Literature DB >> 28539333

Endothelial marker-expressing stromal cells are critical for kidney formation.

Elina Mukherjee1,2, Katherine Maringer1,2, Emily Papke1,2, Daniel Bushnell1,2, Caitlin Schaefer1,2, Rafael Kramann3, Jacqueline Ho1,2, Benjamin D Humphreys4, Carlton Bates1,2, Sunder Sims-Lucas5,2,6.   

Abstract

Kidneys are highly vascularized and contain many distinct vascular beds. However, the origins of renal endothelial cells and roles of the developing endothelia in the formation of the kidney are unclear. We have shown that the Foxd1-positive renal stroma gives rise to endothelial marker-expressing progenitors that are incorporated within a subset of peritubular capillaries; however, the significance of these cells is unclear. The purpose of this study was to determine whether deletion of Flk1 in the Foxd1 stroma was important for renal development. To that end, we conditionally deleted Flk1 (critical for endothelial cell development) in the renal stroma by breeding-floxed Flk1 mice (Flk1fl/fl ) with Foxd1cre mice to generate Foxd1cre; Flk1fl/fl (Flk1ST-/- ) mice. We then performed FACsorting, histological, morphometric, and metabolic analyses of Flk1ST-/- vs. control mice. We confirmed decreased expression of endothelial markers in the renal stroma of Flk1ST-/- kidneys via flow sorting and immunostaining, and upon interrogation of embryonic and postnatal Flk1ST-/- mice, we found they had dilated peritubular capillaries. Three-dimensional reconstructions showed reduced ureteric branching and fewer nephrons in developing Flk1ST-/- kidneys vs. CONTROLS: Juvenile Flk1ST-/- kidneys displayed renal papillary hypoplasia and a paucity of collecting ducts. Twenty-four-hour urine collections revealed that postnatal Flk1ST-/- mice had urinary-concentrating defects. Thus, while lineage-tracing revealed that the renal cortical stroma gave rise to a small subset of endothelial progenitors, these Flk1-expressing stromal cells are critical for patterning the peritubular capillaries. Also, loss of Flk1 in the renal stroma leads to nonautonomous-patterning defects in ureteric lineages.
Copyright © 2017 the American Physiological Society.

Entities:  

Keywords:  Flk1; Foxd1; endothelial cell progenitors; kidney development; renal stroma; vasculogenesis

Mesh:

Substances:

Year:  2017        PMID: 28539333      PMCID: PMC6148306          DOI: 10.1152/ajprenal.00136.2017

Source DB:  PubMed          Journal:  Am J Physiol Renal Physiol        ISSN: 1522-1466


  37 in total

1.  Foxd1-dependent signals control cellularity in the renal capsule, a structure required for normal renal development.

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2.  Mechanism underlying early anaemia in children with familial juvenile nephronophthisis.

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Journal:  Pediatr Nephrol       Date:  1996-10       Impact factor: 3.714

Review 3.  Origins and formation of microvasculature in the developing kidney.

Authors:  D R Abrahamson; B Robert; D P Hyink; P L St John; T O Daniel
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Authors:  Maria Luisa S Sequeira-Lopez; Eugene E Lin; Minghong Li; Yan Hu; Curt D Sigmund; R Ariel Gomez
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5.  Failure of blood-island formation and vasculogenesis in Flk-1-deficient mice.

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Journal:  Nature       Date:  1995-07-06       Impact factor: 49.962

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Authors:  Linda Madisen; Theresa A Zwingman; Susan M Sunkin; Seung Wook Oh; Hatim A Zariwala; Hong Gu; Lydia L Ng; Richard D Palmiter; Michael J Hawrylycz; Allan R Jones; Ed S Lein; Hongkui Zeng
Journal:  Nat Neurosci       Date:  2009-12-20       Impact factor: 24.884

7.  Association between AKI, recovery of renal function, and long-term outcomes after hospital discharge.

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8.  Vegf as an epithelial cell morphogen modulates branching morphogenesis of embryonic kidney by directly acting on the ureteric bud.

Authors:  Arnaud Marlier; Kai M Schmidt-Ott; Anna-Rachel Gallagher; Jonathan Barasch; Anil Karihaloo
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9.  Ablation of the renal stroma defines its critical role in nephron progenitor and vasculature patterning.

Authors:  Stephanie Hum; Christopher Rymer; Caitlin Schaefer; Daniel Bushnell; Sunder Sims-Lucas
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10.  Stromal-epithelial crosstalk regulates kidney progenitor cell differentiation.

Authors:  Amrita Das; Shunsuke Tanigawa; Courtney M Karner; Mei Xin; Lawrence Lum; Chuo Chen; Eric N Olson; Alan O Perantoni; Thomas J Carroll
Journal:  Nat Cell Biol       Date:  2013-08-25       Impact factor: 28.824

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2.  Sirtuin 5 Regulates Proximal Tubule Fatty Acid Oxidation to Protect against AKI.

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Review 3.  Development of the renal vasculature.

Authors:  Tahagod Mohamed; Maria Luisa S Sequeira-Lopez
Journal:  Semin Cell Dev Biol       Date:  2018-06-06       Impact factor: 7.727

4.  Mouse Metanephric Mesenchymal Cell-Derived Angioblasts Undergo Vasculogenesis in Three-Dimensional Culture.

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5.  In utero exposure to maternal diabetes impairs nephron progenitor differentiation.

Authors:  Débora M Cerqueira; Shelby L Hemker; Andrew J Bodnar; Daniella M Ortiz; Favour O Oladipupo; Elina Mukherjee; Zhenwei Gong; Corynn Appolonia; Radhika Muzumdar; Sunder Sims-Lucas; Jacqueline Ho
Journal:  Am J Physiol Renal Physiol       Date:  2019-09-11

6.  Endothelial-Derived miR-17∼92 Promotes Angiogenesis to Protect against Renal Ischemia-Reperfusion Injury.

Authors:  Takuto Chiba; Débora M Cerqueira; Yao Li; Andrew J Bodnar; Elina Mukherjee; Katherine Pfister; Yu Leng Phua; Kai Shaikh; Brandon T Sanders; Shelby L Hemker; Patrick J Pagano; Yijen L Wu; Jacqueline Ho; Sunder Sims-Lucas
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Review 7.  Cellular and Molecular Mechanisms of Kidney Development: From the Embryo to the Kidney Organoid.

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Review 8.  3D kidney organoids for bench-to-bedside translation.

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Review 9.  Embryonic Kidney Development, Stem Cells and the Origin of Wilms Tumor.

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