Time-Restricted Feeding Reduces Atherosclerosis in LDLR KO Mice but Not in ApoE Knockout Mice.

atherosclerosis cause of death fasting inflammation sterols

Journal

Arteriosclerosis, thrombosis, and vascular biology
ISSN: 1524-4636
Titre abrégé: Arterioscler Thromb Vasc Biol
Pays: United States
ID NLM: 9505803

Informations de publication

Date de publication:
01 Aug 2024
Historique:
medline: 1 8 2024
pubmed: 1 8 2024
entrez: 1 8 2024
Statut: aheadofprint

Résumé

Dyslipidemia increases cardiovascular disease risk, the leading cause of death worldwide. Under time-restricted feeding (TRF), wherein food intake is restricted to a consistent window of <12 hours, weight gain, glucose intolerance, inflammation, dyslipidemia, and hypercholesterolemia are all reduced in mice fed an obesogenic diet. LDLR (low-density lipoprotein receptor) mutations are a major cause of familial hypercholesterolemia and early-onset cardiovascular disease. We subjected benchmark preclinical models, mice lacking LDLR-knockout or ApoE knockout to ad libitum feeding of an isocaloric atherogenic diet either ad libitum or 9 hours TRF for up to 13 weeks and assessed disease development, mechanism, and global changes in hepatic gene expression and plasma lipids. In a regression model, a subset of LDLR-knockout mice were ad libitum fed and then subject to TRF. TRF could significantly attenuate weight gain, hypercholesterolemia, and atherosclerosis in mice lacking the LDLR-knockout mice under experimental conditions of both prevention and regression. In LDLR-knockout mice, increased hepatic expression of genes mediating β-oxidation during fasting is associated with reduced VLDL (very-low-density lipoprotein) secretion and lipid accumulation. Additionally, increased sterol catabolism coupled with fecal loss of cholesterol and bile acids contributes to the atheroprotective effect of TRF. Finally, TRF alone or combined with a cholesterol-free diet can reduce atherosclerosis in LDLR-knockout mice. However, mice lacking ApoE, which is an important protein for hepatic lipoprotein reuptake do not respond to TRF. In a preclinical animal model, TRF is effective in both the prevention and regression of atherosclerosis in LDLR knockout mice. The results suggest TRF alone or in combination with a low-cholesterol diet can be a lifestyle intervention for reducing cardiovascular disease risk in humans.

Sections du résumé

BACKGROUND UNASSIGNED
Dyslipidemia increases cardiovascular disease risk, the leading cause of death worldwide. Under time-restricted feeding (TRF), wherein food intake is restricted to a consistent window of <12 hours, weight gain, glucose intolerance, inflammation, dyslipidemia, and hypercholesterolemia are all reduced in mice fed an obesogenic diet. LDLR (low-density lipoprotein receptor) mutations are a major cause of familial hypercholesterolemia and early-onset cardiovascular disease.
METHODS UNASSIGNED
We subjected benchmark preclinical models, mice lacking LDLR-knockout or ApoE knockout to ad libitum feeding of an isocaloric atherogenic diet either ad libitum or 9 hours TRF for up to 13 weeks and assessed disease development, mechanism, and global changes in hepatic gene expression and plasma lipids. In a regression model, a subset of LDLR-knockout mice were ad libitum fed and then subject to TRF.
RESULTS UNASSIGNED
TRF could significantly attenuate weight gain, hypercholesterolemia, and atherosclerosis in mice lacking the LDLR-knockout mice under experimental conditions of both prevention and regression. In LDLR-knockout mice, increased hepatic expression of genes mediating β-oxidation during fasting is associated with reduced VLDL (very-low-density lipoprotein) secretion and lipid accumulation. Additionally, increased sterol catabolism coupled with fecal loss of cholesterol and bile acids contributes to the atheroprotective effect of TRF. Finally, TRF alone or combined with a cholesterol-free diet can reduce atherosclerosis in LDLR-knockout mice. However, mice lacking ApoE, which is an important protein for hepatic lipoprotein reuptake do not respond to TRF.
CONCLUSIONS UNASSIGNED
In a preclinical animal model, TRF is effective in both the prevention and regression of atherosclerosis in LDLR knockout mice. The results suggest TRF alone or in combination with a low-cholesterol diet can be a lifestyle intervention for reducing cardiovascular disease risk in humans.

Identifiants

pubmed: 39087348
doi: 10.1161/ATVBAHA.124.320998
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Auteurs

Amandine Chaix (A)

Regulatory Biology Laboratory, Salk Institute for Biological Studies, La Jolla, CA. (A.C., T. Lin, T. Le, C.L., S.P.).
Department of Nutrition and Integrative Physiology, University of Utah, Salt Lake City (A.C.).

Terry Lin (T)

Regulatory Biology Laboratory, Salk Institute for Biological Studies, La Jolla, CA. (A.C., T. Lin, T. Le, C.L., S.P.).

Bastian Ramms (B)

Division of Endocrinology and Metabolism, Department of Medicine, University of California, San Diego, La Jolla. (B.R., P.M., P.G., J.L.W.).

Roy G Cutler (RG)

Laboratory of Neurosciences, National Institute on Aging Intramural Research Program, National Institutes of Health, Baltimore, MD (R.G.C., M.P.M.).

Tiffani Le (T)

Regulatory Biology Laboratory, Salk Institute for Biological Studies, La Jolla, CA. (A.C., T. Lin, T. Le, C.L., S.P.).

Catherine Lopez (C)

Regulatory Biology Laboratory, Salk Institute for Biological Studies, La Jolla, CA. (A.C., T. Lin, T. Le, C.L., S.P.).

Phuong Miu (P)

Division of Endocrinology and Metabolism, Department of Medicine, University of California, San Diego, La Jolla. (B.R., P.M., P.G., J.L.W.).

Antonio F M Pinto (AFM)

Clayton Foundation Laboratories for Peptide Biology, Salk Institute for Biological Studies, La Jolla, CA. (A.F.M.P., A.S.).

Alan Saghatelian (A)

Clayton Foundation Laboratories for Peptide Biology, Salk Institute for Biological Studies, La Jolla, CA. (A.F.M.P., A.S.).

Martin P Playford (MP)

Section of Inflammation and Cardiometabolic Diseases, Cardiovascular and Pulmonary Branch, National Heart, Lung and Blood Institute, National Institutes of Health, Bethesda, MD (M.P.P., N.N.M.).

Nehal N Mehta (NN)

Section of Inflammation and Cardiometabolic Diseases, Cardiovascular and Pulmonary Branch, National Heart, Lung and Blood Institute, National Institutes of Health, Bethesda, MD (M.P.P., N.N.M.).

Mark P Mattson (MP)

Laboratory of Neurosciences, National Institute on Aging Intramural Research Program, National Institutes of Health, Baltimore, MD (R.G.C., M.P.M.).
Department of Neuroscience, Johns Hopkins University School of Medicine, Baltimore, MD (M.P.M.).

Philip Gordts (P)

Division of Endocrinology and Metabolism, Department of Medicine, University of California, San Diego, La Jolla. (B.R., P.M., P.G., J.L.W.).
Glycobiology Research and Training Center, University of California, San Diego, La Jolla. (P.G.).

Joseph L Witztum (JL)

Division of Endocrinology and Metabolism, Department of Medicine, University of California, San Diego, La Jolla. (B.R., P.M., P.G., J.L.W.).

Satchidananda Panda (S)

Regulatory Biology Laboratory, Salk Institute for Biological Studies, La Jolla, CA. (A.C., T. Lin, T. Le, C.L., S.P.).

Classifications MeSH