Cargando…

Citronellal Attenuates Oxidative Stress–Induced Mitochondrial Damage through TRPM2/NHE1 Pathway and Effectively Inhibits Endothelial Dysfunction in Type 2 Diabetes Mellitus

In type 2 diabetes mellitus (T2DM), oxidative stress induces endothelial dysfunction (ED), which is closely related to the formation of atherosclerosis. However, there are few effective drugs to prevent and cure it. Citronellal (CT) is an aromatic active substance extracted from citronella plants. R...

Descripción completa

Detalles Bibliográficos
Autores principales: Yin, Ya-Ling, Wang, Huan-Huan, Gui, Zi-Chen, Mi, Shan, Guo, Shuang, Wang, Yue, Wang, Qian-Qian, Yue, Rui-Zhu, Lin, Lai-Biao, Fan, Jia-Xin, Zhang, Xue, Mao, Bing-Yan, Liu, Tian-Heng, Wan, Guang-Rui, Zhan, He-Qin, Zhu, Mo-Li, Jiang, Lin-Hua, Li, Peng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9686689/
https://www.ncbi.nlm.nih.gov/pubmed/36421426
http://dx.doi.org/10.3390/antiox11112241
_version_ 1784835815515357184
author Yin, Ya-Ling
Wang, Huan-Huan
Gui, Zi-Chen
Mi, Shan
Guo, Shuang
Wang, Yue
Wang, Qian-Qian
Yue, Rui-Zhu
Lin, Lai-Biao
Fan, Jia-Xin
Zhang, Xue
Mao, Bing-Yan
Liu, Tian-Heng
Wan, Guang-Rui
Zhan, He-Qin
Zhu, Mo-Li
Jiang, Lin-Hua
Li, Peng
author_facet Yin, Ya-Ling
Wang, Huan-Huan
Gui, Zi-Chen
Mi, Shan
Guo, Shuang
Wang, Yue
Wang, Qian-Qian
Yue, Rui-Zhu
Lin, Lai-Biao
Fan, Jia-Xin
Zhang, Xue
Mao, Bing-Yan
Liu, Tian-Heng
Wan, Guang-Rui
Zhan, He-Qin
Zhu, Mo-Li
Jiang, Lin-Hua
Li, Peng
author_sort Yin, Ya-Ling
collection PubMed
description In type 2 diabetes mellitus (T2DM), oxidative stress induces endothelial dysfunction (ED), which is closely related to the formation of atherosclerosis. However, there are few effective drugs to prevent and cure it. Citronellal (CT) is an aromatic active substance extracted from citronella plants. Recently, CT has been shown to prevent ED, but the underlying mechanism remains unclear. The purpose of this study was to investigate whether CT ameliorated T2DM-induced ED by inhibiting the TRPM2/NHE1 signal pathway. Transient receptor potential channel M2 (TRPM2) is a Ca(2+)-permeable cation channel activated by oxidative stress, which damages endothelial cell barrier function and further leads to ED or atherosclerosis in T2DM. The Na(+)/H(+) exchanger 1 (NHE1), a transmembrane protein, also plays an important role in ED. Whether TRPM2 and NHE1 are involved in the mechanism of CT improving ED in T2DM still needs further study. Through the evaluations of ophthalmoscope, HE and Oil red staining, vascular function, oxidative stress level, and mitochondrial membrane potential evaluation, we observed that CT not only reduced the formation of lipid deposition but also inhibited ED and suppressed oxidative stress-induced mitochondrial damage in vasculature of T2DM rats. The expressions of NHE1 and TRPM2 was up-regulated in the carotid vessels of T2DM rats; NHE1 expression was also upregulated in endothelial cells with overexpression of TRPM2, but CT reversed the up-regulation of NHE1 in vivo and in vitro. In contrast, CT had no inhibitory effect on the expression of NHE1 in TRPM2 knockout mice. Our study show that CT suppressed the expression of NHE1 and TPRM2, alleviated oxidative stress-induced mitochondrial damage, and imposed a protective effect on ED in T2DM rats.
format Online
Article
Text
id pubmed-9686689
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-96866892022-11-25 Citronellal Attenuates Oxidative Stress–Induced Mitochondrial Damage through TRPM2/NHE1 Pathway and Effectively Inhibits Endothelial Dysfunction in Type 2 Diabetes Mellitus Yin, Ya-Ling Wang, Huan-Huan Gui, Zi-Chen Mi, Shan Guo, Shuang Wang, Yue Wang, Qian-Qian Yue, Rui-Zhu Lin, Lai-Biao Fan, Jia-Xin Zhang, Xue Mao, Bing-Yan Liu, Tian-Heng Wan, Guang-Rui Zhan, He-Qin Zhu, Mo-Li Jiang, Lin-Hua Li, Peng Antioxidants (Basel) Article In type 2 diabetes mellitus (T2DM), oxidative stress induces endothelial dysfunction (ED), which is closely related to the formation of atherosclerosis. However, there are few effective drugs to prevent and cure it. Citronellal (CT) is an aromatic active substance extracted from citronella plants. Recently, CT has been shown to prevent ED, but the underlying mechanism remains unclear. The purpose of this study was to investigate whether CT ameliorated T2DM-induced ED by inhibiting the TRPM2/NHE1 signal pathway. Transient receptor potential channel M2 (TRPM2) is a Ca(2+)-permeable cation channel activated by oxidative stress, which damages endothelial cell barrier function and further leads to ED or atherosclerosis in T2DM. The Na(+)/H(+) exchanger 1 (NHE1), a transmembrane protein, also plays an important role in ED. Whether TRPM2 and NHE1 are involved in the mechanism of CT improving ED in T2DM still needs further study. Through the evaluations of ophthalmoscope, HE and Oil red staining, vascular function, oxidative stress level, and mitochondrial membrane potential evaluation, we observed that CT not only reduced the formation of lipid deposition but also inhibited ED and suppressed oxidative stress-induced mitochondrial damage in vasculature of T2DM rats. The expressions of NHE1 and TRPM2 was up-regulated in the carotid vessels of T2DM rats; NHE1 expression was also upregulated in endothelial cells with overexpression of TRPM2, but CT reversed the up-regulation of NHE1 in vivo and in vitro. In contrast, CT had no inhibitory effect on the expression of NHE1 in TRPM2 knockout mice. Our study show that CT suppressed the expression of NHE1 and TPRM2, alleviated oxidative stress-induced mitochondrial damage, and imposed a protective effect on ED in T2DM rats. MDPI 2022-11-14 /pmc/articles/PMC9686689/ /pubmed/36421426 http://dx.doi.org/10.3390/antiox11112241 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Yin, Ya-Ling
Wang, Huan-Huan
Gui, Zi-Chen
Mi, Shan
Guo, Shuang
Wang, Yue
Wang, Qian-Qian
Yue, Rui-Zhu
Lin, Lai-Biao
Fan, Jia-Xin
Zhang, Xue
Mao, Bing-Yan
Liu, Tian-Heng
Wan, Guang-Rui
Zhan, He-Qin
Zhu, Mo-Li
Jiang, Lin-Hua
Li, Peng
Citronellal Attenuates Oxidative Stress–Induced Mitochondrial Damage through TRPM2/NHE1 Pathway and Effectively Inhibits Endothelial Dysfunction in Type 2 Diabetes Mellitus
title Citronellal Attenuates Oxidative Stress–Induced Mitochondrial Damage through TRPM2/NHE1 Pathway and Effectively Inhibits Endothelial Dysfunction in Type 2 Diabetes Mellitus
title_full Citronellal Attenuates Oxidative Stress–Induced Mitochondrial Damage through TRPM2/NHE1 Pathway and Effectively Inhibits Endothelial Dysfunction in Type 2 Diabetes Mellitus
title_fullStr Citronellal Attenuates Oxidative Stress–Induced Mitochondrial Damage through TRPM2/NHE1 Pathway and Effectively Inhibits Endothelial Dysfunction in Type 2 Diabetes Mellitus
title_full_unstemmed Citronellal Attenuates Oxidative Stress–Induced Mitochondrial Damage through TRPM2/NHE1 Pathway and Effectively Inhibits Endothelial Dysfunction in Type 2 Diabetes Mellitus
title_short Citronellal Attenuates Oxidative Stress–Induced Mitochondrial Damage through TRPM2/NHE1 Pathway and Effectively Inhibits Endothelial Dysfunction in Type 2 Diabetes Mellitus
title_sort citronellal attenuates oxidative stress–induced mitochondrial damage through trpm2/nhe1 pathway and effectively inhibits endothelial dysfunction in type 2 diabetes mellitus
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9686689/
https://www.ncbi.nlm.nih.gov/pubmed/36421426
http://dx.doi.org/10.3390/antiox11112241
work_keys_str_mv AT yinyaling citronellalattenuatesoxidativestressinducedmitochondrialdamagethroughtrpm2nhe1pathwayandeffectivelyinhibitsendothelialdysfunctionintype2diabetesmellitus
AT wanghuanhuan citronellalattenuatesoxidativestressinducedmitochondrialdamagethroughtrpm2nhe1pathwayandeffectivelyinhibitsendothelialdysfunctionintype2diabetesmellitus
AT guizichen citronellalattenuatesoxidativestressinducedmitochondrialdamagethroughtrpm2nhe1pathwayandeffectivelyinhibitsendothelialdysfunctionintype2diabetesmellitus
AT mishan citronellalattenuatesoxidativestressinducedmitochondrialdamagethroughtrpm2nhe1pathwayandeffectivelyinhibitsendothelialdysfunctionintype2diabetesmellitus
AT guoshuang citronellalattenuatesoxidativestressinducedmitochondrialdamagethroughtrpm2nhe1pathwayandeffectivelyinhibitsendothelialdysfunctionintype2diabetesmellitus
AT wangyue citronellalattenuatesoxidativestressinducedmitochondrialdamagethroughtrpm2nhe1pathwayandeffectivelyinhibitsendothelialdysfunctionintype2diabetesmellitus
AT wangqianqian citronellalattenuatesoxidativestressinducedmitochondrialdamagethroughtrpm2nhe1pathwayandeffectivelyinhibitsendothelialdysfunctionintype2diabetesmellitus
AT yueruizhu citronellalattenuatesoxidativestressinducedmitochondrialdamagethroughtrpm2nhe1pathwayandeffectivelyinhibitsendothelialdysfunctionintype2diabetesmellitus
AT linlaibiao citronellalattenuatesoxidativestressinducedmitochondrialdamagethroughtrpm2nhe1pathwayandeffectivelyinhibitsendothelialdysfunctionintype2diabetesmellitus
AT fanjiaxin citronellalattenuatesoxidativestressinducedmitochondrialdamagethroughtrpm2nhe1pathwayandeffectivelyinhibitsendothelialdysfunctionintype2diabetesmellitus
AT zhangxue citronellalattenuatesoxidativestressinducedmitochondrialdamagethroughtrpm2nhe1pathwayandeffectivelyinhibitsendothelialdysfunctionintype2diabetesmellitus
AT maobingyan citronellalattenuatesoxidativestressinducedmitochondrialdamagethroughtrpm2nhe1pathwayandeffectivelyinhibitsendothelialdysfunctionintype2diabetesmellitus
AT liutianheng citronellalattenuatesoxidativestressinducedmitochondrialdamagethroughtrpm2nhe1pathwayandeffectivelyinhibitsendothelialdysfunctionintype2diabetesmellitus
AT wanguangrui citronellalattenuatesoxidativestressinducedmitochondrialdamagethroughtrpm2nhe1pathwayandeffectivelyinhibitsendothelialdysfunctionintype2diabetesmellitus
AT zhanheqin citronellalattenuatesoxidativestressinducedmitochondrialdamagethroughtrpm2nhe1pathwayandeffectivelyinhibitsendothelialdysfunctionintype2diabetesmellitus
AT zhumoli citronellalattenuatesoxidativestressinducedmitochondrialdamagethroughtrpm2nhe1pathwayandeffectivelyinhibitsendothelialdysfunctionintype2diabetesmellitus
AT jianglinhua citronellalattenuatesoxidativestressinducedmitochondrialdamagethroughtrpm2nhe1pathwayandeffectivelyinhibitsendothelialdysfunctionintype2diabetesmellitus
AT lipeng citronellalattenuatesoxidativestressinducedmitochondrialdamagethroughtrpm2nhe1pathwayandeffectivelyinhibitsendothelialdysfunctionintype2diabetesmellitus