A porcine model of Fanconi anemia

B Brandon Hergert K Kristin M. Whitworth D Devorah C. Goldman L Lisa Moreau K Kelsey McQueen K Kalindi Parmar A Alan D’Andrea M Melissa S. Samuel K Kevin D. Wells R Randall S. Prather C Craig Dorell M Markus Grompe W William H. Fleming

Abstract

Although small animal models of Fanconi anemia (FA) are useful, they do not faithfully replicate many of the clinical features seen in FA patients. We reasoned that a porcine model of FA with its similar physiology and a relatively long lifespan would produce a phenotype more similar to human FA. Targeting FANCA in domestic swine resulted in skeletal abnormalities and extreme sensitivity to interstrand DNA cross-linking agents. In addition, FANCA disruption followed by mitomycin C treatment resulted in a > 10-fold increase in chromosomal radials, a finding that is considered diagnostic for human FA. Bone marrow derived, hematopoietic progenitor cells from a FANCA null pig showed a 75% reduction in colony forming activity compared to wild type. Evaluation of steady state hematopoiesis in the peripheral blood revealed the gradual development of red cell macrocytosis and a reduction in circulating neutrophils. Targeting of FANCD2 failed to produce any biallelic animals demonstrating the loss of FANCD2 function is embryonic lethal in pigs. These results indicate that a porcine model of FANCA holds promise for the development of strategies to prevent the development of bone marrow failure and malignancies in patients with FA.

Article Details

Journal PLoS ONE
Volume / Issue Vol. 20, Issue 10
Published October 31, 2025
Pages e0335854
ISSN 1932-6203
Publisher Public Library of Science

Journal Info

PLoS ONE

Public Library of Science

ISSN: 1932-6203 Open Access Health Sciences

Authors (13)

B

Brandon Hergert

K

Kristin M. Whitworth

D

Devorah C. Goldman

L

Lisa Moreau

K

Kelsey McQueen

K

Kalindi Parmar

A

Alan D’Andrea

M

Melissa S. Samuel

K

Kevin D. Wells

R

Randall S. Prather

C

Craig Dorell

M

Markus Grompe

W

William H. Fleming