Identification of a Hypomorphic FANCG Variant in Bernese Mountain Dogs

Katheryn Meek1,2,3, Ya-Ting Yang1,4, Marilia Takada1,4

  • 1Comparative Medicine and Integrative Biology Program, College of Veterinary Medicine, Michigan State University, East Lansing, MI 48824, USA.

Genes
|October 27, 2022
PubMed

Insights

A genetic variant in FANCG may predispose Bernese Mountain Dogs to cancer but does not cause Fanconi anemia (FA). This discovery offers insights into DNA repair defects and cancer predisposition in dogs.

Area of Science:

  • Genetics
  • Canine Health
  • Cancer Biology

Background:

  • Bernese Mountain Dogs (BMDs) have a high cancer incidence (50%), with histiocytic sarcoma (HS) being common.
  • Previous research identified predisposing genetic loci for HS in BMDs near the MTAP/CDKN2A region, but no causative variant was found.

Purpose of the Study:

  • To identify genetic variants predisposing BMDs to histiocytic sarcoma (HS).
  • To investigate the functional impact of a novel FANCG variant on DNA repair and HS development.

Main Methods:

  • Identified a coding polymorphism in the FANCG gene in BMDs.
  • Assessed cisplatin sensitivity in canine fibroblasts with the FANCG variant.
  • Compared the functional effects of the canine FANCG variant with human FANCG alleles.

Main Results:

  • A conserved, BMD-specific FANCG variant was identified near the MTAP/CDKN2A locus.
  • Canine fibroblasts with the variant showed hypersensitivity to cisplatin, indicating DNA repair defects.
  • The variant mimics defects of hypomorphic human FANCG alleles but is neither necessary nor sufficient for HS development.
  • BMDs homozygous for the variant did not exhibit Fanconi anemia (FA) phenotypes.

Conclusions:

  • The identified canine FANCG variant is associated with DNA repair defects but does not cause FA in BMDs.
  • BMDs with FA pathway deficits appear resistant to developing FA, similar to FA-deficient mice.
  • Further research is needed to fully understand the role of FANCG in HS pathogenesis in BMDs.

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