An ENU-induced mutation in mouse glycyl-tRNA synthetase (GARS) causes peripheral sensory and motor phenotypes creating a model of Charcot-Marie-Tooth type 2D peripheral neuropathy

Author:

Achilli Francesca1,Bros-Facer Virginie12,Williams Hazel P.1,Banks Gareth T.1,AlQatari Mona3,Chia Ruth1,Tucci Valter4,Groves Michael5,Nickols Carole D.6,Seburn Kevin L.7,Kendall Rachel8,Cader Muhammed Z.9,Talbot Kevin9,van Minnen Jan10,Burgess Robert W.7,Brandner Sebastian511,Martin Joanne E.6,Koltzenburg Martin2311,Greensmith Linda211,Nolan Patrick M.4,Fisher Elizabeth M. C.111

Affiliation:

1. Department of Neurodegenerative Disease,

2. Sobell Department of Motor Science and Movement Disorders,

3. Institute of Child Health,

4. MRC Mammalian Genetics Unit,

5. Division of Neuropathology,

6. Department of Histopathology, Queen Mary University of London, London E1 1BB, UK

7. The Jackson Laboratory, Bar Harbor, MA 04609, USA

8. MRC Mary Lyon Centre, Harwell, Didcot, Oxfordshire OX11 0RD, UK

9. MRC Functional Genetics Unit, Department of Physiology, Anatomy and Genetics, University of Oxford, Oxford OX1 3QX, UK

10. Department of Cell Biology and Anatomy, Hotchkiss Brain Institute, University of Calgary, Calgary, Alberta T2N 4N1, Canada

11. MRC Centre for Neuromuscular Diseases, Institute of Neurology, University College London, London WC1N 3BG, UK

Abstract

SUMMARY Mutations in the enzyme glycyl-tRNA synthetase (GARS) cause motor and sensory axon loss in the peripheral nervous system in humans, described clinically as Charcot-Marie-Tooth type 2D or distal spinal muscular atrophy type V. Here, we characterise a new mouse mutant, GarsC201R, with a point mutation that leads to a non-conservative substitution within GARS. Heterozygous mice with a C3H genetic background have loss of grip strength, decreased motor flexibility and disruption of fine motor control; this relatively mild phenotype is more severe on a C57BL/6 background. Homozygous mutants have a highly deleterious set of features, including movement difficulties and death before weaning. Heterozygous animals have a reduction in axon diameter in peripheral nerves, slowing of nerve conduction and an alteration in the recovery cycle of myelinated axons, as well as innervation defects. An assessment of GARS levels showed increased protein in 15-day-old mice compared with controls; however, this increase was not observed in 3-month-old animals, indicating that GARS function may be more crucial in younger animals. We found that enzyme activity was not reduced detectably in heterozygotes at any age, but was diminished greatly in homozygous mice compared with controls; thus, homozygous animals may suffer from a partial loss of function. The GarsC201R mutation described here is a contribution to our understanding of the mechanism by which mutations in tRNA synthetases, which are fundamentally important, ubiquitously expressed enzymes, cause axonopathy in specific sets of neurons.

Publisher

The Company of Biologists

Subject

General Biochemistry, Genetics and Molecular Biology,Immunology and Microbiology (miscellaneous),Medicine (miscellaneous),Neuroscience (miscellaneous)

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