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Published in: Journal of Cardiovascular Translational Research 5/2020

01-10-2020 | Glibenclamide | Original Article

Role of NLRP3-Inflammasome/Caspase-1/Galectin-3 Pathway on Atrial Remodeling in Diabetic Rabbits

Authors: Xiaohan Wu, Yang Liu, Daimiao Tu, Xianjian Liu, Shulin Niu, Ya Suo, Tong Liu, Guangping Li, Changle Liu

Published in: Journal of Cardiovascular Translational Research | Issue 5/2020

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Abstract

Both diabetes mellitus (DM) and atrial fibrillation (AF) are usually associated with enhanced inflammatory response. The effect of the “NACHT, LRR and PYD domain containing protein 3” (NLRP3)-inflammasome/caspase-1/galectin-3 pathway and the potential benefits of NLRP3-inflammasome inhibitor glibenclamide (GLB) on atrial remodeling in the DM state are still unknown. Here, we demonstrated that higher AF inducibility and conduction inhomogeneity, slower epicardial conduction velocity, and increased amount of fibrosis in diabetic rabbits as against normal ones were markedly reduced by GLB. Atrial caspase-1 activity as well as serum IL-1β and IL-18 levels were elevated in diabetic animals but suppressed by GLB. Moreover, GLB decreased the DM-induced protein expression enhancement of NLRP3, Gal-3, TGF-β1, and CaV1.2 according to western blot analysis. Summarily, our findings indicate that the NLRP3-inflammasome/caspase-1/Gal-3 signaling pathway is related to the pathogenesis of AF in the diabetic state. NLRP3-inflammasome inhibitor GLB prevents AF inducibility and moderates atrial structural remodeling in DM.
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Metadata
Title
Role of NLRP3-Inflammasome/Caspase-1/Galectin-3 Pathway on Atrial Remodeling in Diabetic Rabbits
Authors
Xiaohan Wu
Yang Liu
Daimiao Tu
Xianjian Liu
Shulin Niu
Ya Suo
Tong Liu
Guangping Li
Changle Liu
Publication date
01-10-2020
Publisher
Springer US
Published in
Journal of Cardiovascular Translational Research / Issue 5/2020
Print ISSN: 1937-5387
Electronic ISSN: 1937-5395
DOI
https://doi.org/10.1007/s12265-020-09965-8

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