Cleft palate and minor metabolic disturbances in a mouse global Arl15 gene knockout

Author:

Bai Ying1ORCID,Bentley Liz1,Ma Chao2,Naveenan Navaratnam3,Cleak James1,Wu Yixing1,Simon Michelle M.1,Westerberg Henrik1,Cañas Ramón Casero1,Horner Neil1,Pandey Rajesh1,Paphiti Keanu1,Schulze Ulrike4,Mianné Joffrey1,Hough Tertius1,Teboul Lydia1,de Baaij Jeroen H. F.2ORCID,Cox Roger D.1ORCID

Affiliation:

1. Mammalian Genetics Unit and Mary Lyon Centre MRC Harwell Institute Didcot Oxon UK

2. Department of Physiology, Radboud Institute for Molecular Life Sciences Radboud University Medical Centre Nijmegen The Netherlands

3. MRC London Institute of Medical Sciences London UK

4. MRC Laboratory of Molecular Biology Cambridge Biomedical Campus Cambridge UK

Abstract

AbstractARL15, a small GTPase protein, was linked to metabolic traits in association studies. We aimed to test the Arl15 gene as a functional candidate for metabolic traits in the mouse. CRISPR/Cas9 germline knockout (KO) of Arl15 showed that homozygotes were postnatal lethal and exhibited a complete cleft palate (CP). Also, decreased cell migration was observed from Arl15 KO mouse embryonic fibroblasts (MEFs). Metabolic phenotyping of heterozygotes showed that females had reduced fat mass on a chow diet from 14 weeks of age. Mild body composition phenotypes were also observed in heterozygous mice on a high‐fat diet (HFD)/low‐fat diet (LFD). Females on a HFD showed reduced body weight, gonadal fat depot weight and brown adipose tissue (BAT) weight. In contrast, in the LFD group, females showed increased bone mineral density (BMD), while males showed a trend toward reduced BMD. Clinical biochemistry analysis of plasma on HFD showed transient lower adiponectin at 20 weeks of age in females. Urinary and plasma Mg2+ concentrations were not significantly different. Our phenotyping data showed that Arl15 is essential for craniofacial development. Adult metabolic phenotyping revealed potential roles in brown adipose tissue and bone development.

Funder

Diabetes Fonds

National Institutes of Health

Publisher

Wiley

Subject

Genetics,Molecular Biology,Biochemistry,Biotechnology

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