Homeobox genes d11-d13 and a13 control mouse autopod cortical bone and joint formation.
نویسندگان
چکیده
The molecular mechanisms that govern bone and joint formation are complex, involving an integrated network of signaling pathways and gene regulators. We investigated the role of Hox genes, which are known to specify individual segments of the skeleton, in the formation of autopod limb bones (i.e., the hands and feet) using the mouse mutant synpolydactyly homolog (spdh), which encodes a polyalanine expansion in Hoxd13. We found that no cortical bone was formed in the autopod in spdh/spdh mice; instead, these bones underwent trabecular ossification after birth. Spdh/spdh metacarpals acquired an ovoid shape and developed ectopic joints, indicating a loss of long bone characteristics and thus a transformation of metacarpals into carpal bones. The perichondrium of spdh/spdh mice showed abnormal morphology and decreased expression of Runt-related transcription factor 2 (Runx2), which was identified as a direct Hoxd13 transcriptional target. Hoxd11-/-Hoxd12-/-Hoxd13-/- triple-knockout mice and Hoxd13-/-Hoxa13+/- mice exhibited similar but less severe defects, suggesting that these Hox genes have similar and complementary functions and that the spdh allele acts as a dominant negative. This effect was shown to be due to sequestration of other polyalanine-containing transcription factors by the mutant Hoxd13 in the cytoplasm, leading to their degradation. These data indicate that Hox genes not only regulate patterning but also directly influence bone formation and the ossification pattern of bones, in part via Runx2.
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d12 d13 d10 d11 d11 d13 d11 d10 d9 d8 d4 d3 d1 d12 c13 c11 c10 c9 c6 c5 c4 c12 c8 b13 b9 b7 b6 b5 b4 b3 b2 b1 b8 a13 a11 a10 a9 a7 a6 a5 a4 a3 a2 a1 HoxA HoxB HoxC d13 d11 d10 d9 d8 d4 d3 d1 d12
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ورودعنوان ژورنال:
- The Journal of clinical investigation
دوره 120 6 شماره
صفحات -
تاریخ انتشار 2010