Advanced glycation end (AGE) product modification of laminin downregulates Kir4.1 in retinal Müller cells.

Diabetic retinopathy (DR) is a major cause of adult blindness. Retinal Müller cells maintain water homeostasis and potassium concentration via inwardly rectifying Kir4.1 channels. Accumulation of advanced glycation end products (AGEs) is a major pathologic event in DR. While diabetes leads to a decr...

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Main Authors: Kayla Thompson, Jonathan Chen, Qianyi Luo, Yucheng Xiao, Theodore R Cummins, Ashay D Bhatwadekar
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2018-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC5825079?pdf=render
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spelling doaj-503ef3f8207e4bfe81d86e714c7022fa2020-11-25T02:05:28ZengPublic Library of Science (PLoS)PLoS ONE1932-62032018-01-01132e019328010.1371/journal.pone.0193280Advanced glycation end (AGE) product modification of laminin downregulates Kir4.1 in retinal Müller cells.Kayla ThompsonJonathan ChenQianyi LuoYucheng XiaoTheodore R CumminsAshay D BhatwadekarDiabetic retinopathy (DR) is a major cause of adult blindness. Retinal Müller cells maintain water homeostasis and potassium concentration via inwardly rectifying Kir4.1 channels. Accumulation of advanced glycation end products (AGEs) is a major pathologic event in DR. While diabetes leads to a decrease in the Kir4.1 channels, it remains unknown whether AGEs-linked to the basement membrane (BM) affect normal Kir4.1 channels. For this study, we hypothesized that AGE-modification of laminin is detrimental to Kir4.1 channels, therefore, disrupting Müller cell function. The AGE-modified laminin-coated substrates were prepared by incubating Petri-dishes with laminin and methylglyoxal for seven days. The rat Müller cells (rMC-1) were propagated on AGE-modified laminin, and Kir4.1 expression and function were evaluated. Quantification of AGEs using ELISA revealed a dose-dependent increase in methylglyoxal-hydro-imidazolone adducts. The rMC-1 propagated on AGE-modified laminin demonstrated a decrease in Kir4.1 levels in immunofluorescence and western blot studies and a decrease in the Kir4.1 channel function. Kir4.1 decrease on AGE-modified laminin resulted in a disorganization of an actin cytoskeleton and disruption of α-dystroglycan-syntrophin-dystrophin complexes. Our studies suggest that AGE-modification of laminin is detrimental to Kir4.1 channels. By studying the role of AGEs in Kir4.1 channels we have identified a novel mechanism of Müller cell dysfunction and its subsequent involvement in DR.http://europepmc.org/articles/PMC5825079?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Kayla Thompson
Jonathan Chen
Qianyi Luo
Yucheng Xiao
Theodore R Cummins
Ashay D Bhatwadekar
spellingShingle Kayla Thompson
Jonathan Chen
Qianyi Luo
Yucheng Xiao
Theodore R Cummins
Ashay D Bhatwadekar
Advanced glycation end (AGE) product modification of laminin downregulates Kir4.1 in retinal Müller cells.
PLoS ONE
author_facet Kayla Thompson
Jonathan Chen
Qianyi Luo
Yucheng Xiao
Theodore R Cummins
Ashay D Bhatwadekar
author_sort Kayla Thompson
title Advanced glycation end (AGE) product modification of laminin downregulates Kir4.1 in retinal Müller cells.
title_short Advanced glycation end (AGE) product modification of laminin downregulates Kir4.1 in retinal Müller cells.
title_full Advanced glycation end (AGE) product modification of laminin downregulates Kir4.1 in retinal Müller cells.
title_fullStr Advanced glycation end (AGE) product modification of laminin downregulates Kir4.1 in retinal Müller cells.
title_full_unstemmed Advanced glycation end (AGE) product modification of laminin downregulates Kir4.1 in retinal Müller cells.
title_sort advanced glycation end (age) product modification of laminin downregulates kir4.1 in retinal müller cells.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2018-01-01
description Diabetic retinopathy (DR) is a major cause of adult blindness. Retinal Müller cells maintain water homeostasis and potassium concentration via inwardly rectifying Kir4.1 channels. Accumulation of advanced glycation end products (AGEs) is a major pathologic event in DR. While diabetes leads to a decrease in the Kir4.1 channels, it remains unknown whether AGEs-linked to the basement membrane (BM) affect normal Kir4.1 channels. For this study, we hypothesized that AGE-modification of laminin is detrimental to Kir4.1 channels, therefore, disrupting Müller cell function. The AGE-modified laminin-coated substrates were prepared by incubating Petri-dishes with laminin and methylglyoxal for seven days. The rat Müller cells (rMC-1) were propagated on AGE-modified laminin, and Kir4.1 expression and function were evaluated. Quantification of AGEs using ELISA revealed a dose-dependent increase in methylglyoxal-hydro-imidazolone adducts. The rMC-1 propagated on AGE-modified laminin demonstrated a decrease in Kir4.1 levels in immunofluorescence and western blot studies and a decrease in the Kir4.1 channel function. Kir4.1 decrease on AGE-modified laminin resulted in a disorganization of an actin cytoskeleton and disruption of α-dystroglycan-syntrophin-dystrophin complexes. Our studies suggest that AGE-modification of laminin is detrimental to Kir4.1 channels. By studying the role of AGEs in Kir4.1 channels we have identified a novel mechanism of Müller cell dysfunction and its subsequent involvement in DR.
url http://europepmc.org/articles/PMC5825079?pdf=render
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