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trans-2-Enoyl-CoA Reductase Tecr-Driven Lipid Metabolism in Endothelial Cells Protects against Transcytosis to Maintain Blood-Brain Barrier Homeostasis

The transport and metabolism of lipids in cerebrovascular endothelial cells (ECs) have been hypothesized to regulate blood-brain barrier (BBB) maturation and homeostasis. Long-chain polyunsaturated fatty acids (LCPUFAs) as the important lipids components of cell membranes are essential for the devel...

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Autores principales: Wang, Jinxuan, Xu, Jianxiong, Zang, Guangchao, Zhang, Tao, Wu, Qi, Zhang, Hongping, Chen, Yidan, Wang, Yi, Qin, Weixi, Zhao, Shuang, Qin, Erdai, Qiu, Juhui, Zhang, Xiaojuan, Wen, Lin, Wang, Yeqi, Wang, Guixue
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AAAS 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9006154/
https://www.ncbi.nlm.nih.gov/pubmed/35465346
http://dx.doi.org/10.34133/2022/9839368
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author Wang, Jinxuan
Xu, Jianxiong
Zang, Guangchao
Zhang, Tao
Wu, Qi
Zhang, Hongping
Chen, Yidan
Wang, Yi
Qin, Weixi
Zhao, Shuang
Qin, Erdai
Qiu, Juhui
Zhang, Xiaojuan
Wen, Lin
Wang, Yeqi
Wang, Guixue
author_facet Wang, Jinxuan
Xu, Jianxiong
Zang, Guangchao
Zhang, Tao
Wu, Qi
Zhang, Hongping
Chen, Yidan
Wang, Yi
Qin, Weixi
Zhao, Shuang
Qin, Erdai
Qiu, Juhui
Zhang, Xiaojuan
Wen, Lin
Wang, Yeqi
Wang, Guixue
author_sort Wang, Jinxuan
collection PubMed
description The transport and metabolism of lipids in cerebrovascular endothelial cells (ECs) have been hypothesized to regulate blood-brain barrier (BBB) maturation and homeostasis. Long-chain polyunsaturated fatty acids (LCPUFAs) as the important lipids components of cell membranes are essential for the development and function of BBB, but the direct links of lipid metabolism and ECs barrier function remain to be established. Here, we comprehensively characterize the transcriptomic phenotype of developmental cerebrovascular ECs in single-cell resolution and firstly find that trans-2-enoyl-CoA reductase (Tecr), a very-long-chain fatty acid synthesis, is highly expressed during barriergenesis and decreased after BBB maturation. EC-specific knockout of Tecr compromises angiogenesis due to delayed vascular sprouting. Importantly, EC-specific deletion of Tecr loss restrictive quality of vascular permeability from neonatal stages to adulthood, with high levels of transcytosis, but maintains the vascular tight junctions. Moreover, lipidomic analysis shows that the expression of Tecr in ECs is associated with the containing of omega-3 fatty acids, which directly suppresses caveolae vesicles formation. These results reveal a protective role for Tecr in BBB integrity and suggest that Tecr as a novel therapeutic target in the central nervous system (CNS) diseases associated with BBB dysfunction.
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spelling pubmed-90061542022-04-23 trans-2-Enoyl-CoA Reductase Tecr-Driven Lipid Metabolism in Endothelial Cells Protects against Transcytosis to Maintain Blood-Brain Barrier Homeostasis Wang, Jinxuan Xu, Jianxiong Zang, Guangchao Zhang, Tao Wu, Qi Zhang, Hongping Chen, Yidan Wang, Yi Qin, Weixi Zhao, Shuang Qin, Erdai Qiu, Juhui Zhang, Xiaojuan Wen, Lin Wang, Yeqi Wang, Guixue Research (Wash D C) Research Article The transport and metabolism of lipids in cerebrovascular endothelial cells (ECs) have been hypothesized to regulate blood-brain barrier (BBB) maturation and homeostasis. Long-chain polyunsaturated fatty acids (LCPUFAs) as the important lipids components of cell membranes are essential for the development and function of BBB, but the direct links of lipid metabolism and ECs barrier function remain to be established. Here, we comprehensively characterize the transcriptomic phenotype of developmental cerebrovascular ECs in single-cell resolution and firstly find that trans-2-enoyl-CoA reductase (Tecr), a very-long-chain fatty acid synthesis, is highly expressed during barriergenesis and decreased after BBB maturation. EC-specific knockout of Tecr compromises angiogenesis due to delayed vascular sprouting. Importantly, EC-specific deletion of Tecr loss restrictive quality of vascular permeability from neonatal stages to adulthood, with high levels of transcytosis, but maintains the vascular tight junctions. Moreover, lipidomic analysis shows that the expression of Tecr in ECs is associated with the containing of omega-3 fatty acids, which directly suppresses caveolae vesicles formation. These results reveal a protective role for Tecr in BBB integrity and suggest that Tecr as a novel therapeutic target in the central nervous system (CNS) diseases associated with BBB dysfunction. AAAS 2022-04-04 /pmc/articles/PMC9006154/ /pubmed/35465346 http://dx.doi.org/10.34133/2022/9839368 Text en Copyright © 2022 Jinxuan Wang et al. https://creativecommons.org/licenses/by/4.0/Exclusive Licensee Science and Technology Review Publishing House. Distributed under a Creative Commons Attribution License (CC BY 4.0).
spellingShingle Research Article
Wang, Jinxuan
Xu, Jianxiong
Zang, Guangchao
Zhang, Tao
Wu, Qi
Zhang, Hongping
Chen, Yidan
Wang, Yi
Qin, Weixi
Zhao, Shuang
Qin, Erdai
Qiu, Juhui
Zhang, Xiaojuan
Wen, Lin
Wang, Yeqi
Wang, Guixue
trans-2-Enoyl-CoA Reductase Tecr-Driven Lipid Metabolism in Endothelial Cells Protects against Transcytosis to Maintain Blood-Brain Barrier Homeostasis
title trans-2-Enoyl-CoA Reductase Tecr-Driven Lipid Metabolism in Endothelial Cells Protects against Transcytosis to Maintain Blood-Brain Barrier Homeostasis
title_full trans-2-Enoyl-CoA Reductase Tecr-Driven Lipid Metabolism in Endothelial Cells Protects against Transcytosis to Maintain Blood-Brain Barrier Homeostasis
title_fullStr trans-2-Enoyl-CoA Reductase Tecr-Driven Lipid Metabolism in Endothelial Cells Protects against Transcytosis to Maintain Blood-Brain Barrier Homeostasis
title_full_unstemmed trans-2-Enoyl-CoA Reductase Tecr-Driven Lipid Metabolism in Endothelial Cells Protects against Transcytosis to Maintain Blood-Brain Barrier Homeostasis
title_short trans-2-Enoyl-CoA Reductase Tecr-Driven Lipid Metabolism in Endothelial Cells Protects against Transcytosis to Maintain Blood-Brain Barrier Homeostasis
title_sort trans-2-enoyl-coa reductase tecr-driven lipid metabolism in endothelial cells protects against transcytosis to maintain blood-brain barrier homeostasis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9006154/
https://www.ncbi.nlm.nih.gov/pubmed/35465346
http://dx.doi.org/10.34133/2022/9839368
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