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Atherogenesis in Apoe(−/−) and Ldlr(−/−) Mice with a Genetically Resistant Background

Apoe-deficient (Apoe(−/−)) and Ldlr-deficient (Ldlr(−/−)) mice are two common animal models of hypercholesterolemia and atherosclerosis. The two models differ in lipid and glucose metabolism and other mechanisms involved in atherogenesis. Here we examined atherosclerotic lesion formation in the two...

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Autores principales: Torikai, Hideyuki, Chen, Mei-Hua, Jin, Li, He, Jiang, Angle, John F., Shi, Weibin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10177018/
https://www.ncbi.nlm.nih.gov/pubmed/37174655
http://dx.doi.org/10.3390/cells12091255
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author Torikai, Hideyuki
Chen, Mei-Hua
Jin, Li
He, Jiang
Angle, John F.
Shi, Weibin
author_facet Torikai, Hideyuki
Chen, Mei-Hua
Jin, Li
He, Jiang
Angle, John F.
Shi, Weibin
author_sort Torikai, Hideyuki
collection PubMed
description Apoe-deficient (Apoe(−/−)) and Ldlr-deficient (Ldlr(−/−)) mice are two common animal models of hypercholesterolemia and atherosclerosis. The two models differ in lipid and glucose metabolism and other mechanisms involved in atherogenesis. Here we examined atherosclerotic lesion formation in the two models with an atherosclerosis-resistant C3H/HeJ (C3H) background. 3-month-old C3H-Ldlr(−/−) and C3H-Apoe(−/−) mice developed minimal atherosclerotic lesions in the aortic root when fed a chow diet. After 12 weeks on a Western diet, C3H-Ldlr(−/−) mice developed 3-fold larger lesions than C3H-Apoe(−/−) mice in the aortic root (127,386 ± 13,439 vs. 41,542 ± 5075 μm(2)/section; p = 0.00028), but neither knockout formed any lesion in the carotid artery. After being ligated near its bifurcation, the common carotid artery developed intimal lesions in both knockouts 4 weeks after ligation, significantly larger in C3H-Ldlr(−/−) than C3H-Apoe(−/−) mice (68,721 ± 2706 vs. 47,472 ± 8146 μm(2)/section; p = 0.028). Compared to C3H-Apoe(−/−) mice, C3H-Ldlr(−/−) mice showed a 50% reduction in plasma MCP-1 levels, similar levels of malondialdehyde, an oxidative stress biomarker, on both chow and Western diets, but higher small dense LDL levels on the Western diet. These results suggest a more significant role for small dense LDL than inflammation and oxidative stress in the different susceptibility of the mouse models to atherosclerosis.
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spelling pubmed-101770182023-05-13 Atherogenesis in Apoe(−/−) and Ldlr(−/−) Mice with a Genetically Resistant Background Torikai, Hideyuki Chen, Mei-Hua Jin, Li He, Jiang Angle, John F. Shi, Weibin Cells Article Apoe-deficient (Apoe(−/−)) and Ldlr-deficient (Ldlr(−/−)) mice are two common animal models of hypercholesterolemia and atherosclerosis. The two models differ in lipid and glucose metabolism and other mechanisms involved in atherogenesis. Here we examined atherosclerotic lesion formation in the two models with an atherosclerosis-resistant C3H/HeJ (C3H) background. 3-month-old C3H-Ldlr(−/−) and C3H-Apoe(−/−) mice developed minimal atherosclerotic lesions in the aortic root when fed a chow diet. After 12 weeks on a Western diet, C3H-Ldlr(−/−) mice developed 3-fold larger lesions than C3H-Apoe(−/−) mice in the aortic root (127,386 ± 13,439 vs. 41,542 ± 5075 μm(2)/section; p = 0.00028), but neither knockout formed any lesion in the carotid artery. After being ligated near its bifurcation, the common carotid artery developed intimal lesions in both knockouts 4 weeks after ligation, significantly larger in C3H-Ldlr(−/−) than C3H-Apoe(−/−) mice (68,721 ± 2706 vs. 47,472 ± 8146 μm(2)/section; p = 0.028). Compared to C3H-Apoe(−/−) mice, C3H-Ldlr(−/−) mice showed a 50% reduction in plasma MCP-1 levels, similar levels of malondialdehyde, an oxidative stress biomarker, on both chow and Western diets, but higher small dense LDL levels on the Western diet. These results suggest a more significant role for small dense LDL than inflammation and oxidative stress in the different susceptibility of the mouse models to atherosclerosis. MDPI 2023-04-26 /pmc/articles/PMC10177018/ /pubmed/37174655 http://dx.doi.org/10.3390/cells12091255 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Torikai, Hideyuki
Chen, Mei-Hua
Jin, Li
He, Jiang
Angle, John F.
Shi, Weibin
Atherogenesis in Apoe(−/−) and Ldlr(−/−) Mice with a Genetically Resistant Background
title Atherogenesis in Apoe(−/−) and Ldlr(−/−) Mice with a Genetically Resistant Background
title_full Atherogenesis in Apoe(−/−) and Ldlr(−/−) Mice with a Genetically Resistant Background
title_fullStr Atherogenesis in Apoe(−/−) and Ldlr(−/−) Mice with a Genetically Resistant Background
title_full_unstemmed Atherogenesis in Apoe(−/−) and Ldlr(−/−) Mice with a Genetically Resistant Background
title_short Atherogenesis in Apoe(−/−) and Ldlr(−/−) Mice with a Genetically Resistant Background
title_sort atherogenesis in apoe(−/−) and ldlr(−/−) mice with a genetically resistant background
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10177018/
https://www.ncbi.nlm.nih.gov/pubmed/37174655
http://dx.doi.org/10.3390/cells12091255
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