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Renin cells orchestrate a neuro-endocrine microenvironment of the kidney arterial tree in health and disease
Manako Yamaguchi, Georgina Gyarmati, Liam McLaughlin, Hiroki Yamaguchi, Jason P. Smith, Lucas Ferreira de Almeida, Daisuke Matsuoka, Alexandre G. Martini, Sara M. Wilmsen, Sijie Hao, Kazuki Tainaka, Silvia Medrano, Sanjay Jain, Janos Peti-Peterdi, Maria Luisa S. Sequeira-Lopez, R. Ariel Gomez
Manako Yamaguchi, Georgina Gyarmati, Liam McLaughlin, Hiroki Yamaguchi, Jason P. Smith, Lucas Ferreira de Almeida, Daisuke Matsuoka, Alexandre G. Martini, Sara M. Wilmsen, Sijie Hao, Kazuki Tainaka, Silvia Medrano, Sanjay Jain, Janos Peti-Peterdi, Maria Luisa S. Sequeira-Lopez, R. Ariel Gomez
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Research Article Development Nephrology Vascular biology

Renin cells orchestrate a neuro-endocrine microenvironment of the kidney arterial tree in health and disease

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Abstract

Renin cells are essential for survival and serve as key regulators of blood pressure and fluid-electrolyte homeostasis. Their function and identity are dependent on signals from their local microenvironment afforded by neighboring cells and nerves. Whether and how renin cells contribute to the development and maintenance of this microenvironment remains unclear. Because renin cells are rare — 0.01 % of kidney cells — conventional histological approaches cannot capture their interaction with nerve fibers and surrounding cells within the nephron and its vasculature. Using high-resolution 3D imaging, cell-specific multicolor reporter mice, single-cell RNA-seq, and conditional gene deletions, we mapped how renin cells assemble within arterioles and communicate with axon fibers to organize the growth and orientation of the kidney arterioles during development and disease. This coinductive process is mediated by Ngf produced by renin cell precursors and is necessary for renin cell survival and innervation. Interestingly, renin enzymatic insufficiency elevates Ngf and drives arteriolar hypertrophy with aberrant axon sprouting and hyperinnervation. These findings indicate that renin cells regulate kidney neurovascular development, revealing them as active organizers of their local neuroregulatory microenvironment in health and disease.

Authors

Manako Yamaguchi, Georgina Gyarmati, Liam McLaughlin, Hiroki Yamaguchi, Jason P. Smith, Lucas Ferreira de Almeida, Daisuke Matsuoka, Alexandre G. Martini, Sara M. Wilmsen, Sijie Hao, Kazuki Tainaka, Silvia Medrano, Sanjay Jain, Janos Peti-Peterdi, Maria Luisa S. Sequeira-Lopez, R. Ariel Gomez

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Figure 1

Tissue clearing–based 3D imaging of Ren1c-tdTomato/+ mice allow high-resolution 3D structural observations of renin cells and vascular tree.

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Tissue clearing–based 3D imaging of Ren1c-tdTomato/+ mice allow high-res...
(A) Workflow for kidney clearing and immunostaining (CUBIC protocol). (B) Ren1c-tdTomato mouse generation schematic. (C) Three-dimensional visualization of renin cells (tdTomato) and renal arterial tree within the kidney cortex of a 7-month-old Ren1c-tdTomato/+ mouse. Dashed lines: kidney surface. Scale bars: 300 μm. (D) XY-plane (200 μm thickness) showing detailed structure of peripheral renal arterial tree (green) and localization of renin cells. Right panel: Cell-level detail. Dashed circle indicates glomeruli. Scale bars: 100 μm. (E) High-resolution 3D image depicting spatial relationships between renin cells, SMCs, and nuclei in the kidney cortex of a Ren1c-tdTomato/+ mouse. Right panel: Enlarged XY-plane view (10 μm thickness) illustrating spatial relationships among renin cells, endothelial cells, and SMCs. Scale bars: 50 μm. RT, room temperature; αSMA, α-smooth muscle actin. See also Supplemental Videos 1 and 2.

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