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Complement Factor B Is a Determinant of Both Metabolic and Cardiovascular Features of Metabolic Syndrome
Philip M Coan1, Marjorie Barrier2, Neza Alfazema2
1From the Centre for Genomic and Experimental Medicine, MRC Institute for Genetics and Molecular Medicine, Edinburgh, United Kingdom (P.M.C., M.B., N.A., S.M.P., X.C.D., D.R., J.M., T.J.A.); British Heart Foundation Centre for Cardiovascular Science, Queen's Medical Research Institute (P.M.C., M.B., N.A., R.N.C., A.T., L.H.J.-J., N.M.M., T.J.A.) and Royal (Dick) School of Veterinary Studies (X.C.D.), University of Edinburgh, United Kingdom; Department of Medicine (A.G.D., T.J.A) and Embryonic Stem Cell and Transgenics Facility, MRC Clinical Sciences Centre (B.M., Z.W.), Imperial College London, United Kingdom; and Division of Pathology, Centre for Comparative Pathology, Cancer Research UK Edinburgh Centre, United Kingdom (M.J.A.). p.m.coan.02@cantab.net.
Insights
Complement factor B (CFB) plays a key role in metabolic syndrome. Eliminating CFB in rats improved metabolic health, reduced cardiovascular issues, and lowered blood pressure, suggesting CFB as a treatment target.
Area of Science:
- Cardiovascular Biology
- Metabolic Disease Research
- Genetics and Genomics
Background:
- Complement factor B (CFB) is elevated in type 2 diabetes mellitus, cardiovascular disease, and metabolic syndrome models.
- The precise role of CFB in the pathogenesis of these conditions remains unclear.
Purpose of the Study:
- To investigate the causal role of CFB in the development of metabolic syndrome.
- To explore CFB's impact on glucose metabolism, fat distribution, and cardiovascular function.
Main Methods:
- Gene knockout of Cfb in spontaneously hypertensive rats.
- Assessment of metabolic parameters (glucose tolerance, insulin sensitivity, fat distribution).
- Analysis of cardiac function, mitochondrial respiration, and gene expression.
Main Results:
- Cfb knockout rats exhibited improved glucose tolerance and insulin sensitivity.
- Reduced visceral fat, enhanced adipocyte mitochondrial respiration, and altered gene expression were observed.
- Knockout rats showed lower blood pressure, improved cardiac function, and reduced cardiac mass.
- Human genetic studies linked CFB expression to visceral fat, triglycerides, and hypertension.
Conclusions:
- CFB plays a critical role in the development of metabolic syndrome and related cardiovascular traits.
- CFB influences adipose tissue and cardiac function through novel mechanisms.
- CFB represents a potential therapeutic target for cardiometabolic diseases.
Abstract:
CFB (complement factor B) is elevated in adipose tissue and serum from patients with type 2 diabetes mellitus and cardiovascular disease, but the causal relationship to disease pathogenesis is unclear. Cfb is also elevated in adipose tissue and serum of the spontaneously hypertensive rat, a well-characterized model of metabolic syndrome. To establish the role of CFB in metabolic syndrome, we knocked out the Cfb gene in the spontaneously hypertensive rat. Cfb-/- rats showed improved glucose tolerance and insulin sensitivity, redistribution of visceral to subcutaneous fat, increased adipocyte mitochondrial respiration, and marked changes in gene expression. Cfb-/- rats also had lower blood pressure, increased ejection fraction and fractional shortening, and reduced left ventricular mass. These changes in metabolism and gene expression, in adipose tissue and left ventricle, suggest new adipose tissue-intrinsic and blood pressure-independent mechanisms for insulin resistance and cardiac hypertrophy in the spontaneously hypertensive rat. In silico analysis of the human CFB locus revealed 2 cis-regulated expression quantitative trait loci for CFB expression significantly associated with visceral fat, circulating triglycerides and hypertension in genome-wide association studies. Together, these data demonstrate a key role for CFB in the development of spontaneously hypertensive rat metabolic syndrome phenotypes and of related traits in humans and indicate the potential for CFB as a novel target for treatment of cardiometabolic disease.
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