Hydroxysteroid (17β) Dehydrogenase 7 Activity Is Essential for Fetal de Novo Cholesterol Synthesis and for Neuroectodermal Survival and Cardiovascular Differentiation in Early Mouse Embryos

Author:

Jokela Heli1,Rantakari Pia12,Lamminen Tarja12,Strauss Leena13,Ola Roxana4,Mutka Aino-Liisa5,Gylling Helena6,Miettinen Tatu17,Pakarinen Pirjo12,Sainio Kirsi4,Poutanen Matti12

Affiliation:

1. Department of Physiology (H.J., P.R., T.L., L.S., P.P., M.P.) University of Turku, FIN-20520 Turku, Finland;

2. Institute of Biomedicine, Turku Center for Disease Modeling (P.R., T.L., P.P., M.P.)University of Turku, FIN-20520 Turku, Finland;

3. Institute of Biomedicine, and Laboratory of Electron Microscopy (L.S.), Institute of Microbiology and Pathology, University of Turku, FIN-20520 Turku, Finland;

4. Departments of Medical Biochemistry and Developmental Biology (R.O., K.S.) University of Helsinki, Biomedicum Helsinki, FIN-00014 Helsinki, Finland;

5. Departments of Anatomy (A.-L.M.) University of Turku, FIN-20520 Turku, Finland;

6. Departments of Clinical Nutrition and Medicine (H.G.), Kuopio University Hospital, University of Kuopio, FIN-70211 Kuopio, Finland

7. Institute of Biomedicine, and Department of Medicine (T.M.), Institute of Internal Medicine, University of Helsinki, Biomedicum Helsinki, FIN-00014 Helsinki, Finland;

Abstract

Hydroxysteroid (17β) dehydrogenase 7 (HSD17B7) has been shown to catalyze the conversion of both estrone to estradiol (17-ketosteroid reductase activity) and zymosterone to zymosterol (3-ketosteroid reductase activity involved in cholesterol biosynthesis) in vitro. To define the metabolic role of the enzyme in vivo, we generated knockout mice deficient in the enzyme activity (HSD17B7KO). The data showed that the lack of HSD17B7 results in a blockage in the de novo cholesterol biosynthesis in mouse embryos in vivo, and HSD17BKO embryos die at embryonic day (E) 10.5. Analysis of neural structures revealed a defect in the development of hemispheres of the front brain with an increased apoptosis in the neuronal tissues. Morphological defects in the cardiovascular system were also observed from E9.5 onward. Mesodermal, endodermal, and hematopoietic cells were all detected by the histological analysis of the visceral yolk sac, whereas no organized vessels were observed in the knockout yolk sac. Immunohistological staining for platelet endothelial cell adhesion molecule-1 indicated that the complexity of the vasculature also was reduced in the HSD17B7KO embryos, particularly in the head capillary plexus and branchial arches. At E8.5–9.5, the heart development and the looping of the heart appeared to be normal in the HSD17B7KO embryos. However, at E10.5 the heart was dilated, and the thickness of the cardiac muscle and pericardium in the HSD17B7KO embryos was markedly reduced, and immunohistochemical staining for GATA-4 revealed that HSD17B7KO embryos had a reduced number of myocardial cells. The septum of the atrium was also defected in the knockout mice.

Publisher

The Endocrine Society

Subject

Endocrinology

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