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DESCRIPTION (provided by applicant): Calcium pyrophosphate dihydrate (CPPD) deposition disease is a common form of degenerative arthritis preferentially targeting the elderly. Affected patients have a severe chronic arthritis for which there are currently no therapies. As the population ages, CPPD deposition disease and other forms of degenerative arthritis will present an increasing societal burden in terms of health care and quality of life costs. CPPD crystals form in articular fibro-and hyaline cartilage. Their formation requires the interaction of extracellular pyrophosphate and calcium in a milieu of disordered pericellular matrix. The contributions of cartilage extracellular matrix to CPPD crystal formation remain poorly characterized and are the focus of this work. We identified the transglutaminase (Tgase) family of enzymes as important participants in CPPD crystal formation. Tgases catalyze the formation of unique crosslinks between or within proteins. Articular cartilage contains two Tgase enzymes, type II Tgase and Factor XIIIA (FXIIIA). Tgase activity dramatically increases with age in articular cartilage, and is present in the pericellular chondrocyte matrix at sites of potential crystal formation. Inhibition of Tgase activity suppresses CPPD crystal formation in vitro, while Tgase overexpression causes matrix mineralization. We hypothesize that increased Tgase activity in the extracellular matrix of aging cartilage contributes to CPPD crystal formation by crosslinking key CPPD crystal-promoting proteins into pericellular matrix. We will show that 1) extracellular matrix Tgase activity participates in CPPD crystal formation; 2) FXIIIA is the predominant Tgase in cartilage extracellular matrix; and 3) three key Tgase substrates (osteopontin, SPARC, and fibrillin 1) are trapped in the pericellular matrix by Tgase and directly participate in CPPD crystal formation. We will explore these hypotheses by using porcine cartilage from animals of three age groups, and human cartilage from patients with CPPD deposition disease or osteoarthritis. We will use two models of CPPD crystal formation to investigate the role of Tgase and its substrate proteins in CPPD crystal formation. Immunohistochemical studies of diseased human cartilage will be used to confirm the relevance of these findings to CPPD disease. These studies will contribute to our understanding of CPPD deposition disease, so that effective therapies for this common and disabling form of arthritis can be designed.
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DOI: 10.1097/rhu.0b013e3181953a8e
发表时间: 2009-01-01
期刊: JCR-JOURNAL OF CLINICAL RHEUMATOLOGY
影响因子: 3.4
作者: [Rosenthal, Ann K.]
通讯作者: Rosenthal, Ann K.
DOI: 10.2310/jim.0b013e3181954ac6
发表时间: 2009-03
期刊: Journal of investigative medicine : the official publication of the American Federation for Clinical Research
影响因子: --
作者: [Rosenthal AK, Gohr CM, Mitton E, Monnier V, Burner T]
通讯作者: Burner T
Regulation of transglutaminase activity in articular chondrocytes through thrombin receptor-mediated factor XIII synthesis.
通过凝血酶受体介导的因子 XIII 合成调节关节软骨细胞中的转谷氨酰胺酶活性。
DOI: 10.1160/th03-07-0462
发表时间: 2004
期刊: Thrombosis and haemostasis
影响因子: 6.7
作者: [Rosenthal,AnnK, Mosesson,MichaelW, Gohr,ClaudiaM, Masuda,Ikuko, Heinkel,David, Seibenlist,KevinR]
通讯作者: Seibenlist,KevinR
DOI: 10.1016/s1063-4584(03)00074-8
发表时间: 2003-06
期刊: Osteoarthritis and cartilage
影响因子: 7
作者: [A. Rosenthal;D. Heinkel;C. Gohr]
通讯作者: A. Rosenthal;D. Heinkel;C. Gohr
6
    Mutations in Osteoprotegerin Cause Calcium Pyrophosphate Deposition Disease
    Mutations in Osteoprotegerin Cause Calcium Pyrophosphate Deposition Disease
    Mutations in Osteoprotegerin Cause Calcium Pyrophosphate Deposition Disease
    Novel roles for articular cartilage vesicles in osteoarthritis
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