ren1-YFP mice that transcribe YFP (yellow fluorescent protein) directed by the renin promoter. We also followed the expression of Akr1b7 and miR-330-5p, markers of cells programmed for the renin phenotype. Contrary to what we expected, renin cells did not die or disappear. Instead, they survived, increased in number along the renal arterial tree, and maintained an active molecular memory of the myoepitheliod renin phenotype. Furthermore, null cells of the renin lineage occupied the walls of the arteries and arterioles in a chaotic, directionless pattern directly contributing to the concentric arterial hypertrophy.
Insights
Renin cells, contrary to expectations, survive and proliferate in the kidneys, contributing to abnormal arterial growth and renal disease. This discovery sheds light on the complex renin-angiotensin system
Area of Science:
- Nephrology
- Cardiovascular Biology
- Genetics
Background:
- Mutations or inhibition of the renin-angiotensin system in early life cause renal abnormalities and vascular defects.
- Renal arteriolar hypertrophy, a key vascular abnormality, is puzzling as it occurs in hypertensive individuals but not in hypotensive renin-mutant animals.
Purpose of the Study:
- To investigate the role of renin cells in the development of renal vascular abnormalities.
- To trace the fate and molecular characteristics of renin cells in vivo.
Main Methods:
- Generation of reporter mice (Ren1-Cre;R26R.mTmG, Ren1-Cre;R26R.LacZ, Ren1-YFP) to track renin cells.
- Analysis of renin cell survival, proliferation, and gene expression (Akr1b7, miR-330-5p).
Main Results:
- Renin cells did not disappear but survived and increased along the renal arterial tree.
- These renin cells retained molecular markers of the renin phenotype.
- Renin lineage cells contributed to disorganized, concentric hypertrophy of renal arteries and arterioles.
Conclusions:
- Renin cells actively contribute to renal vascular disease, challenging previous assumptions.
- The persistence and proliferation of renin cells are key drivers of arteriolar hypertrophy in the kidney.
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