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TRPV4 inhibition prevents increased water diffusion and blood-retina barrier breakdown in the retina of streptozotocin-induced diabetic mice

A better understanding of the molecular and cellular mechanisms involved in retinal hydro-mineral homeostasis imbalance during diabetic macular edema (DME) is needed to gain insights into retinal (patho-)physiology that will help elaborate innovative therapies with lower health care costs. Transient...

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Autores principales: Orduña Ríos, Maricruz, Noguez Imm, Ramsés, Hernández Godínez, Nicole Marilú, Bautista Cortes, Ana María, López Escalante, Dayana Deyanira, Liedtke, Wolfgang, Martínez Torres, Atáulfo, Concha, Luis, Thébault, Stéphanie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2019
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Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6497373/
https://www.ncbi.nlm.nih.gov/pubmed/31048895
http://dx.doi.org/10.1371/journal.pone.0212158
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author Orduña Ríos, Maricruz
Noguez Imm, Ramsés
Hernández Godínez, Nicole Marilú
Bautista Cortes, Ana María
López Escalante, Dayana Deyanira
Liedtke, Wolfgang
Martínez Torres, Atáulfo
Concha, Luis
Thébault, Stéphanie
author_facet Orduña Ríos, Maricruz
Noguez Imm, Ramsés
Hernández Godínez, Nicole Marilú
Bautista Cortes, Ana María
López Escalante, Dayana Deyanira
Liedtke, Wolfgang
Martínez Torres, Atáulfo
Concha, Luis
Thébault, Stéphanie
author_sort Orduña Ríos, Maricruz
collection PubMed
description A better understanding of the molecular and cellular mechanisms involved in retinal hydro-mineral homeostasis imbalance during diabetic macular edema (DME) is needed to gain insights into retinal (patho-)physiology that will help elaborate innovative therapies with lower health care costs. Transient receptor potential cation channel subfamily vanilloid member 4 (TRPV4) plays an intricate role in homeostatic processes that needs to be deciphered in normal and diabetic retina. Based on previous findings showing that TRPV4 antagonists resolve blood-retina barrier (BRB) breakdown in diabetic rats, we evaluated whether TRPV4 channel inhibition prevents and reverts retinal edema in streptozotocin(STZ)-induced diabetic mice. We assessed retinal edema using common metrics, including retinal morphology/thickness (histology) and BRB integrity (albumin-associated tracer), and also by quantifying water mobility through apparent diffusion coefficient (ADC) measures. ADC was measured by diffusion-weighted magnetic resonance imaging (DW-MRI), acquired ex vivo at 4 weeks after STZ injection in diabetes and control groups. DWI images were also used to assess retinal thickness. TRPV4 was genetically ablated or pharmacologically inhibited as follows: left eyes were used as vehicle control and right eyes were intravitreally injected with TRPV4-selective antagonist GSK2193874, 24 h before the end of the 4 weeks of diabetes. Histological data show that retinal thickness was similar in nondiabetic and diabetic wt groups but increased in diabetic Trpv4(-/-) mice. In contrast, DWI shows retinal thinning in diabetic wt mice that was absent in diabetic Trpv4(-/-) mice. Disorganized outer nuclear layer was observed in diabetic wt but not in diabetic Trpv4(-/-) retinas. We further demonstrate increased water diffusion, increased distances between photoreceptor nuclei, reduced nuclear area in all nuclear layers, and BRB hyperpermeability, in diabetic wt mice, effects that were absent in diabetic Trpv4(-/-) mice. Retinas of diabetic mice treated with PBS showed increased water diffusion that was not normalized by GSK2193874. ADC maps in nondiabetic Trpv4(-/-) mouse retinas showed restricted diffusion. Our data provide evidence that water diffusion is increased in diabetic mouse retinas and that TRPV4 function contributes to retinal hydro-mineral homeostasis and structure under control conditions, and to the development of BRB breakdown and increased water diffusion in the retina under diabetes conditions. A single intravitreous injection of TRPV4 antagonist is however not sufficient to revert these alterations in diabetic mouse retinas.
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spelling pubmed-64973732019-05-17 TRPV4 inhibition prevents increased water diffusion and blood-retina barrier breakdown in the retina of streptozotocin-induced diabetic mice Orduña Ríos, Maricruz Noguez Imm, Ramsés Hernández Godínez, Nicole Marilú Bautista Cortes, Ana María López Escalante, Dayana Deyanira Liedtke, Wolfgang Martínez Torres, Atáulfo Concha, Luis Thébault, Stéphanie PLoS One Research Article A better understanding of the molecular and cellular mechanisms involved in retinal hydro-mineral homeostasis imbalance during diabetic macular edema (DME) is needed to gain insights into retinal (patho-)physiology that will help elaborate innovative therapies with lower health care costs. Transient receptor potential cation channel subfamily vanilloid member 4 (TRPV4) plays an intricate role in homeostatic processes that needs to be deciphered in normal and diabetic retina. Based on previous findings showing that TRPV4 antagonists resolve blood-retina barrier (BRB) breakdown in diabetic rats, we evaluated whether TRPV4 channel inhibition prevents and reverts retinal edema in streptozotocin(STZ)-induced diabetic mice. We assessed retinal edema using common metrics, including retinal morphology/thickness (histology) and BRB integrity (albumin-associated tracer), and also by quantifying water mobility through apparent diffusion coefficient (ADC) measures. ADC was measured by diffusion-weighted magnetic resonance imaging (DW-MRI), acquired ex vivo at 4 weeks after STZ injection in diabetes and control groups. DWI images were also used to assess retinal thickness. TRPV4 was genetically ablated or pharmacologically inhibited as follows: left eyes were used as vehicle control and right eyes were intravitreally injected with TRPV4-selective antagonist GSK2193874, 24 h before the end of the 4 weeks of diabetes. Histological data show that retinal thickness was similar in nondiabetic and diabetic wt groups but increased in diabetic Trpv4(-/-) mice. In contrast, DWI shows retinal thinning in diabetic wt mice that was absent in diabetic Trpv4(-/-) mice. Disorganized outer nuclear layer was observed in diabetic wt but not in diabetic Trpv4(-/-) retinas. We further demonstrate increased water diffusion, increased distances between photoreceptor nuclei, reduced nuclear area in all nuclear layers, and BRB hyperpermeability, in diabetic wt mice, effects that were absent in diabetic Trpv4(-/-) mice. Retinas of diabetic mice treated with PBS showed increased water diffusion that was not normalized by GSK2193874. ADC maps in nondiabetic Trpv4(-/-) mouse retinas showed restricted diffusion. Our data provide evidence that water diffusion is increased in diabetic mouse retinas and that TRPV4 function contributes to retinal hydro-mineral homeostasis and structure under control conditions, and to the development of BRB breakdown and increased water diffusion in the retina under diabetes conditions. A single intravitreous injection of TRPV4 antagonist is however not sufficient to revert these alterations in diabetic mouse retinas. Public Library of Science 2019-05-02 /pmc/articles/PMC6497373/ /pubmed/31048895 http://dx.doi.org/10.1371/journal.pone.0212158 Text en © 2019 Orduña Ríos et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Orduña Ríos, Maricruz
Noguez Imm, Ramsés
Hernández Godínez, Nicole Marilú
Bautista Cortes, Ana María
López Escalante, Dayana Deyanira
Liedtke, Wolfgang
Martínez Torres, Atáulfo
Concha, Luis
Thébault, Stéphanie
TRPV4 inhibition prevents increased water diffusion and blood-retina barrier breakdown in the retina of streptozotocin-induced diabetic mice
title TRPV4 inhibition prevents increased water diffusion and blood-retina barrier breakdown in the retina of streptozotocin-induced diabetic mice
title_full TRPV4 inhibition prevents increased water diffusion and blood-retina barrier breakdown in the retina of streptozotocin-induced diabetic mice
title_fullStr TRPV4 inhibition prevents increased water diffusion and blood-retina barrier breakdown in the retina of streptozotocin-induced diabetic mice
title_full_unstemmed TRPV4 inhibition prevents increased water diffusion and blood-retina barrier breakdown in the retina of streptozotocin-induced diabetic mice
title_short TRPV4 inhibition prevents increased water diffusion and blood-retina barrier breakdown in the retina of streptozotocin-induced diabetic mice
title_sort trpv4 inhibition prevents increased water diffusion and blood-retina barrier breakdown in the retina of streptozotocin-induced diabetic mice
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6497373/
https://www.ncbi.nlm.nih.gov/pubmed/31048895
http://dx.doi.org/10.1371/journal.pone.0212158
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