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A biomimetic gelatin-based platform elicits a pro-differentiation effect on podocytes through mechanotransduction

Using a gelatin microbial transglutaminase (gelatin-mTG) cell culture platform tuned to exhibit stiffness spanning that of healthy and diseased glomeruli, we demonstrate that kidney podocytes show marked stiffness sensitivity. Podocyte-specific markers that are critical in the formation of the renal...

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Autores principales: Hu, Mufeng, Azeloglu, Evren U., Ron, Amit, Tran-Ba, Khanh-Hoa, Calizo, Rhodora C., Tavassoly, Iman, Bhattacharya, Smiti, Jayaraman, Gomathi, Chen, Yibang, Rabinovich, Vera, Iyengar, Ravi, Hone, James C., He, John C., Kaufman, Laura J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5338254/
https://www.ncbi.nlm.nih.gov/pubmed/28262745
http://dx.doi.org/10.1038/srep43934
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author Hu, Mufeng
Azeloglu, Evren U.
Ron, Amit
Tran-Ba, Khanh-Hoa
Calizo, Rhodora C.
Tavassoly, Iman
Bhattacharya, Smiti
Jayaraman, Gomathi
Chen, Yibang
Rabinovich, Vera
Iyengar, Ravi
Hone, James C.
He, John C.
Kaufman, Laura J.
author_facet Hu, Mufeng
Azeloglu, Evren U.
Ron, Amit
Tran-Ba, Khanh-Hoa
Calizo, Rhodora C.
Tavassoly, Iman
Bhattacharya, Smiti
Jayaraman, Gomathi
Chen, Yibang
Rabinovich, Vera
Iyengar, Ravi
Hone, James C.
He, John C.
Kaufman, Laura J.
author_sort Hu, Mufeng
collection PubMed
description Using a gelatin microbial transglutaminase (gelatin-mTG) cell culture platform tuned to exhibit stiffness spanning that of healthy and diseased glomeruli, we demonstrate that kidney podocytes show marked stiffness sensitivity. Podocyte-specific markers that are critical in the formation of the renal filtration barrier are found to be regulated in association with stiffness-mediated cellular behaviors. While podocytes typically de-differentiate in culture and show diminished physiological function in nephropathies characterized by altered tissue stiffness, we show that gelatin-mTG substrates with Young’s modulus near that of healthy glomeruli elicit a pro-differentiation and maturation response in podocytes better than substrates either softer or stiffer. The pro-differentiation phenotype is characterized by upregulation of gene and protein expression associated with podocyte function, which is observed for podocytes cultured on gelatin-mTG gels of physiological stiffness independent of extracellular matrix coating type and density. Signaling pathways involved in stiffness-mediated podocyte behaviors are identified, revealing the interdependence of podocyte mechanotransduction and maintenance of their physiological function. This study also highlights the utility of the gelatin-mTG platform as an in vitro system with tunable stiffness over a range relevant for recapitulating mechanical properties of soft tissues, suggesting its potential impact on a wide range of research in cellular biophysics.
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spelling pubmed-53382542017-03-08 A biomimetic gelatin-based platform elicits a pro-differentiation effect on podocytes through mechanotransduction Hu, Mufeng Azeloglu, Evren U. Ron, Amit Tran-Ba, Khanh-Hoa Calizo, Rhodora C. Tavassoly, Iman Bhattacharya, Smiti Jayaraman, Gomathi Chen, Yibang Rabinovich, Vera Iyengar, Ravi Hone, James C. He, John C. Kaufman, Laura J. Sci Rep Article Using a gelatin microbial transglutaminase (gelatin-mTG) cell culture platform tuned to exhibit stiffness spanning that of healthy and diseased glomeruli, we demonstrate that kidney podocytes show marked stiffness sensitivity. Podocyte-specific markers that are critical in the formation of the renal filtration barrier are found to be regulated in association with stiffness-mediated cellular behaviors. While podocytes typically de-differentiate in culture and show diminished physiological function in nephropathies characterized by altered tissue stiffness, we show that gelatin-mTG substrates with Young’s modulus near that of healthy glomeruli elicit a pro-differentiation and maturation response in podocytes better than substrates either softer or stiffer. The pro-differentiation phenotype is characterized by upregulation of gene and protein expression associated with podocyte function, which is observed for podocytes cultured on gelatin-mTG gels of physiological stiffness independent of extracellular matrix coating type and density. Signaling pathways involved in stiffness-mediated podocyte behaviors are identified, revealing the interdependence of podocyte mechanotransduction and maintenance of their physiological function. This study also highlights the utility of the gelatin-mTG platform as an in vitro system with tunable stiffness over a range relevant for recapitulating mechanical properties of soft tissues, suggesting its potential impact on a wide range of research in cellular biophysics. Nature Publishing Group 2017-03-06 /pmc/articles/PMC5338254/ /pubmed/28262745 http://dx.doi.org/10.1038/srep43934 Text en Copyright © 2017, The Author(s) http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Hu, Mufeng
Azeloglu, Evren U.
Ron, Amit
Tran-Ba, Khanh-Hoa
Calizo, Rhodora C.
Tavassoly, Iman
Bhattacharya, Smiti
Jayaraman, Gomathi
Chen, Yibang
Rabinovich, Vera
Iyengar, Ravi
Hone, James C.
He, John C.
Kaufman, Laura J.
A biomimetic gelatin-based platform elicits a pro-differentiation effect on podocytes through mechanotransduction
title A biomimetic gelatin-based platform elicits a pro-differentiation effect on podocytes through mechanotransduction
title_full A biomimetic gelatin-based platform elicits a pro-differentiation effect on podocytes through mechanotransduction
title_fullStr A biomimetic gelatin-based platform elicits a pro-differentiation effect on podocytes through mechanotransduction
title_full_unstemmed A biomimetic gelatin-based platform elicits a pro-differentiation effect on podocytes through mechanotransduction
title_short A biomimetic gelatin-based platform elicits a pro-differentiation effect on podocytes through mechanotransduction
title_sort biomimetic gelatin-based platform elicits a pro-differentiation effect on podocytes through mechanotransduction
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5338254/
https://www.ncbi.nlm.nih.gov/pubmed/28262745
http://dx.doi.org/10.1038/srep43934
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