Literature DB >> 21479674

Aerobic exercise improves reverse cholesterol transport in cholesteryl ester transfer protein transgenic mice.

D D F M Rocco1, L S Okuda, R S Pinto, F D Ferreira, S K Kubo, E R Nakandakare, E C R Quintão, S Catanozi, M Passarelli.   

Abstract

We analyzed the effect of a 6-week aerobic exercise training program on the in vivo macrophage reverse cholesterol transport (RCT) in human cholesteryl ester transfer protein (CETP) transgenic (CETP-tg) mice. Male CETP-tg mice were randomly assigned to a sedentary group or a carefully supervised exercise training group (treadmill 15 m/min, 30 min sessions, five sessions per week). The levels of plasma lipids were determined by enzymatic methods, and the lipoprotein profile was determined by fast protein liquid chromatography (FPLC). CETP activity was determined by measuring the transfer rate of ¹⁴C-cholesterol from HDL to apo-B containing lipoproteins, using plasma from CETP-tg mice as a source of CETP. The reverse cholesterol transport was determined in vivo by measuring the [³H]-cholesterol recovery in plasma and feces (24 and 48 h) and in the liver (48 h) following a peritoneal injection of [³H]-cholesterol labeled J774-macrophages into both sedentary and exercise trained mice. The protein levels of liver receptors were determined by immunoblot, and the mRNA levels for liver enzymes were measured using RT-PCR. Exercise training did not significantly affect the levels of plasma lipids or CETP activity. The HDL fraction assessed by FPLC was higher in exercise-trained compared to sedentary mice. In comparison to the sedentary group, a greater recovery of [³H]-cholesterol from the injected macrophages was found in the plasma, liver and feces of exercise-trained animals. The latter occurred even with a reduction in the liver CYP7A1 mRNA level in exercised trained animals. Exercise training increased the liver LDL receptor and ABCA-1 protein levels, although the SR-BI protein content was unchanged. The RCT benefit in CETP-tg mice elicited by exercise training helps to elucidate the role of exercise in the prevention of atherosclerosis in humans.

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Year:  2011        PMID: 21479674     DOI: 10.1007/s11745-011-3555-z

Source DB:  PubMed          Journal:  Lipids        ISSN: 0024-4201            Impact factor:   1.880


  44 in total

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4.  Exercise might favor reverse cholesterol transport and lipoprotein clearance: potential mechanism for its anti-atherosclerotic effects.

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6.  Exercise enhances whole-body cholesterol turnover in mice.

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10.  The effect of cholesteryl ester transfer protein overexpression and inhibition on reverse cholesterol transport.

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Review 1.  Dynamics of hepatic and intestinal cholesterol and bile acid pathways: The impact of the animal model of estrogen deficiency and exercise training.

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Review 2.  Cholesteryl ester transfer protein and its inhibitors.

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3.  Chronic Exercise Reduces CETP and Mesterolone Treatment Counteracts Exercise Benefits on Plasma Lipoproteins Profile: Studies in Transgenic Mice.

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Review 4.  The Effects of Exercise on Lipid Biomarkers.

Authors:  Michael Vaughn F Mendoza; Sergey M Kachur; Carl J Lavie
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5.  Regulation of reverse cholesterol transport - a comprehensive appraisal of available animal studies.

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6.  Aerobic exercise training enhances the in vivo cholesterol trafficking from macrophages to the liver independently of changes in the expression of genes involved in lipid flux in macrophages and aorta.

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7.  Effects of a behavioral program on exercise adherence and exercise self-efficacy in community-dwelling older persons.

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8.  Aerobic Exercise Training Selectively Changes Oxysterol Levels and Metabolism Reducing Cholesterol Accumulation in the Aorta of Dyslipidemic Mice.

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9.  Modified SJH alleviates FFAs-induced hepatic steatosis through leptin signaling pathways.

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Journal:  Sci Rep       Date:  2017-03-30       Impact factor: 4.379

Review 10.  Effects of aerobic exercise on lipids and lipoproteins.

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Journal:  Lipids Health Dis       Date:  2017-07-05       Impact factor: 3.876

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