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Theaflavin protects against oxalate calcium-induced kidney oxidative stress injury via upregulation of SIRT1

Renal tubular cell injury induced by calcium oxalate (CaOx) is a critical initial stage of kidney stone formation. Theaflavin (TF) has been known for its strong antioxidative capacity; however, the effect and molecular mechanism of TF against oxidative stress and injury caused by CaOx crystal exposu...

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Autores principales: Ye, Tao, Yang, Xiaoqi, Liu, Haoran, Lv, Peng, Lu, Hongyan, Jiang, Kehua, Peng, Ejun, Ye, Zhangqun, Chen, Zhiqiang, Tang, Kun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8040307/
https://www.ncbi.nlm.nih.gov/pubmed/33867828
http://dx.doi.org/10.7150/ijbs.57160
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author Ye, Tao
Yang, Xiaoqi
Liu, Haoran
Lv, Peng
Lu, Hongyan
Jiang, Kehua
Peng, Ejun
Ye, Zhangqun
Chen, Zhiqiang
Tang, Kun
author_facet Ye, Tao
Yang, Xiaoqi
Liu, Haoran
Lv, Peng
Lu, Hongyan
Jiang, Kehua
Peng, Ejun
Ye, Zhangqun
Chen, Zhiqiang
Tang, Kun
author_sort Ye, Tao
collection PubMed
description Renal tubular cell injury induced by calcium oxalate (CaOx) is a critical initial stage of kidney stone formation. Theaflavin (TF) has been known for its strong antioxidative capacity; however, the effect and molecular mechanism of TF against oxidative stress and injury caused by CaOx crystal exposure in kidneys remains unknown. To explore the potential function of TF on renal crystal deposition and its underlying mechanisms, experiments were conducted using a CaOx nephrocalcinosis mouse model established by glyoxylate intraperitoneal injection, and HK-2 cells were subjected to calcium oxalate monohydrate (COM) crystals, with or without the treatment of TF. We discovered that TF treatment remarkably protected against CaOx-induced kidney oxidative stress injury and reduced crystal deposition. Additionally, miR-128-3p expression was decreased and negatively correlated with SIRT1 level in mouse CaOx nephrocalcinosis model following TF treatment. Moreover, TF suppressed miR-128-3p expression and further abolished its inhibition on SIRT1 to attenuate oxidative stress in vitro. Mechanistically, TF interacted with miR-128-3p and suppressed its expression. In addition, miR-128-3p inhibited SIRT1 expression by directly binding its 3'-untranslated region (UTR). Furthermore, miR-128-3p activation partially reversed the acceerative effect of TF on SIRT1 expression. Taken together, TF exhibits a strong nephroprotective ability to suppress CaOx-induced kidney damage through the recovery of the antioxidant defense system regulated by miR-128-3p/SIRT1 axis. These findings provide novel insights for the prevention and treatment of renal calculus.
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spelling pubmed-80403072021-04-16 Theaflavin protects against oxalate calcium-induced kidney oxidative stress injury via upregulation of SIRT1 Ye, Tao Yang, Xiaoqi Liu, Haoran Lv, Peng Lu, Hongyan Jiang, Kehua Peng, Ejun Ye, Zhangqun Chen, Zhiqiang Tang, Kun Int J Biol Sci Research Paper Renal tubular cell injury induced by calcium oxalate (CaOx) is a critical initial stage of kidney stone formation. Theaflavin (TF) has been known for its strong antioxidative capacity; however, the effect and molecular mechanism of TF against oxidative stress and injury caused by CaOx crystal exposure in kidneys remains unknown. To explore the potential function of TF on renal crystal deposition and its underlying mechanisms, experiments were conducted using a CaOx nephrocalcinosis mouse model established by glyoxylate intraperitoneal injection, and HK-2 cells were subjected to calcium oxalate monohydrate (COM) crystals, with or without the treatment of TF. We discovered that TF treatment remarkably protected against CaOx-induced kidney oxidative stress injury and reduced crystal deposition. Additionally, miR-128-3p expression was decreased and negatively correlated with SIRT1 level in mouse CaOx nephrocalcinosis model following TF treatment. Moreover, TF suppressed miR-128-3p expression and further abolished its inhibition on SIRT1 to attenuate oxidative stress in vitro. Mechanistically, TF interacted with miR-128-3p and suppressed its expression. In addition, miR-128-3p inhibited SIRT1 expression by directly binding its 3'-untranslated region (UTR). Furthermore, miR-128-3p activation partially reversed the acceerative effect of TF on SIRT1 expression. Taken together, TF exhibits a strong nephroprotective ability to suppress CaOx-induced kidney damage through the recovery of the antioxidant defense system regulated by miR-128-3p/SIRT1 axis. These findings provide novel insights for the prevention and treatment of renal calculus. Ivyspring International Publisher 2021-03-02 /pmc/articles/PMC8040307/ /pubmed/33867828 http://dx.doi.org/10.7150/ijbs.57160 Text en © The author(s) https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/). See http://ivyspring.com/terms for full terms and conditions.
spellingShingle Research Paper
Ye, Tao
Yang, Xiaoqi
Liu, Haoran
Lv, Peng
Lu, Hongyan
Jiang, Kehua
Peng, Ejun
Ye, Zhangqun
Chen, Zhiqiang
Tang, Kun
Theaflavin protects against oxalate calcium-induced kidney oxidative stress injury via upregulation of SIRT1
title Theaflavin protects against oxalate calcium-induced kidney oxidative stress injury via upregulation of SIRT1
title_full Theaflavin protects against oxalate calcium-induced kidney oxidative stress injury via upregulation of SIRT1
title_fullStr Theaflavin protects against oxalate calcium-induced kidney oxidative stress injury via upregulation of SIRT1
title_full_unstemmed Theaflavin protects against oxalate calcium-induced kidney oxidative stress injury via upregulation of SIRT1
title_short Theaflavin protects against oxalate calcium-induced kidney oxidative stress injury via upregulation of SIRT1
title_sort theaflavin protects against oxalate calcium-induced kidney oxidative stress injury via upregulation of sirt1
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8040307/
https://www.ncbi.nlm.nih.gov/pubmed/33867828
http://dx.doi.org/10.7150/ijbs.57160
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