Taking One Step Back in Familial Hypercholesterolemia

Author:

Loaiza Natalia1,Hartgers Merel L.2,Reeskamp Laurens F.2,Balder Jan-Willem134,Rimbert Antoine15,Bazioti Venetia1,Wolters Justina C.1,Winkelmeijer Maaike6,Jansen Hans P.G.6,Dallinga-Thie Geesje M.2,Volta Andrea7,Huijkman Nicolette1,Smit Marieke1,Kloosterhuis Niels1,Koster Mirjam1,Svendsen Arthur F.8,van de Sluis Bart19,Hovingh G. Kees2,Grefhorst Aldo6,Kuivenhoven Jan Albert1

Affiliation:

1. From the Department of Pediatrics, Molecular Genetics Section (N.L., J.-W.B., A.R., V.B., J.C.W., N.H., M.S., N.K., M.K., B.v.d.S., J.A.K.), University Medical Center Groningen, University of Groningen, the Netherlands

2. Department of Vascular Medicine, Amsterdam University Medical Centers, Location AMC, the Netherlands (M.L.H., L.F.R., G.M.D.-T., G.K.H.)

3. Department of Vascular Medicine (J.-W.B.), University Medical Center Groningen, University of Groningen, the Netherlands

4. Department of Cardiology, University Medical Center Utrecht, the Netherlands (J.-W.B.)

5. L’institut du thorax, INSERM, CNRS, Université de Nantes, France (A.R.)

6. Department of Experimental Vascular Medicine, Amsterdam University Medical Centers, Location AMC, the Netherlands (M.W., H.P.G.J., A.G.)

7. Department of Experimental and Clinical Medicine, University of Florence, Italy (A.V.).

8. Laboratory of Ageing Biology and Stem Cells, European Institute for the Biology of Aging (ERIBA) (A.F.S.), University Medical Center Groningen, University of Groningen, the Netherlands

9. iPSC/CRISPR Center Groningen (B.v.d.S.), University Medical Center Groningen, University of Groningen, the Netherlands

Abstract

Objective: STAP1 , encoding for STAP1 (signal transducing adaptor family member 1), has been reported as a candidate gene associated with familial hypercholesterolemia. Unlike established familial hypercholesterolemia genes, expression of STAP1 is absent in liver but mainly observed in immune cells. In this study, we set out to validate STAP1 as a familial hypercholesterolemia gene. Approach and Results: A whole-body Stap1 knockout mouse model ( Stap1 −/− ) was generated and characterized, without showing changes in plasma lipid levels compared with controls. In follow-up studies, bone marrow from Stap1 −/− mice was transplanted to Ldlr −/− mice, which did not show significant changes in plasma lipid levels or atherosclerotic lesions. To functionally assess whether STAP1 expression in B cells can affect hepatic function, HepG2 cells were cocultured with peripheral blood mononuclear cells isolated from heterozygotes carriers of STAP1 variants and controls. The peripheral blood mononuclear cells from STAP1 variant carriers and controls showed similar LDLR mRNA and protein levels. Also, LDL (low-density lipoprotein) uptake by HepG2 cells did not differ upon coculturing with peripheral blood mononuclear cells isolated from either STAP1 variant carriers or controls. In addition, plasma lipid profiles of 39 carriers and 71 family controls showed no differences in plasma LDL cholesterol, HDL (high-density lipoprotein) cholesterol, triglycerides, and lipoprotein(a) levels. Similarly, B-cell populations did not differ in a group of 10 STAP1 variant carriers and 10 age- and sex-matched controls. Furthermore, recent data from the UK Biobank do not show association between STAP1 rare gene variants and LDL cholesterol. Conclusions: Our combined studies in mouse models and carriers of STAP1 variants indicate that STAP1 is not a familial hypercholesterolemia gene.

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Cardiology and Cardiovascular Medicine

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