Cargando…

m6A Modification Mediates Endothelial Cell Responses to Oxidative Stress in Vascular Aging Induced by Low Fluid Shear Stress

N6-methyladenosine (m6A) is one of the most prevalent, abundant, and internal transcriptional modification and plays essential roles in diverse cellular and physiological processes. Low fluid shear stress (FSS) is a key pathological factor for many cardiovascular diseases, which directly forces on t...

Descripción completa

Detalles Bibliográficos
Autores principales: Xu, Zhijue, Qiu, Peng, Jiang, Yihong, Hu, Jiateng, Wu, Zhaoyu, Lei, Jiahao, Pu, Hongji, Huang, Qun, Wang, Xin, Li, Bo, Ye, Kaichuang, Lu, Xinwu, Liu, Guang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9897929/
https://www.ncbi.nlm.nih.gov/pubmed/36743697
http://dx.doi.org/10.1155/2023/8134027
_version_ 1784882346380492800
author Xu, Zhijue
Qiu, Peng
Jiang, Yihong
Hu, Jiateng
Wu, Zhaoyu
Lei, Jiahao
Pu, Hongji
Huang, Qun
Wang, Xin
Li, Bo
Ye, Kaichuang
Lu, Xinwu
Liu, Guang
author_facet Xu, Zhijue
Qiu, Peng
Jiang, Yihong
Hu, Jiateng
Wu, Zhaoyu
Lei, Jiahao
Pu, Hongji
Huang, Qun
Wang, Xin
Li, Bo
Ye, Kaichuang
Lu, Xinwu
Liu, Guang
author_sort Xu, Zhijue
collection PubMed
description N6-methyladenosine (m6A) is one of the most prevalent, abundant, and internal transcriptional modification and plays essential roles in diverse cellular and physiological processes. Low fluid shear stress (FSS) is a key pathological factor for many cardiovascular diseases, which directly forces on the endothelial cells of vessel walls. So far, the alterations and functions of m6A modifications in vascular endothelial cells at the low FSS are still unknown. Herein, we performed the transcriptome-wide m6A modification profiling of HUVECs at different FSS. We found that the m6A modifications were altered earlier and more sensitive than mRNA expressions in response to FSS. The low FSS increased the m6A modifications at CDS region but decreased the m6A modifications at 3′ UTR region and regulated both the mRNA expressions and m6A modifications of the m6A regulators, such as the RBM15 and EIF3A. Functional annotations enriched by the hypermethylated and hypomethylated genes at low FSS revealed that the m6A modifications were clustered in the aging-related signaling pathways of mTOR, PI3K-AKT, insulin, and ERRB and in the oxidative stress-related transcriptional factors, such as HIF1A, NFAT5, and NFE2L2. Our study provided a pilot view of m6A modifications in vascular endothelial cells at low FSS and revealed that the m6A modifications driven by low FSS mediated the cellular responses to oxidative stress and cell aging, which suggested that the m6A modifications could be the potential targets for inhibiting vascular aging at pathological low FSS.
format Online
Article
Text
id pubmed-9897929
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Hindawi
record_format MEDLINE/PubMed
spelling pubmed-98979292023-02-04 m6A Modification Mediates Endothelial Cell Responses to Oxidative Stress in Vascular Aging Induced by Low Fluid Shear Stress Xu, Zhijue Qiu, Peng Jiang, Yihong Hu, Jiateng Wu, Zhaoyu Lei, Jiahao Pu, Hongji Huang, Qun Wang, Xin Li, Bo Ye, Kaichuang Lu, Xinwu Liu, Guang Oxid Med Cell Longev Research Article N6-methyladenosine (m6A) is one of the most prevalent, abundant, and internal transcriptional modification and plays essential roles in diverse cellular and physiological processes. Low fluid shear stress (FSS) is a key pathological factor for many cardiovascular diseases, which directly forces on the endothelial cells of vessel walls. So far, the alterations and functions of m6A modifications in vascular endothelial cells at the low FSS are still unknown. Herein, we performed the transcriptome-wide m6A modification profiling of HUVECs at different FSS. We found that the m6A modifications were altered earlier and more sensitive than mRNA expressions in response to FSS. The low FSS increased the m6A modifications at CDS region but decreased the m6A modifications at 3′ UTR region and regulated both the mRNA expressions and m6A modifications of the m6A regulators, such as the RBM15 and EIF3A. Functional annotations enriched by the hypermethylated and hypomethylated genes at low FSS revealed that the m6A modifications were clustered in the aging-related signaling pathways of mTOR, PI3K-AKT, insulin, and ERRB and in the oxidative stress-related transcriptional factors, such as HIF1A, NFAT5, and NFE2L2. Our study provided a pilot view of m6A modifications in vascular endothelial cells at low FSS and revealed that the m6A modifications driven by low FSS mediated the cellular responses to oxidative stress and cell aging, which suggested that the m6A modifications could be the potential targets for inhibiting vascular aging at pathological low FSS. Hindawi 2023-01-27 /pmc/articles/PMC9897929/ /pubmed/36743697 http://dx.doi.org/10.1155/2023/8134027 Text en Copyright © 2023 Zhijue Xu et al. https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Xu, Zhijue
Qiu, Peng
Jiang, Yihong
Hu, Jiateng
Wu, Zhaoyu
Lei, Jiahao
Pu, Hongji
Huang, Qun
Wang, Xin
Li, Bo
Ye, Kaichuang
Lu, Xinwu
Liu, Guang
m6A Modification Mediates Endothelial Cell Responses to Oxidative Stress in Vascular Aging Induced by Low Fluid Shear Stress
title m6A Modification Mediates Endothelial Cell Responses to Oxidative Stress in Vascular Aging Induced by Low Fluid Shear Stress
title_full m6A Modification Mediates Endothelial Cell Responses to Oxidative Stress in Vascular Aging Induced by Low Fluid Shear Stress
title_fullStr m6A Modification Mediates Endothelial Cell Responses to Oxidative Stress in Vascular Aging Induced by Low Fluid Shear Stress
title_full_unstemmed m6A Modification Mediates Endothelial Cell Responses to Oxidative Stress in Vascular Aging Induced by Low Fluid Shear Stress
title_short m6A Modification Mediates Endothelial Cell Responses to Oxidative Stress in Vascular Aging Induced by Low Fluid Shear Stress
title_sort m6a modification mediates endothelial cell responses to oxidative stress in vascular aging induced by low fluid shear stress
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9897929/
https://www.ncbi.nlm.nih.gov/pubmed/36743697
http://dx.doi.org/10.1155/2023/8134027
work_keys_str_mv AT xuzhijue m6amodificationmediatesendothelialcellresponsestooxidativestressinvascularaginginducedbylowfluidshearstress
AT qiupeng m6amodificationmediatesendothelialcellresponsestooxidativestressinvascularaginginducedbylowfluidshearstress
AT jiangyihong m6amodificationmediatesendothelialcellresponsestooxidativestressinvascularaginginducedbylowfluidshearstress
AT hujiateng m6amodificationmediatesendothelialcellresponsestooxidativestressinvascularaginginducedbylowfluidshearstress
AT wuzhaoyu m6amodificationmediatesendothelialcellresponsestooxidativestressinvascularaginginducedbylowfluidshearstress
AT leijiahao m6amodificationmediatesendothelialcellresponsestooxidativestressinvascularaginginducedbylowfluidshearstress
AT puhongji m6amodificationmediatesendothelialcellresponsestooxidativestressinvascularaginginducedbylowfluidshearstress
AT huangqun m6amodificationmediatesendothelialcellresponsestooxidativestressinvascularaginginducedbylowfluidshearstress
AT wangxin m6amodificationmediatesendothelialcellresponsestooxidativestressinvascularaginginducedbylowfluidshearstress
AT libo m6amodificationmediatesendothelialcellresponsestooxidativestressinvascularaginginducedbylowfluidshearstress
AT yekaichuang m6amodificationmediatesendothelialcellresponsestooxidativestressinvascularaginginducedbylowfluidshearstress
AT luxinwu m6amodificationmediatesendothelialcellresponsestooxidativestressinvascularaginginducedbylowfluidshearstress
AT liuguang m6amodificationmediatesendothelialcellresponsestooxidativestressinvascularaginginducedbylowfluidshearstress