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Published on: November 17, 2018
ACAT inhibition reverses LCAT deficiency and improves plasma HDL in chronic renal failure
1Irvine Medical Center, Division of Nephrology and Hypertension, University of California, 101 The City Drive, Bldg. 53, Rm. 125, Rt. 81, Orange, CA 92868, USA. ndvaziri@uci.edu
Insights
Pharmacological inhibition of acyl-CoA:cholesterol acyltransferase (ACAT) improved lipid profiles in chronic renal failure (CRF) rats. ACAT inhibition reversed LCAT deficiency and enhanced HDL cholesterol, offering potential therapeutic strategies for CRF-related dyslipidemia.
Area of Science:
- Nephrology
- Cardiovascular Medicine
- Biochemistry
Background:
- Chronic renal failure (CRF) patients face elevated risks of cardiovascular disease, often linked to dyslipidemia.
- Uremic dyslipidemia involves increased ApoB lipoproteins and impaired reverse cholesterol transport, partly due to LCAT deficiency and ACAT upregulation.
- Hepatic ACAT activity promotes ApoB lipoprotein production and hinders HDL-mediated cholesterol uptake.
Purpose of the Study:
- To investigate if pharmacological ACAT inhibition can alleviate dyslipidemia in a rat model of CRF.
- To assess the impact of ACAT inhibition on key lipid-regulating enzymes and plasma lipid profiles in CRF.
Main Methods:
- Rats with 5/6 nephrectomy (CRF model) were treated with an ACAT inhibitor (IC-976) or placebo for six weeks.
- Sham-operated rats served as controls.
- Measurements included plasma lipids, LCAT activity, hepatic ACAT activity and expression, and creatinine clearance.
Main Results:
- Untreated CRF rats showed elevated LDL/VLDL cholesterol, normal HDL cholesterol, increased total cholesterol-to-HDL ratio, and reduced creatinine clearance.
- CRF rats exhibited reduced plasma LCAT, increased hepatic ACAT activity and expression, but unchanged HMG-CoA reductase and cholesterol 7alpha-hydroxylase.
- ACAT inhibition normalized hepatic ACAT activity and plasma LCAT, increased HDL cholesterol, decreased LDL/VLDL cholesterol, and improved the total cholesterol-to-HDL ratio.
Conclusions:
- ACAT inhibition effectively reversed LCAT deficiency and improved HDL cholesterol levels in CRF rats.
- Pharmacological ACAT inhibition demonstrates potential for managing CRF-associated dyslipidemia.
- Further research is warranted to evaluate ACAT inhibition efficacy in human CRF patients.
Abstract:
Chronic renal failure (CRF) is associated with increased risk of arteriosclerotic cardiovascular disease and profound alteration of plasma lipid profile. Uremic dyslipidemia is marked by increased plasma concentration of ApoB-containing lipoproteins and impaired high-density lipoprotein (HDL)-mediated reverse cholesterol transport. These abnormalities are, in part, due to acquired LCAT deficiency and upregulation of hepatic acyl-CoA:cholesterol acyltransferase (ACAT). ACAT catalyzes intracellular esterification of cholesterol, thereby promoting hepatic production of ApoB-containing lipoproteins and constraining HDL-mediated cholesterol uptake in the peripheral tissues. In view of the above considerations, we tested the hypothesis that pharmacological inhibition of ACAT may ameliorate CRF-induced dyslipidemia. 5/6 Nephrectomized rats were treated with either ACAT inhibitor IC-976 (30 mg.kg(-1).day(-1)) or placebo for 6 wk. Sham-operated rats served as controls. Key cholesterol-regulating enzymes, plasma lipids, and creatinine clearance were measured. The untreated CRF rats exhibited increased plasma low-density lipoprotein (LDL) and very LDL (VLDL) cholesterol, unchanged plasma HDL cholesterol, elevated total cholesterol-to-HDL cholesterol ratio, reduced liver microsomal free cholesterol, and diminished creatinine clearance. This was accompanied by reduced plasma LCAT, increased hepatic ACAT-2 mRNA, ACAT-2 protein and ACAT activity, and unchanged hepatic HMG-CoA reductase and cholesterol 7alpha-hydroxylase. ACAT inhibitor raised plasma HDL cholesterol, lowered LDL and VLDL cholesterol, and normalized total cholesterol-to-HDL cholesterol ratio without changing total cholesterol concentration (hence, a shift from ApoB-containing lipoproteins to HDL). This was accompanied by normalizations of hepatic ACAT activity and plasma LCAT. In conclusion, inhibition of ACAT reversed LCAT deficiency and improved plasma HDL level in CRF rats. Future studies are needed to explore the efficacy of ACAT inhibition in humans with CRF.
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