FOXC1 and FOXC2 regulate growth plate chondrocyte maturation towards hypertrophy in the embryonic mouse limb skeleton

Author:

Almubarak Asra1,Zhang Qiuwan2,Zhang Cheng-Hai2,Abdelwahab Noor13,Kume Tsutomu45ORCID,Lassar Andrew B.2,Berry Fred B.136ORCID

Affiliation:

1. University of Alberta 1 Department of Medical Genetics , , Edmonton, AB T6G 2E1 , Canada

2. Blavatnik Institute at Harvard Medical School 2 Department of Biological Chemistry and Molecular Pharmacology , , 240 Longwood Ave, Boston, MA 02115 , USA

3. University of Alberta 3 Department of Surgery , , Edmonton, AB T6G 2E1 , Canada

4. Feinberg Cardiovascular and Renal Research Institute, Feinberg School of Medicine 4 , Department of Medicine , , Chicago, IL 60611 , USA

5. Northwestern University 4 , Department of Medicine , , Chicago, IL 60611 , USA

6. Women and Children's Health Research Institute, University of Alberta 5 , Edmonton, AB T6G 2E1 , Canada

Abstract

ABSTRACT The Forkhead box transcription factors FOXC1 and FOXC2 are expressed in condensing mesenchyme cells at the onset of endochondral ossification. We used the Prx1-cre mouse to ablate Foxc1 and Foxc2 in limb skeletal progenitor cells. Prx1-cre;Foxc1Δ/Δ;Foxc2Δ/Δ limbs were shorter than controls, with worsening phenotypes in distal structures. Cartilage formation and mineralization was severely disrupted in the paws. The radius and tibia were malformed, whereas the fibula and ulna remained unmineralized. Chondrocyte maturation was delayed, with fewer Indian hedgehog-expressing, prehypertrophic chondrocytes forming and a smaller hypertrophic chondrocyte zone. Later, progression out of chondrocyte hypertrophy was slowed, leading to an accumulation of COLX-expressing hypertrophic chondrocytes and formation of a smaller primary ossification center with fewer osteoblast progenitor cells populating this region. Targeting Foxc1 and Foxc2 in hypertrophic chondrocytes with Col10a1-cre also resulted in an expanded hypertrophic chondrocyte zone and smaller primary ossification center. Our findings suggest that FOXC1 and FOXC2 direct chondrocyte maturation towards hypertrophic chondrocyte formation. At later stages, FOXC1 and FOXC2 regulate function in hypertrophic chondrocyte remodeling to allow primary ossification center formation and osteoblast recruitment.

Funder

Natural Sciences and Engineering Research Council of Canada

Women and Children's Health Research Institute

National Institutes of Health

Ministry of Health – Kingdom of Saudi Arabia

China Scholarship Council

International Peace Maternity and Child Health Hospital

University of Alberta

Publisher

The Company of Biologists

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