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TRPV4 regulates calcium homeostasis, cytoskeletal remodeling, conventional outflow and intraocular pressure in the mammalian eye

An intractable challenge in glaucoma treatment has been to identify druggable targets within the conventional aqueous humor outflow pathway, which is thought to be regulated/dysregulated by elusive mechanosensitive protein(s). Here, biochemical and functional analyses localized the putative mechanos...

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Autores principales: Ryskamp, Daniel A., Frye, Amber M., Phuong, Tam T. T., Yarishkin, Oleg, Jo, Andrew O., Xu, Yong, Lakk, Monika, Iuso, Anthony, Redmon, Sarah N., Ambati, Balamurali, Hageman, Gregory, Prestwich, Glenn D., Torrejon, Karen Y., Križaj, David
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4980693/
https://www.ncbi.nlm.nih.gov/pubmed/27510430
http://dx.doi.org/10.1038/srep30583
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author Ryskamp, Daniel A.
Frye, Amber M.
Phuong, Tam T. T.
Yarishkin, Oleg
Jo, Andrew O.
Xu, Yong
Lakk, Monika
Iuso, Anthony
Redmon, Sarah N.
Ambati, Balamurali
Hageman, Gregory
Prestwich, Glenn D.
Torrejon, Karen Y.
Križaj, David
author_facet Ryskamp, Daniel A.
Frye, Amber M.
Phuong, Tam T. T.
Yarishkin, Oleg
Jo, Andrew O.
Xu, Yong
Lakk, Monika
Iuso, Anthony
Redmon, Sarah N.
Ambati, Balamurali
Hageman, Gregory
Prestwich, Glenn D.
Torrejon, Karen Y.
Križaj, David
author_sort Ryskamp, Daniel A.
collection PubMed
description An intractable challenge in glaucoma treatment has been to identify druggable targets within the conventional aqueous humor outflow pathway, which is thought to be regulated/dysregulated by elusive mechanosensitive protein(s). Here, biochemical and functional analyses localized the putative mechanosensitive cation channel TRPV4 to the plasma membrane of primary and immortalized human TM (hTM) cells, and to human and mouse TM tissue. Selective TRPV4 agonists and substrate stretch evoked TRPV4-dependent cation/Ca(2+) influx, thickening of F-actin stress fibers and reinforcement of focal adhesion contacts. TRPV4 inhibition enhanced the outflow facility and lowered perfusate pressure in biomimetic TM scaffolds populated with primary hTM cells. Systemic delivery, intraocular injection or topical application of putative TRPV4 antagonist prodrug analogs lowered IOP in glaucomatous mouse eyes and protected retinal neurons from IOP-induced death. Together, these findings indicate that TRPV4 channels function as a critical component of mechanosensitive, Ca(2+)-signaling machinery within the TM, and that TRPV4-dependent cytoskeletal remodeling regulates TM stiffness and outflow. Thus, TRPV4 is a potential IOP sensor within the conventional outflow pathway and a novel target for treating ocular hypertension.
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spelling pubmed-49806932016-08-19 TRPV4 regulates calcium homeostasis, cytoskeletal remodeling, conventional outflow and intraocular pressure in the mammalian eye Ryskamp, Daniel A. Frye, Amber M. Phuong, Tam T. T. Yarishkin, Oleg Jo, Andrew O. Xu, Yong Lakk, Monika Iuso, Anthony Redmon, Sarah N. Ambati, Balamurali Hageman, Gregory Prestwich, Glenn D. Torrejon, Karen Y. Križaj, David Sci Rep Article An intractable challenge in glaucoma treatment has been to identify druggable targets within the conventional aqueous humor outflow pathway, which is thought to be regulated/dysregulated by elusive mechanosensitive protein(s). Here, biochemical and functional analyses localized the putative mechanosensitive cation channel TRPV4 to the plasma membrane of primary and immortalized human TM (hTM) cells, and to human and mouse TM tissue. Selective TRPV4 agonists and substrate stretch evoked TRPV4-dependent cation/Ca(2+) influx, thickening of F-actin stress fibers and reinforcement of focal adhesion contacts. TRPV4 inhibition enhanced the outflow facility and lowered perfusate pressure in biomimetic TM scaffolds populated with primary hTM cells. Systemic delivery, intraocular injection or topical application of putative TRPV4 antagonist prodrug analogs lowered IOP in glaucomatous mouse eyes and protected retinal neurons from IOP-induced death. Together, these findings indicate that TRPV4 channels function as a critical component of mechanosensitive, Ca(2+)-signaling machinery within the TM, and that TRPV4-dependent cytoskeletal remodeling regulates TM stiffness and outflow. Thus, TRPV4 is a potential IOP sensor within the conventional outflow pathway and a novel target for treating ocular hypertension. Nature Publishing Group 2016-08-11 /pmc/articles/PMC4980693/ /pubmed/27510430 http://dx.doi.org/10.1038/srep30583 Text en Copyright © 2016, 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
Ryskamp, Daniel A.
Frye, Amber M.
Phuong, Tam T. T.
Yarishkin, Oleg
Jo, Andrew O.
Xu, Yong
Lakk, Monika
Iuso, Anthony
Redmon, Sarah N.
Ambati, Balamurali
Hageman, Gregory
Prestwich, Glenn D.
Torrejon, Karen Y.
Križaj, David
TRPV4 regulates calcium homeostasis, cytoskeletal remodeling, conventional outflow and intraocular pressure in the mammalian eye
title TRPV4 regulates calcium homeostasis, cytoskeletal remodeling, conventional outflow and intraocular pressure in the mammalian eye
title_full TRPV4 regulates calcium homeostasis, cytoskeletal remodeling, conventional outflow and intraocular pressure in the mammalian eye
title_fullStr TRPV4 regulates calcium homeostasis, cytoskeletal remodeling, conventional outflow and intraocular pressure in the mammalian eye
title_full_unstemmed TRPV4 regulates calcium homeostasis, cytoskeletal remodeling, conventional outflow and intraocular pressure in the mammalian eye
title_short TRPV4 regulates calcium homeostasis, cytoskeletal remodeling, conventional outflow and intraocular pressure in the mammalian eye
title_sort trpv4 regulates calcium homeostasis, cytoskeletal remodeling, conventional outflow and intraocular pressure in the mammalian eye
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4980693/
https://www.ncbi.nlm.nih.gov/pubmed/27510430
http://dx.doi.org/10.1038/srep30583
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