Literature DB >> 11518279

Homology of lubricin and superficial zone protein (SZP): products of megakaryocyte stimulating factor (MSF) gene expression by human synovial fibroblasts and articular chondrocytes localized to chromosome 1q25.

G D Jay1, U Tantravahi, D E Britt, H J Barrach, C J Cha.   

Abstract

We have previously identified megakaryocyte stimulating factor (MSF) gene expression by synovial fibroblasts as the origin of lubricin in the synovial cavity. Lubricin is a mucinous glycoprotein responsible for the boundary lubrication of articular cartilage. MSF has a significant homology to vitronectin and is composed of 12 exons. RNA was purified from human synovial fibroblasts and articular chondrocytes grown in vitro from tissue explants obtained from subjects without degenerative joint disease. RT-PCR was used with multiple complimentary primer pairs spanning the central mucin expressing exon 6 of the MSF gene and individual exons on both the N- and C-terminal sides of exon 6. Exons 2, 4 and 5 appear to be variably expressed by synovial fibroblasts and articular chondrocytes. Lubricating mucin, in the form of MSF, is expressed by both chondrocytes and synovial fibroblasts in vitro. Both lubricin and superficial zone protein (SZP), a related proteoglycan, share a similar primary structure but could differ in post-translational modifications with O-linked oligosaccharides which are predominant in lubricin and with limited amounts chondroitin and keratan sulfate found in SZP. Since most of the MSF exons are involved in the expression of lubricating mucin, a strong homology to vitronectin persists. It is therefore appropriate to consider that both SZP and lubricin occupy a new class of biomolecules termed tribonectins. Screening of a human genome bacterial artificial chromsome (BAC) library with a cDNA primer pair complimentary for exon 6 identified two clones. Both clones were complimentary for chromosome 1q25 by in situ hybridization. This same locus was previously implicated in camptodactyl-arthropathy-pericarditis syndrome (CAP) by genetic mapping. It is hypothesized that CAP, a large joint arthropathy, may be associated with ineffective boundary lubrication provided by synovial fluid.

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Year:  2001        PMID: 11518279     DOI: 10.1016/S0736-0266(00)00040-1

Source DB:  PubMed          Journal:  J Orthop Res        ISSN: 0736-0266            Impact factor:   3.494


  65 in total

1.  Differential gene expression in the periprosthetic membrane: lubricin as a new possible pathogenetic factor in prosthesis loosening.

Authors:  Lars Morawietz; Thorsten Gehrke; Lars Frommelt; Petra Gratze; Andreas Bosio; Johannes Möller; Bernhard Gerstmayer; Veit Krenn
Journal:  Virchows Arch       Date:  2003-05-29       Impact factor: 4.064

Review 2.  Engineering lubrication in articular cartilage.

Authors:  Sean M McNary; Kyriacos A Athanasiou; A Hari Reddi
Journal:  Tissue Eng Part B Rev       Date:  2012-01-06       Impact factor: 6.389

3.  Effect of disulfide bonding and multimerization on proteoglycan 4's cartilage boundary lubricating ability and adsorption.

Authors:  Saleem Abubacker; Dragana Ponjevic; Hyun O Ham; Phillip B Messersmith; John R Matyas; Tannin A Schmidt
Journal:  Connect Tissue Res       Date:  2015-12-02       Impact factor: 3.417

4.  Synovial joint formation requires local Ext1 expression and heparan sulfate production in developing mouse embryo limbs and spine.

Authors:  Christina Mundy; Tadashi Yasuda; Takashi Kinumatsu; Yu Yamaguchi; Masahiro Iwamoto; Motomi Enomoto-Iwamoto; Eiki Koyama; Maurizio Pacifici
Journal:  Dev Biol       Date:  2010-12-23       Impact factor: 3.582

5.  Molecular resurfacing of cartilage with proteoglycan 4.

Authors:  K Chawla; H O Ham; T Nguyen; P B Messersmith
Journal:  Acta Biomater       Date:  2010-03-23       Impact factor: 8.947

6.  The secreted glycoprotein lubricin protects cartilage surfaces and inhibits synovial cell overgrowth.

Authors:  David K Rhee; Jose Marcelino; MacArthur Baker; Yaoqin Gong; Patrick Smits; Véronique Lefebvre; Gregory D Jay; Matthew Stewart; Hongwei Wang; Matthew L Warman; John D Carpten
Journal:  J Clin Invest       Date:  2005-03       Impact factor: 14.808

7.  Stimulation of the superficial zone protein and lubrication in the articular cartilage by human platelet-rich plasma.

Authors:  Ryosuke Sakata; Sean M McNary; Kazumasa Miyatake; Cassandra A Lee; James M Van den Bogaerde; Richard A Marder; A Hari Reddi
Journal:  Am J Sports Med       Date:  2015-03-26       Impact factor: 6.202

8.  Cell origin, volume and arrangement are drivers of articular cartilage formation, morphogenesis and response to injury in mouse limbs.

Authors:  Rebekah S Decker; Hyo-Bin Um; Nathaniel A Dyment; Naiga Cottingham; Yu Usami; Motomi Enomoto-Iwamoto; Mark S Kronenberg; Peter Maye; David W Rowe; Eiki Koyama; Maurizio Pacifici
Journal:  Dev Biol       Date:  2017-04-21       Impact factor: 3.582

9.  Microscale frictional response of bovine articular cartilage from atomic force microscopy.

Authors:  Seonghun Park; Kevin D Costa; Gerard A Ateshian
Journal:  J Biomech       Date:  2004-11       Impact factor: 2.712

10.  A distinct cohort of progenitor cells participates in synovial joint and articular cartilage formation during mouse limb skeletogenesis.

Authors:  Eiki Koyama; Yoshihiro Shibukawa; Motohiko Nagayama; Hiroki Sugito; Blanche Young; Takahito Yuasa; Takahiro Okabe; Takanaga Ochiai; Nobuhiko Kamiya; Ryan B Rountree; David M Kingsley; Masahiro Iwamoto; Motomi Enomoto-Iwamoto; Maurizio Pacifici
Journal:  Dev Biol       Date:  2008-01-26       Impact factor: 3.582

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