Arrested Hematopoiesis and Vascular Relaxation Defects in Mice with a Mutation in Dhfr

Author:

Thoms Julie A. I.1,Knezevic Kathy1,Liu Jia Jenny1,Glaros Elias N.2,Thai Thuan2,Qiao Qiao1,Campbell Heather1,Packham Deborah1,Huang Yizhou1,Papathanasiou Peter3,Tunningley Robert3,Whittle Belinda3,Yeung Amanda W. S.2,Chandrakanthan Vashe1,Hesson Luke1,Chen Vivien14,Wong Jason W. H.1,Purton Louise E.5,Ward Robyn L.1,Thomas Shane R.2,Pimanda John E.16

Affiliation:

1. Adult Cancer Program, Prince of Wales Clinical School, Lowy Cancer Research Centre, University of New South Wales, Sydney, NSW, Australia

2. School of Medical Sciences, University of New South Wales, Sydney, NSW, Australia

3. Australian Phenomics Facility, John Curtin School of Medical Research, Australian National University, Acton, ACT, Australia

4. Haematology, Concord Repatriation and General Hospital, Concord, NSW, Australia

5. Stem Cell Regulation Unit, St. Vincent's Institute of Medical Research and Department of Medicine at St. Vincent's Hospital, The University of Melbourne, Fitzroy, Victoria, Australia

6. Department of Haematology, Prince of Wales Hospital, Sydney, NSW, Australia

Abstract

ABSTRACT Dihydrofolate reductase (DHFR) is a critical enzyme in the folate metabolism pathway and also plays a role in regulating nitric oxide (NO) signaling in endothelial cells. Although both coding and noncoding mutations with phenotypic effects have been identified in the human DHFR gene, no mouse model is currently available to study the consequences of perturbing DHFR in vivo . In order to identify genes involved in definitive hematopoiesis, we performed a forward genetic screen and produced a mouse line, here referred to as Orana, with a point mutation in the Dhfr locus leading to a Thr136Ala substitution in the DHFR protein. Homozygote Orana mice initiate definitive hematopoiesis, but expansion of progenitors in the fetal liver is compromised, and the animals die between embryonic day 13.5 (E13.5) and E14.5. Heterozygote Orana mice survive to adulthood but have tissue-specific alterations in folate abundance and distribution, perturbed stress erythropoiesis, and impaired endothelium-dependent relaxation of the aorta consistent with the role of DHFR in regulating NO signaling. Orana mice provide insight into the dual roles of DHFR and are a useful model for investigating the role of environmental and dietary factors in the context of vascular defects caused by altered NO signaling.

Funder

Anthony Rothe Memorial Trust

Department of Industry, Innovation, Science, Research and Tertiary Education, Australian Government | Australian Research Council

Department of Health | National Health and Medical Research Council

Cure Cancer Australia Foundation

Publisher

American Society for Microbiology

Subject

Cell Biology,Molecular Biology

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