Literature DB >> 18083924

Synovial joint formation during mouse limb skeletogenesis: roles of Indian hedgehog signaling.

Eiki Koyama1, Takanaga Ochiai, Ryan B Rountree, David M Kingsley, Motomi Enomoto-Iwamoto, Masahiro Iwamoto, Maurizio Pacifici.   

Abstract

Indian hedgehog (Ihh) has been previously found to regulate synovial joint formation. To analyze mechanisms, we carried out morphological, molecular, and cell fate map analyses of interzone and joint development in wild-type and Ihh(-/-) mouse embryo long bones. We found that Ihh(-/-) cartilaginous digit anlagen remained fused and lacked interzones or mature joints, whereas wrist skeletal elements were not fused but their joints were morphologically abnormal. E14.5 and E17.5 wild-type digit and ankle prospective joints expressed hedgehog target genes including Gli1 and Gli2 and interzone-associated genes including Gdf5, Erg, and tenascin-C, but expression of all these genes was barely detectable in mutant joints. For cell fate map analysis of joint progenitor cells, we mated Gdf5-Cre(+/-)/Rosa R26R(+/-) double transgenic mice with heterozygous Ihh(+/-) mice and monitored reporter beta-galactosidase activity and gene expression in triple-transgenic progeny. In control Gdf5-Cre(+/-)/R26R(+/-)/Ihh(+/-) limbs, reporter-positive cells were present in developing interzones, articulating layers, and synovial lining tissue and absent from underlying growth plates. In mutant Gdf5-Cre(+/-)/R26R(+/-)/Ihh(-/-) specimens, reporter-positive cells were present also. However, the cells were mostly located around the prospective and uninterrupted digit joint sites and, interestingly, still expressed Erg, tenascin-C, and Gdf5. Topographical analysis revealed that interzone and associated cells were not uniformly distributed, but were much more numerous ventrally. A similar topographical bias was seen for cavitation process and capsule primordia formation. In sum, Ihh is a critical and possibly direct regulator of joint development. In its absence, distribution and function of Gdf5-expressing interzone-associated cells are abnormal, but their patterning at prospective joint sites still occurs. The joint-forming functions of the cells appear to normally involve a previously unsuspected asymmetric distribution along the ventral-to-dorsal plane of the developing joint.

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Year:  2007        PMID: 18083924      PMCID: PMC2673545          DOI: 10.1196/annals.1402.063

Source DB:  PubMed          Journal:  Ann N Y Acad Sci        ISSN: 0077-8923            Impact factor:   5.691


  47 in total

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Journal:  Proc Natl Acad Sci U S A       Date:  2004-05-26       Impact factor: 11.205

3.  Development of the metatarsophalangeal joint of the chick embryo: morphological, ultrastructural and histochemical studies.

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Journal:  Am J Anat       Date:  1977-10

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Authors:  N Holder
Journal:  J Embryol Exp Morphol       Date:  1977-06

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Authors:  M Pacifici; E B Golden; O Oshima; I M Shapiro; P S Leboy; S L Adams
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6.  Wnt-5a and Wnt-7a are expressed in the developing chick limb bud in a manner suggesting roles in pattern formation along the proximodistal and dorsoventral axes.

Authors:  C N Dealy; A Roth; D Ferrari; A M Brown; R A Kosher
Journal:  Mech Dev       Date:  1993-10       Impact factor: 1.882

7.  Development of the diarthrodial joints in the rat embryo.

Authors:  D Mitrovic
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8.  Ext1-dependent heparan sulfate regulates the range of Ihh signaling during endochondral ossification.

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9.  Indian hedgehog and syndecans-3 coregulate chondrocyte proliferation and function during chick limb skeletogenesis.

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10.  Transcription factor ERG variants and functional diversification of chondrocytes during limb long bone development.

Authors:  M Iwamoto; Y Higuchi; E Koyama; M Enomoto-Iwamoto; K Kurisu; H Yeh; W R Abrams; J Rosenbloom; M Pacifici
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  30 in total

1.  Hox11 genes establish synovial joint organization and phylogenetic characteristics in developing mouse zeugopod skeletal elements.

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Review 3.  Articular Cartilage: Structural and Developmental Intricacies and Questions.

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Review 4.  TGF-β Family Signaling in Connective Tissue and Skeletal Diseases.

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5.  Investigating the mechanistic basis of biomechanical input controlling skeletal development: exploring the interplay with Wnt signalling at the joint.

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Review 6.  Building and maintaining joints by exquisite local control of cell fate.

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Review 7.  Mechanisms of synovial joint and articular cartilage development.

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Review 8.  Signaling networks in joint development.

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9.  Hedgehog inhibits β-catenin activity in synovial joint development and osteoarthritis.

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Review 10.  Genesis and morphogenesis of limb synovial joints and articular cartilage.

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