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Precocious chondrocyte differentiation disrupts skeletal growth in Kabuki syndrome mice
Jill A. Fahrner, Wan-Ying Lin, Ryan C. Riddle, Leandros Boukas, Valerie B. DeLeon, Sheetal Chopra, Susan E. Lad, Teresa Romeo Luperchio, Kasper D. Hansen, Hans T. Bjornsson
Jill A. Fahrner, Wan-Ying Lin, Ryan C. Riddle, Leandros Boukas, Valerie B. DeLeon, Sheetal Chopra, Susan E. Lad, Teresa Romeo Luperchio, Kasper D. Hansen, Hans T. Bjornsson
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Research Article Genetics

Precocious chondrocyte differentiation disrupts skeletal growth in Kabuki syndrome mice

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Abstract

Kabuki syndrome 1 (KS1) is a Mendelian disorder of the epigenetic machinery caused by mutations in the gene encoding KMT2D, which methylates lysine 4 on histone H3 (H3K4). KS1 is characterized by intellectual disability, postnatal growth retardation, and distinct craniofacial dysmorphisms. A mouse model (Kmt2d+/βGeo) exhibits features of the human disorder and has provided insight into other phenotypes; however, the mechanistic basis of skeletal abnormalities and growth retardation remains elusive. Using high-resolution micro-CT, we show that Kmt2d+/βGeo mice have shortened long bones and ventral bowing of skulls. In vivo expansion of growth plates within skulls and long bones suggests disrupted endochondral ossification as a common disease mechanism. Stable chondrocyte cell lines harboring inactivating mutations in Kmt2d exhibit precocious differentiation, further supporting this mechanism. A known inducer of chondrogenesis, SOX9, and its targets show markedly increased expression in Kmt2d–/– chondrocytes. By transcriptome profiling, we identify Shox2 as a putative KMT2D target. We propose that decreased KMT2D-mediated H3K4me3 at Shox2 releases Sox9 inhibition and thereby leads to enhanced chondrogenesis, providing a potentially novel and plausible explanation for precocious chondrocyte differentiation. Our findings provide insight into the pathogenesis of growth retardation in KS1 and suggest therapeutic approaches for this and related disorders.

Authors

Jill A. Fahrner, Wan-Ying Lin, Ryan C. Riddle, Leandros Boukas, Valerie B. DeLeon, Sheetal Chopra, Susan E. Lad, Teresa Romeo Luperchio, Kasper D. Hansen, Hans T. Bjornsson

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Figure 2

High-resolution micro-CT analysis of long bones in KS1 reveals shortening, thinning, and altered trabecular bone formation in Kmt2d+/βGeo mice.

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High-resolution micro-CT analysis of long bones in KS1 reveals shortenin...
(A and B) Femurs and (C and D) tibias are shorter in Kmt2d+/βGeo mice compared with Kmt2d+/+ littermates. (E and F) Overall cross-sectional area does not differ between Kmt2d+/βGeo and Kmt2d+/+ femurs. (E and G) Cross-sectional area of mineralized bone is reduced in Kmt2d+/βGeo femurs compared with Kmt2d+/+ femurs. (E and H) The percent of cross-sectional area made up of mineralized bone is reduced in male Kmt2d+/βGeo femurs compared with Kmt2d+/+ femurs, whereas the difference is not significant in females. (I) Kmt2d+/βGeo femurs appear to have decreased trabecular bone near the growth plate compared with Kmt2d+/+ femurs. (I and J) Specifically, percent of tissue volume made up of bone is decreased in male Kmt2d+/βGeo femurs, and (I and K) trabecular number is decreased in male Kmt2d+/βGeo femurs. (I and L) Trabecular thickness is decreased in male and female Kmt2d+/βGeo femurs. For Kmt2d+/+ femurs, n = 18 (8 male and 10 female); for Kmt2d+/+ tibias n = 15 (7 male and 8 female); for Kmt2d+/βGeo femurs, n = 13 (7 male and 6 female, except for femur length, where only 6 male mutants could be measured); for Kmt2d+/βGeo tibias, n = 11 (5 male, 6 female). Data represent mean ± SD. One-tailed (B and D) or 2-tailed (F–H and J–L) unpaired Student’s t tests were used. *P < 0.05; **P < 0.01; ***P < 0.001.

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