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Quercetin targets VCAM1 to prevent diabetic cerebrovascular endothelial cell injury

INTRODUCTION: Endothelial cells play important roles in neurodegenerative diseases caused by diabetes, therefore, we aimed at investigating the mechanisms through which endothelial cells are involved in diabetes development. METHODS: Single cell analysis was performed to identify the major endotheli...

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Autores principales: Huang, Jiebin, Lin, Weiwei, Sun, Yuxing, Wang, Qian, He, Shidian, Han, Zhihua, Lu, Lixing, Kang, Xueran, Chen, Yisheng, Guo, Haoran, Cui, Zhiyong, Sun, Chenyu, Go, Ken, Wu, Junyi, Yao, Mengxuan, Cao, Mingfeng, Xu, Yuzhen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9475220/
https://www.ncbi.nlm.nih.gov/pubmed/36118693
http://dx.doi.org/10.3389/fnagi.2022.944195
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author Huang, Jiebin
Lin, Weiwei
Sun, Yuxing
Wang, Qian
He, Shidian
Han, Zhihua
Lu, Lixing
Kang, Xueran
Chen, Yisheng
Guo, Haoran
Cui, Zhiyong
Sun, Chenyu
Go, Ken
Wu, Junyi
Yao, Mengxuan
Cao, Mingfeng
Xu, Yuzhen
author_facet Huang, Jiebin
Lin, Weiwei
Sun, Yuxing
Wang, Qian
He, Shidian
Han, Zhihua
Lu, Lixing
Kang, Xueran
Chen, Yisheng
Guo, Haoran
Cui, Zhiyong
Sun, Chenyu
Go, Ken
Wu, Junyi
Yao, Mengxuan
Cao, Mingfeng
Xu, Yuzhen
author_sort Huang, Jiebin
collection PubMed
description INTRODUCTION: Endothelial cells play important roles in neurodegenerative diseases caused by diabetes, therefore, we aimed at investigating the mechanisms through which endothelial cells are involved in diabetes development. METHODS: Single cell analysis was performed to identify the major endothelial cell subtypes in cardiovascular tissues that are involved in diabetes development. A cell-cell communication approach was then used to identify ligand-receptor interaction pairs between these cell types. Differential expression analysis between the two experimental groups [standard chow diet group and diabetogenic diet with cholesterol (DDC) group] was used to identify diabetes-related differentially expressed genes (DEGs). The upregulated genes were used to identify candidate ligands or receptors, as well as the corresponding cell types. Cell trajectory inference was performed to identify the stage of cell development and changes in expression of candidate ligands or receptors during cell development. Gene set enrichment analysis (GSEA) was conducted to investigate the biological functions of genes of purpose. Finally, molecular dynamics simulations (MDSs) were used to predict potential drugs with the ability to target the proteins of purpose. RESULTS: Seven cell types, including five endothelial cell subtypes (EC_1, EC_2, EC_3, EC_4, and EC_EndMT), were identified from endothelial cell-enriched single cell samples from the heart and aorta of mice. Cell-cell communication analysis revealed the potential ligand-receptor interactions between these cell types while five important ligand-receptor-associated genes, including Fn1, Vcam1, Fbn1, Col4a1, and Col4a2, were established by differential expression analysis. Among them, Vcam1 is mainly expressed in EC_EndMT and is involved in interactions between EC_EndMT and other cells. Cell trajectory extrapolation analysis revealed a shift from EC_2/EC_4 to EC_EndMT and a shift from EC_EndMT to EC_3/EC_1 during the progression of diabetes. GSEA analysis revealed that upregulation of VCAM1 may have inhibitory effects on cell growth and energy metabolism. CONCLUSION: EC_EndMT subtypes have a complex role in neurodegenerative diseases caused by diabetes. Through mechanisms involved in cell-cell communication, Vcam1 may play an important role in dysregulation of biological functions of EC_ EndMT. Molecular docking results of the quercetin-VCAM1 complex suggest that quercetin may be an effective drug for targeting this protein.
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spelling pubmed-94752202022-09-16 Quercetin targets VCAM1 to prevent diabetic cerebrovascular endothelial cell injury Huang, Jiebin Lin, Weiwei Sun, Yuxing Wang, Qian He, Shidian Han, Zhihua Lu, Lixing Kang, Xueran Chen, Yisheng Guo, Haoran Cui, Zhiyong Sun, Chenyu Go, Ken Wu, Junyi Yao, Mengxuan Cao, Mingfeng Xu, Yuzhen Front Aging Neurosci Neuroscience INTRODUCTION: Endothelial cells play important roles in neurodegenerative diseases caused by diabetes, therefore, we aimed at investigating the mechanisms through which endothelial cells are involved in diabetes development. METHODS: Single cell analysis was performed to identify the major endothelial cell subtypes in cardiovascular tissues that are involved in diabetes development. A cell-cell communication approach was then used to identify ligand-receptor interaction pairs between these cell types. Differential expression analysis between the two experimental groups [standard chow diet group and diabetogenic diet with cholesterol (DDC) group] was used to identify diabetes-related differentially expressed genes (DEGs). The upregulated genes were used to identify candidate ligands or receptors, as well as the corresponding cell types. Cell trajectory inference was performed to identify the stage of cell development and changes in expression of candidate ligands or receptors during cell development. Gene set enrichment analysis (GSEA) was conducted to investigate the biological functions of genes of purpose. Finally, molecular dynamics simulations (MDSs) were used to predict potential drugs with the ability to target the proteins of purpose. RESULTS: Seven cell types, including five endothelial cell subtypes (EC_1, EC_2, EC_3, EC_4, and EC_EndMT), were identified from endothelial cell-enriched single cell samples from the heart and aorta of mice. Cell-cell communication analysis revealed the potential ligand-receptor interactions between these cell types while five important ligand-receptor-associated genes, including Fn1, Vcam1, Fbn1, Col4a1, and Col4a2, were established by differential expression analysis. Among them, Vcam1 is mainly expressed in EC_EndMT and is involved in interactions between EC_EndMT and other cells. Cell trajectory extrapolation analysis revealed a shift from EC_2/EC_4 to EC_EndMT and a shift from EC_EndMT to EC_3/EC_1 during the progression of diabetes. GSEA analysis revealed that upregulation of VCAM1 may have inhibitory effects on cell growth and energy metabolism. CONCLUSION: EC_EndMT subtypes have a complex role in neurodegenerative diseases caused by diabetes. Through mechanisms involved in cell-cell communication, Vcam1 may play an important role in dysregulation of biological functions of EC_ EndMT. Molecular docking results of the quercetin-VCAM1 complex suggest that quercetin may be an effective drug for targeting this protein. Frontiers Media S.A. 2022-09-01 /pmc/articles/PMC9475220/ /pubmed/36118693 http://dx.doi.org/10.3389/fnagi.2022.944195 Text en Copyright © 2022 Huang, Lin, Sun, Wang, He, Han, Lu, Kang, Chen, Guo, Cui, Sun, Go, Wu, Yao, Cao and Xu. 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 Neuroscience
Huang, Jiebin
Lin, Weiwei
Sun, Yuxing
Wang, Qian
He, Shidian
Han, Zhihua
Lu, Lixing
Kang, Xueran
Chen, Yisheng
Guo, Haoran
Cui, Zhiyong
Sun, Chenyu
Go, Ken
Wu, Junyi
Yao, Mengxuan
Cao, Mingfeng
Xu, Yuzhen
Quercetin targets VCAM1 to prevent diabetic cerebrovascular endothelial cell injury
title Quercetin targets VCAM1 to prevent diabetic cerebrovascular endothelial cell injury
title_full Quercetin targets VCAM1 to prevent diabetic cerebrovascular endothelial cell injury
title_fullStr Quercetin targets VCAM1 to prevent diabetic cerebrovascular endothelial cell injury
title_full_unstemmed Quercetin targets VCAM1 to prevent diabetic cerebrovascular endothelial cell injury
title_short Quercetin targets VCAM1 to prevent diabetic cerebrovascular endothelial cell injury
title_sort quercetin targets vcam1 to prevent diabetic cerebrovascular endothelial cell injury
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9475220/
https://www.ncbi.nlm.nih.gov/pubmed/36118693
http://dx.doi.org/10.3389/fnagi.2022.944195
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