TY - JOUR
T1 - Haploinsufficiency of osterix in chondrocytes impairs skeletal growth in mice
AU - Cheng, Shaohong
AU - Xing, Weirong
AU - Zhou, Xin
AU - Mohan, Subburaman
N1 - Physiol Genomics. 2013 Oct 1;45(19):917-23. doi: 10.1152/physiolgenomics.00111.2013. Epub 2013 Aug 13. Research Support, N.I.H., Extramural; Research Support, U.S. Gov't, Non-P.H.S.
PY - 2013/10/1
Y1 - 2013/10/1
N2 - Osterix (Osx) is essential for both intramembranous or endochondral bone formation. Osteoblast-specific ablation of Osx using Col1α1-Cre resulted in osteopenia, because of impaired osteoblast differentiation in adult mice. Since Osx is also known to be expressed in chondrocytes, we evaluated the role of Osx expressed in chondrocytes by examining the skeletal phenotype of mice with conditional disruption of Osx in Col2α1-expressing chondrocytes. Surprisingly, Cre-positive mice that were homozygous for Osx floxed alleles died after birth. Alcian blue and alizarin red staining revealed that the lengths of skeleton, femur, and vertebrae were reduced by 21, 26, and 14% (P < 0.01), respectively, in the knockout (KO) compared with wild-type mice. To determine if haploid insufficiency of Osx in chondrocytes influenced postnatal skeletal growth, we compared skeletal phenotype of floxed heterozygous mice that were Cre-positive or Cre-negative. Body length was reduced by 8% (P < 0.001), and areal BMD of total body, femur, and tibia was reduced by 5, 7, and 8% (P < 0.05), respectively, in mice with conditional disruption of one allele of Osx in chondrocytes. Micro-CT showed reduced cortical volumetric bone mineral density and trabecular bone volume to total volume in the femurs of Osxflox/+;col2α1-Cre mice. Histological analysis revealed that the impairment of longitudinal growth was associated with disrupted growth plates in the Osxflox/+;col2α1-Cre mice. Primary chondrocytes isolated from KO embryos showed reduced expression of chondral ossification markers but elevated expression of chondrogenesis markers. Our findings indicate that Osx expressed in chondrocytes regulates bone growth in part by regulating chondrocyte hypertrophy. © 2013 the American Physiological Society.
AB - Osterix (Osx) is essential for both intramembranous or endochondral bone formation. Osteoblast-specific ablation of Osx using Col1α1-Cre resulted in osteopenia, because of impaired osteoblast differentiation in adult mice. Since Osx is also known to be expressed in chondrocytes, we evaluated the role of Osx expressed in chondrocytes by examining the skeletal phenotype of mice with conditional disruption of Osx in Col2α1-expressing chondrocytes. Surprisingly, Cre-positive mice that were homozygous for Osx floxed alleles died after birth. Alcian blue and alizarin red staining revealed that the lengths of skeleton, femur, and vertebrae were reduced by 21, 26, and 14% (P < 0.01), respectively, in the knockout (KO) compared with wild-type mice. To determine if haploid insufficiency of Osx in chondrocytes influenced postnatal skeletal growth, we compared skeletal phenotype of floxed heterozygous mice that were Cre-positive or Cre-negative. Body length was reduced by 8% (P < 0.001), and areal BMD of total body, femur, and tibia was reduced by 5, 7, and 8% (P < 0.05), respectively, in mice with conditional disruption of one allele of Osx in chondrocytes. Micro-CT showed reduced cortical volumetric bone mineral density and trabecular bone volume to total volume in the femurs of Osxflox/+;col2α1-Cre mice. Histological analysis revealed that the impairment of longitudinal growth was associated with disrupted growth plates in the Osxflox/+;col2α1-Cre mice. Primary chondrocytes isolated from KO embryos showed reduced expression of chondral ossification markers but elevated expression of chondrogenesis markers. Our findings indicate that Osx expressed in chondrocytes regulates bone growth in part by regulating chondrocyte hypertrophy. © 2013 the American Physiological Society.
KW - Chondrocyte
KW - Col2α1-Cre
KW - Endochondral bone formation
KW - Haploinsufficiency
KW - Osterix
KW - Animals, Newborn
KW - Femur/diagnostic imaging
KW - Transcription Factors/genetics
KW - Biomarkers/metabolism
KW - Absorptiometry, Photon
KW - Chondrocytes/metabolism
KW - Haploinsufficiency/genetics
KW - Bone Development/genetics
KW - Mice, Knockout
KW - Animals
KW - Calcification, Physiologic/genetics
KW - Gene Deletion
KW - Sp7 Transcription Factor
KW - Mice
KW - Organ Specificity/genetics
KW - Hypertrophy
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UR - http://www.scopus.com/inward/citedby.url?scp=84884947496&partnerID=8YFLogxK
UR - https://www.mendeley.com/catalogue/1fad9971-6448-3e6c-bf3a-f0b665331814/
U2 - 10.1152/physiolgenomics.00111.2013
DO - 10.1152/physiolgenomics.00111.2013
M3 - Article
C2 - 23943855
SN - 1094-8341
VL - 45
SP - 917
EP - 923
JO - Physiological Genomics
JF - Physiological Genomics
IS - 19
ER -