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Hematopoietic Cell-Specific SLC37A2 Deficiency Accelerates Atherosclerosis in LDL Receptor-Deficient Mice

Macrophages play a central role in the pathogenesis of atherosclerosis. Our previous study demonstrated that solute carrier family 37 member 2 (SLC37A2), an endoplasmic reticulum-anchored phosphate-linked glucose-6-phosphate transporter, negatively regulates macrophage Toll-like receptor activation...

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Autores principales: Zhao, Qingxia, Wang, Zhan, Meyers, Allison K., Madenspacher, Jennifer, Zabalawi, Manal, Zhang, Qianyi, Boudyguina, Elena, Hsu, Fang-Chi, McCall, Charles E., Furdui, Cristina M., Parks, John S., Fessler, Michael B., Zhu, Xuewei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8702732/
https://www.ncbi.nlm.nih.gov/pubmed/34957260
http://dx.doi.org/10.3389/fcvm.2021.777098
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author Zhao, Qingxia
Wang, Zhan
Meyers, Allison K.
Madenspacher, Jennifer
Zabalawi, Manal
Zhang, Qianyi
Boudyguina, Elena
Hsu, Fang-Chi
McCall, Charles E.
Furdui, Cristina M.
Parks, John S.
Fessler, Michael B.
Zhu, Xuewei
author_facet Zhao, Qingxia
Wang, Zhan
Meyers, Allison K.
Madenspacher, Jennifer
Zabalawi, Manal
Zhang, Qianyi
Boudyguina, Elena
Hsu, Fang-Chi
McCall, Charles E.
Furdui, Cristina M.
Parks, John S.
Fessler, Michael B.
Zhu, Xuewei
author_sort Zhao, Qingxia
collection PubMed
description Macrophages play a central role in the pathogenesis of atherosclerosis. Our previous study demonstrated that solute carrier family 37 member 2 (SLC37A2), an endoplasmic reticulum-anchored phosphate-linked glucose-6-phosphate transporter, negatively regulates macrophage Toll-like receptor activation by fine-tuning glycolytic reprogramming in vitro. Whether macrophage SLC37A2 impacts in vivo macrophage inflammation and atherosclerosis under hyperlipidemic conditions is unknown. We generated hematopoietic cell-specific SLC37A2 knockout and control mice in C57Bl/6 Ldlr(−/−) background by bone marrow transplantation. Hematopoietic cell-specific SLC37A2 deletion in Ldlr(−/−) mice increased plasma lipid concentrations after 12-16 wks of Western diet induction, attenuated macrophage anti-inflammatory responses, and resulted in more atherosclerosis compared to Ldlr(−/−) mice transplanted with wild type bone marrow. Aortic root intimal area was inversely correlated with plasma IL-10 levels, but not total cholesterol concentrations, suggesting inflammation but not plasma cholesterol was responsible for increased atherosclerosis in bone marrow SLC37A2-deficient mice. Our in vitro study demonstrated that SLC37A2 deficiency impaired IL-4-induced macrophage activation, independently of glycolysis or mitochondrial respiration. Importantly, SLC37A2 deficiency impaired apoptotic cell-induced glycolysis, subsequently attenuating IL-10 production. Our study suggests that SLC37A2 expression is required to support alternative macrophage activation in vitro and in vivo. In vivo disruption of hematopoietic SLC37A2 accelerates atherosclerosis under hyperlipidemic pro-atherogenic conditions.
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spelling pubmed-87027322021-12-25 Hematopoietic Cell-Specific SLC37A2 Deficiency Accelerates Atherosclerosis in LDL Receptor-Deficient Mice Zhao, Qingxia Wang, Zhan Meyers, Allison K. Madenspacher, Jennifer Zabalawi, Manal Zhang, Qianyi Boudyguina, Elena Hsu, Fang-Chi McCall, Charles E. Furdui, Cristina M. Parks, John S. Fessler, Michael B. Zhu, Xuewei Front Cardiovasc Med Cardiovascular Medicine Macrophages play a central role in the pathogenesis of atherosclerosis. Our previous study demonstrated that solute carrier family 37 member 2 (SLC37A2), an endoplasmic reticulum-anchored phosphate-linked glucose-6-phosphate transporter, negatively regulates macrophage Toll-like receptor activation by fine-tuning glycolytic reprogramming in vitro. Whether macrophage SLC37A2 impacts in vivo macrophage inflammation and atherosclerosis under hyperlipidemic conditions is unknown. We generated hematopoietic cell-specific SLC37A2 knockout and control mice in C57Bl/6 Ldlr(−/−) background by bone marrow transplantation. Hematopoietic cell-specific SLC37A2 deletion in Ldlr(−/−) mice increased plasma lipid concentrations after 12-16 wks of Western diet induction, attenuated macrophage anti-inflammatory responses, and resulted in more atherosclerosis compared to Ldlr(−/−) mice transplanted with wild type bone marrow. Aortic root intimal area was inversely correlated with plasma IL-10 levels, but not total cholesterol concentrations, suggesting inflammation but not plasma cholesterol was responsible for increased atherosclerosis in bone marrow SLC37A2-deficient mice. Our in vitro study demonstrated that SLC37A2 deficiency impaired IL-4-induced macrophage activation, independently of glycolysis or mitochondrial respiration. Importantly, SLC37A2 deficiency impaired apoptotic cell-induced glycolysis, subsequently attenuating IL-10 production. Our study suggests that SLC37A2 expression is required to support alternative macrophage activation in vitro and in vivo. In vivo disruption of hematopoietic SLC37A2 accelerates atherosclerosis under hyperlipidemic pro-atherogenic conditions. Frontiers Media S.A. 2021-12-10 /pmc/articles/PMC8702732/ /pubmed/34957260 http://dx.doi.org/10.3389/fcvm.2021.777098 Text en Copyright © 2021 Zhao, Wang, Meyers, Madenspacher, Zabalawi, Zhang, Boudyguina, Hsu, McCall, Furdui, Parks, Fessler and Zhu. 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 Cardiovascular Medicine
Zhao, Qingxia
Wang, Zhan
Meyers, Allison K.
Madenspacher, Jennifer
Zabalawi, Manal
Zhang, Qianyi
Boudyguina, Elena
Hsu, Fang-Chi
McCall, Charles E.
Furdui, Cristina M.
Parks, John S.
Fessler, Michael B.
Zhu, Xuewei
Hematopoietic Cell-Specific SLC37A2 Deficiency Accelerates Atherosclerosis in LDL Receptor-Deficient Mice
title Hematopoietic Cell-Specific SLC37A2 Deficiency Accelerates Atherosclerosis in LDL Receptor-Deficient Mice
title_full Hematopoietic Cell-Specific SLC37A2 Deficiency Accelerates Atherosclerosis in LDL Receptor-Deficient Mice
title_fullStr Hematopoietic Cell-Specific SLC37A2 Deficiency Accelerates Atherosclerosis in LDL Receptor-Deficient Mice
title_full_unstemmed Hematopoietic Cell-Specific SLC37A2 Deficiency Accelerates Atherosclerosis in LDL Receptor-Deficient Mice
title_short Hematopoietic Cell-Specific SLC37A2 Deficiency Accelerates Atherosclerosis in LDL Receptor-Deficient Mice
title_sort hematopoietic cell-specific slc37a2 deficiency accelerates atherosclerosis in ldl receptor-deficient mice
topic Cardiovascular Medicine
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8702732/
https://www.ncbi.nlm.nih.gov/pubmed/34957260
http://dx.doi.org/10.3389/fcvm.2021.777098
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