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  4. Tnf-Alpha Plus Il-1 Beta Induces Opposite Regulation Of Cx43 Hemichannels And Gap Junctions In Mesangial Cells Through A Rhoa/Rock-Dependent Pathway
 
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Tnf-Alpha Plus Il-1 Beta Induces Opposite Regulation Of Cx43 Hemichannels And Gap Junctions In Mesangial Cells Through A Rhoa/Rock-Dependent Pathway

Date Issued
2022-09-03
Author(s)
Saez, Juan  
Facultad de Ciencias  
Claudia Lucero
Lucas Marambio-Ruiz
Javiera Balmazabal
Juan Prieto-Villalobos
Marcelo León
Paola Fernández
Juan Orellana
Victoria Velarde
Gonzalo I. Gómez
DOI
10.3390/ijms231710097
WoS ID
WOS:000851150600001
Abstract
Connexin 43 (Cx43) is expressed in kidney tissue where it forms hemichannels and gap junction channels. However, the possible functional relationship between these membrane channels and their role in damaged renal cells remains unknown. Here, analysis of ethidium uptake and thiobarbituric acid reactive species revealed that treatment with TNF-α plus IL-1β increases Cx43 hemichannel activity and oxidative stress in MES-13 cells (a cell line derived from mesangial cells), and in primary mesangial cells. The latter was also accompanied by a reduction in gap junctional communication, whereas Western blotting assays showed a progressive increase in phosphorylated MYPT (a target of RhoA/ROCK) and Cx43 upon TNF-α/IL-1β treatment. Additionally, inhibition of RhoA/ROCK strongly antagonized the TNF-α/IL-1β-induced activation of Cx43 hemichannels and reduction in gap junctional coupling. We propose that activation of Cx43 hemichannels and inhibition of cell–cell coupling during pro-inflammatory conditions could contribute to oxidative stress and damage of mesangial cells via the RhoA/ROCK pathway.
Subjects

Biochemistry And Mole...

Chemistry, Multidisci...

OCDE Subjects

Natural Sciences::Bio...

Quartile (Date Issued)
Q2
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