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5-HT (2A) Receptor and 5-HT Degradation Play a Crucial Role in Atherosclerosis by Modulating Macrophage Foam Cell Formation, Vascular Endothelial Cell Inflammation, and Hepatic Steatosis

Aim: Previously, we found that diabetes-related liver dysfunction is due to activation of the 5-HT (2A) receptor (5-HT (2A) R) and increased synthesis and degradation of 5-HT. Here, we investigated the role of 5-HT in the development of atherosclerosis. Methods: The study was conducted using high-fa...

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Autores principales: Ma, Yingying, Liang, Xiurui, Li, Chen, Li, Ruoming, Tong, Xin, Zhang, Rui, Shan, Xuechun, Yang, Jing, Ma, Xiaonan, Lu, Wenjia, Li, Ruitong, Fu, Jihua
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Japan Atherosclerosis Society 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8894120/
https://www.ncbi.nlm.nih.gov/pubmed/33536397
http://dx.doi.org/10.5551/jat.58305
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author Ma, Yingying
Liang, Xiurui
Li, Chen
Li, Ruoming
Tong, Xin
Zhang, Rui
Shan, Xuechun
Yang, Jing
Ma, Xiaonan
Lu, Wenjia
Li, Ruitong
Fu, Jihua
author_facet Ma, Yingying
Liang, Xiurui
Li, Chen
Li, Ruoming
Tong, Xin
Zhang, Rui
Shan, Xuechun
Yang, Jing
Ma, Xiaonan
Lu, Wenjia
Li, Ruitong
Fu, Jihua
author_sort Ma, Yingying
collection PubMed
description Aim: Previously, we found that diabetes-related liver dysfunction is due to activation of the 5-HT (2A) receptor (5-HT (2A) R) and increased synthesis and degradation of 5-HT. Here, we investigated the role of 5-HT in the development of atherosclerosis. Methods: The study was conducted using high-fat diet-fed male ApoE (−/−) mice, THP-1 cell-derived macrophages, and HUVECs. Protein expression and biochemical indexes were determined by Western blotting and quantitative analysis kit, respectively. The following staining methods were used: oil red O staining (showing atherosclerotic plaques and intracellular lipid droplets), immunohistochemistry (showing the expression of 5-HT (2A) R, 5-HT synthase, and CD68 in the aortic wall), and fluorescent probe staining (showing intracellular ROS). Results: In addition to improving hepatic steatosis, insulin resistance, and dyslipidemia, co-treatment with a 5-HT synthesis inhibitor and a 5-HT (2A) R antagonist significantly suppressed the formation of atherosclerotic plaques and macrophage infiltration in the aorta of ApoE (−/−) mice in a synergistic manner. Macrophages and HUVECs exposed to oxLDL or palmitic acid in vitro showed that activated 5-HT (2A) R regulated TG synthesis and oxLDL uptake by activating PKCε, resulting in formation of lipid droplets and even foam cells; ROS production was due to the increase of both intracellular 5-HT synthesis and mitochondrial MAO-A-catalyzed 5-HT degradation, which leads to the activation of NF-κB and the release of the inflammatory cytokines TNF-α and IL-1β from macrophages and HUVECs as well as MCP-1 release from HUVECs. Conclusion: Similar to hepatic steatosis, the pathogenesis of lipid-induced atherosclerosis is associated with activation of intracellular 5-HT (2A) R, 5-HT synthesis, and 5-HT degradation.
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spelling pubmed-88941202022-03-24 5-HT (2A) Receptor and 5-HT Degradation Play a Crucial Role in Atherosclerosis by Modulating Macrophage Foam Cell Formation, Vascular Endothelial Cell Inflammation, and Hepatic Steatosis Ma, Yingying Liang, Xiurui Li, Chen Li, Ruoming Tong, Xin Zhang, Rui Shan, Xuechun Yang, Jing Ma, Xiaonan Lu, Wenjia Li, Ruitong Fu, Jihua J Atheroscler Thromb Original Article Aim: Previously, we found that diabetes-related liver dysfunction is due to activation of the 5-HT (2A) receptor (5-HT (2A) R) and increased synthesis and degradation of 5-HT. Here, we investigated the role of 5-HT in the development of atherosclerosis. Methods: The study was conducted using high-fat diet-fed male ApoE (−/−) mice, THP-1 cell-derived macrophages, and HUVECs. Protein expression and biochemical indexes were determined by Western blotting and quantitative analysis kit, respectively. The following staining methods were used: oil red O staining (showing atherosclerotic plaques and intracellular lipid droplets), immunohistochemistry (showing the expression of 5-HT (2A) R, 5-HT synthase, and CD68 in the aortic wall), and fluorescent probe staining (showing intracellular ROS). Results: In addition to improving hepatic steatosis, insulin resistance, and dyslipidemia, co-treatment with a 5-HT synthesis inhibitor and a 5-HT (2A) R antagonist significantly suppressed the formation of atherosclerotic plaques and macrophage infiltration in the aorta of ApoE (−/−) mice in a synergistic manner. Macrophages and HUVECs exposed to oxLDL or palmitic acid in vitro showed that activated 5-HT (2A) R regulated TG synthesis and oxLDL uptake by activating PKCε, resulting in formation of lipid droplets and even foam cells; ROS production was due to the increase of both intracellular 5-HT synthesis and mitochondrial MAO-A-catalyzed 5-HT degradation, which leads to the activation of NF-κB and the release of the inflammatory cytokines TNF-α and IL-1β from macrophages and HUVECs as well as MCP-1 release from HUVECs. Conclusion: Similar to hepatic steatosis, the pathogenesis of lipid-induced atherosclerosis is associated with activation of intracellular 5-HT (2A) R, 5-HT synthesis, and 5-HT degradation. Japan Atherosclerosis Society 2022-03-01 2021-02-02 /pmc/articles/PMC8894120/ /pubmed/33536397 http://dx.doi.org/10.5551/jat.58305 Text en 2022 Japan Atherosclerosis Society https://creativecommons.org/licenses/by-nc-sa/4.0/This article is distributed under the terms of the latest version of CC BY-NC-SA defined by the Creative Commons Attribution License.http://creativecommons.org/licenses/by-nc-sa/4.0/ (https://creativecommons.org/licenses/by-nc-sa/4.0/)
spellingShingle Original Article
Ma, Yingying
Liang, Xiurui
Li, Chen
Li, Ruoming
Tong, Xin
Zhang, Rui
Shan, Xuechun
Yang, Jing
Ma, Xiaonan
Lu, Wenjia
Li, Ruitong
Fu, Jihua
5-HT (2A) Receptor and 5-HT Degradation Play a Crucial Role in Atherosclerosis by Modulating Macrophage Foam Cell Formation, Vascular Endothelial Cell Inflammation, and Hepatic Steatosis
title 5-HT (2A) Receptor and 5-HT Degradation Play a Crucial Role in Atherosclerosis by Modulating Macrophage Foam Cell Formation, Vascular Endothelial Cell Inflammation, and Hepatic Steatosis
title_full 5-HT (2A) Receptor and 5-HT Degradation Play a Crucial Role in Atherosclerosis by Modulating Macrophage Foam Cell Formation, Vascular Endothelial Cell Inflammation, and Hepatic Steatosis
title_fullStr 5-HT (2A) Receptor and 5-HT Degradation Play a Crucial Role in Atherosclerosis by Modulating Macrophage Foam Cell Formation, Vascular Endothelial Cell Inflammation, and Hepatic Steatosis
title_full_unstemmed 5-HT (2A) Receptor and 5-HT Degradation Play a Crucial Role in Atherosclerosis by Modulating Macrophage Foam Cell Formation, Vascular Endothelial Cell Inflammation, and Hepatic Steatosis
title_short 5-HT (2A) Receptor and 5-HT Degradation Play a Crucial Role in Atherosclerosis by Modulating Macrophage Foam Cell Formation, Vascular Endothelial Cell Inflammation, and Hepatic Steatosis
title_sort 5-ht (2a) receptor and 5-ht degradation play a crucial role in atherosclerosis by modulating macrophage foam cell formation, vascular endothelial cell inflammation, and hepatic steatosis
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8894120/
https://www.ncbi.nlm.nih.gov/pubmed/33536397
http://dx.doi.org/10.5551/jat.58305
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