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m6A eraser FTO modulates autophagy by targeting SQSTM1/P62 in the prevention of canagliflozin against renal fibrosis

The dysregulation of autophagy contributes to renal fibrosis. N6-Methyladenosine (m6A) RNA modification is a critical mediator of autophagy. Our previous studies have reported that the disorder of the PPARα/fatty acid oxidation (FAO) axis in renal tubular cells is suppressed by STAT6, which is invol...

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Autores principales: Yang, Youjing, Li, Qianmin, Ling, Yi, Leng, Linxin, Ma, Yu, Xue, Lian, Lu, Guoyuan, Ding, Yue, Li, Jianzhong, Tao, Shasha
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9845768/
https://www.ncbi.nlm.nih.gov/pubmed/36685533
http://dx.doi.org/10.3389/fimmu.2022.1094556
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author Yang, Youjing
Li, Qianmin
Ling, Yi
Leng, Linxin
Ma, Yu
Xue, Lian
Lu, Guoyuan
Ding, Yue
Li, Jianzhong
Tao, Shasha
author_facet Yang, Youjing
Li, Qianmin
Ling, Yi
Leng, Linxin
Ma, Yu
Xue, Lian
Lu, Guoyuan
Ding, Yue
Li, Jianzhong
Tao, Shasha
author_sort Yang, Youjing
collection PubMed
description The dysregulation of autophagy contributes to renal fibrosis. N6-Methyladenosine (m6A) RNA modification is a critical mediator of autophagy. Our previous studies have reported that the disorder of the PPARα/fatty acid oxidation (FAO) axis in renal tubular cells is suppressed by STAT6, which is involved in the regulation of renal fibrotic processes. Here, we found that canagliflozin significantly upregulates SQSTM1/P62, promoting PPARα-mediated FAO by inducing autophagy-dependent STAT6 degradation both in TGF-β1-treated HK2 cells and in unilateral ureteral occlusion (UUO) and ischemia–reperfusion (I/R) renal fibrosis mouse models. Knockdown of P62/SQSTM1 led to the impairment autophagic flux and the dysregulation of the STAT6/PPARα axis, which was confirmed by SQSTM1/P62(cKO) mice with UUO treatment along with bioinformatics analysis. Furthermore, SQSTM1/P62 deficiency in renal tubular cells inhibited canagliflozin’s effects that prevent FAO disorder in renal tubular cells and renal fibrosis. Mechanistically, the level of m6A eraser FTO, which interacted with SQSTM1 mRNA, decreased in the renal tubular cells both in vitro and in vivo after canagliflozin administration. Decrease in FTO stabilized SQSTM1 mRNA, which induced autophagosome formation. Collectively, this study uncovered a previously unrecognized function of canagliflozin in FTO in the autophagy modulation through the regulation of SQSTM1 mRNA stability in the renal tubular STAT6/PPARα/FAO axis and renal fibrosis.
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spelling pubmed-98457682023-01-19 m6A eraser FTO modulates autophagy by targeting SQSTM1/P62 in the prevention of canagliflozin against renal fibrosis Yang, Youjing Li, Qianmin Ling, Yi Leng, Linxin Ma, Yu Xue, Lian Lu, Guoyuan Ding, Yue Li, Jianzhong Tao, Shasha Front Immunol Immunology The dysregulation of autophagy contributes to renal fibrosis. N6-Methyladenosine (m6A) RNA modification is a critical mediator of autophagy. Our previous studies have reported that the disorder of the PPARα/fatty acid oxidation (FAO) axis in renal tubular cells is suppressed by STAT6, which is involved in the regulation of renal fibrotic processes. Here, we found that canagliflozin significantly upregulates SQSTM1/P62, promoting PPARα-mediated FAO by inducing autophagy-dependent STAT6 degradation both in TGF-β1-treated HK2 cells and in unilateral ureteral occlusion (UUO) and ischemia–reperfusion (I/R) renal fibrosis mouse models. Knockdown of P62/SQSTM1 led to the impairment autophagic flux and the dysregulation of the STAT6/PPARα axis, which was confirmed by SQSTM1/P62(cKO) mice with UUO treatment along with bioinformatics analysis. Furthermore, SQSTM1/P62 deficiency in renal tubular cells inhibited canagliflozin’s effects that prevent FAO disorder in renal tubular cells and renal fibrosis. Mechanistically, the level of m6A eraser FTO, which interacted with SQSTM1 mRNA, decreased in the renal tubular cells both in vitro and in vivo after canagliflozin administration. Decrease in FTO stabilized SQSTM1 mRNA, which induced autophagosome formation. Collectively, this study uncovered a previously unrecognized function of canagliflozin in FTO in the autophagy modulation through the regulation of SQSTM1 mRNA stability in the renal tubular STAT6/PPARα/FAO axis and renal fibrosis. Frontiers Media S.A. 2023-01-04 /pmc/articles/PMC9845768/ /pubmed/36685533 http://dx.doi.org/10.3389/fimmu.2022.1094556 Text en Copyright © 2023 Yang, Li, Ling, Leng, Ma, Xue, Lu, Ding, Li and Tao https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Immunology
Yang, Youjing
Li, Qianmin
Ling, Yi
Leng, Linxin
Ma, Yu
Xue, Lian
Lu, Guoyuan
Ding, Yue
Li, Jianzhong
Tao, Shasha
m6A eraser FTO modulates autophagy by targeting SQSTM1/P62 in the prevention of canagliflozin against renal fibrosis
title m6A eraser FTO modulates autophagy by targeting SQSTM1/P62 in the prevention of canagliflozin against renal fibrosis
title_full m6A eraser FTO modulates autophagy by targeting SQSTM1/P62 in the prevention of canagliflozin against renal fibrosis
title_fullStr m6A eraser FTO modulates autophagy by targeting SQSTM1/P62 in the prevention of canagliflozin against renal fibrosis
title_full_unstemmed m6A eraser FTO modulates autophagy by targeting SQSTM1/P62 in the prevention of canagliflozin against renal fibrosis
title_short m6A eraser FTO modulates autophagy by targeting SQSTM1/P62 in the prevention of canagliflozin against renal fibrosis
title_sort m6a eraser fto modulates autophagy by targeting sqstm1/p62 in the prevention of canagliflozin against renal fibrosis
topic Immunology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9845768/
https://www.ncbi.nlm.nih.gov/pubmed/36685533
http://dx.doi.org/10.3389/fimmu.2022.1094556
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