Literature DB >> 11771659

Large-scale screening for candidate genes of ossification of the posterior longitudinal ligament of the spine.

Kozo Furushima1, Kazuki Shimo-Onoda, Shingo Maeda, Takahiro Nobukuni, Katsunori Ikari, Hiroaki Koga, Setsuro Komiya, Toshiaki Nakajima, Seiko Harata, Ituro Inoue.   

Abstract

Ossification of the posterior longitudinal ligament of the spine (OPLL) is the predominant myelopathy among Japanese, and is usually diagnosed by ectopic bone formation in the paravertebral ligament in Japanese and other Asians. To detect genetic determinants associated with OPLL, we performed an extensive nonparametric linkage study with 126 affected sib-pairs using markers for various candidate genes by distinct analyses, SIBPAL and GENEHUNTER. Eighty-eight candidate genes were selected by comparing the genes identified by complementary DNA (cDNA) microarray analysis of systematic gene expression profiles during osteoblastic differentiation of human mesenchymal stem cells with the genes known to be involved in bone metabolism. Of the 24 genes regulated during osteoblastic differentiation, only one, the alpha B crystalline gene, showed evidence of linkage (p = 0.016, nonparametric linkage [NPL] score = 1.83). Of 64 genes known to be associated with bone metabolism, 7 showed weak evidence of linkage by SIBPAL analysis (p < 0.05): cadherin 13 (CDH13), bone morphogenetic protein 4 (BMP4), proteoglycan 1 (PRG1), transforming growth factor beta 3 (TGFb3), osteopontin (OPN), parathyroid hormone receptor 1 (PTHR1), and insulin-like growth factor 1 (IGF1). Among these genes, BMP4 (NPL = 2.23), CDH13 (NPL = 2.00), TGFb3 (NPL = 1.30), OPN (NPL = 1.15), and PTHR1 (NPL = 1.00) showed evidence of linkage by GENEHUNTER. Only BMP4 reached criteria of suggestive evidence of linkage. Because this gene is a well-known factor in osteogenetic function, BMP4 should be screened in further study for the polymorphism responsible.

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Year:  2002        PMID: 11771659     DOI: 10.1359/jbmr.2002.17.1.128

Source DB:  PubMed          Journal:  J Bone Miner Res        ISSN: 0884-0431            Impact factor:   6.741


  20 in total

1.  Genomewide linkage and linkage disequilibrium analyses identify COL6A1, on chromosome 21, as the locus for ossification of the posterior longitudinal ligament of the spine.

Authors:  Toshihiro Tanaka; Katsunori Ikari; Kozo Furushima; Akihiro Okada; Hiroshi Tanaka; Ken-Ichi Furukawa; Kenichi Yoshida; Toshiyuki Ikeda; Shiro Ikegawa; Steven C Hunt; Jun Takeda; Satoshi Toh; Seiko Harata; Toshiaki Nakajima; Ituro Inoue
Journal:  Am J Hum Genet       Date:  2003-09-04       Impact factor: 11.025

2.  A large-scale genetic association study of ossification of the posterior longitudinal ligament of the spine.

Authors:  Taizo Horikoshi; Koichi Maeda; Yoshiharu Kawaguchi; Kazuhiro Chiba; Kanji Mori; Yu Koshizuka; Shigeru Hirabayashi; Kazuhito Sugimori; Morio Matsumoto; Hiroshi Kawaguchi; Makoto Takahashi; Hisashi Inoue; Tomoatsu Kimura; Yoshitaka Matsusue; Itsuro Inoue; Hisatoshi Baba; Kozo Nakamura; Shiro Ikegawa
Journal:  Hum Genet       Date:  2006-04-12       Impact factor: 4.132

Review 3.  Molecular genetic studies of gene identification for osteoporosis: a 2004 update.

Authors:  Yong-Jun Liu; Hui Shen; Peng Xiao; Dong-Hai Xiong; Li-Hua Li; Robert R Recker; Hong-Wen Deng
Journal:  J Bone Miner Res       Date:  2006-10       Impact factor: 6.741

4.  Two novel BMP-2 variants identified in patients with thoracic ossification of the ligamentum flavum.

Authors:  Xiaochen Qu; Zhongqiang Chen; Dongwei Fan; Shen Xiang; Chuiguo Sun; Yan Zeng; Weishi Li; Zhaoqing Guo; Qiang Qi; Woquan Zhong; Yun Jiang
Journal:  Eur J Hum Genet       Date:  2017-02-01       Impact factor: 4.246

Review 5.  Genomic profiling of mesenchymal stem cells.

Authors:  Danijela Menicanin; P Mark Bartold; Andrew C W Zannettino; Stan Gronthos
Journal:  Stem Cell Rev Rep       Date:  2009-02-18       Impact factor: 5.739

6.  Role of Runx2 polymorphisms in risk and prognosis of ossification of posterior longitudinal ligament.

Authors:  Feng Chang; Lijun Li; Gang Gao; Shengqiang Ding; Jincai Yang; Ting Zhang; Genle Zuo
Journal:  J Clin Lab Anal       Date:  2016-10-05       Impact factor: 2.352

7.  A genome-wide sib-pair linkage analysis of ossification of the posterior longitudinal ligament of the spine.

Authors:  Tatsuki Karasugi; Masahiro Nakajima; Katsunori Ikari; Takashi Tsuji; Morio Matsumoto; Kazuhiro Chiba; Kenzo Uchida; Yoshiharu Kawaguchi; Hiroshi Mizuta; Naoshi Ogata; Motoki Iwasaki; Shingo Maeda; Takuya Numasawa; Kuniyoshi Abumi; Tsuyoshi Kato; Hiroshi Ozawa; Toshihiko Taguchi; Takashi Kaito; Masashi Neo; Masashi Yamazaki; Nobuaki Tadokoro; Munehito Yoshida; Shinnosuke Nakahara; Kenji Endo; Shiro Imagama; Satoru Demura; Kimiaki Sato; Atsushi Seichi; Shoichi Ichimura; Masahiko Watanabe; Kei Watanabe; Yutaka Nakamura; Kanji Mori; Hisatoshi Baba; Yoshiaki Toyama; Shiro Ikegawa
Journal:  J Bone Miner Metab       Date:  2012-11-09       Impact factor: 2.626

8.  Mechanical strain induces Cx43 expression in spinal ligament fibroblasts derived from patients presenting ossification of the posterior longitudinal ligament.

Authors:  Hai-Song Yang; Xu-Hua Lu; De-Yu Chen; Wen Yuan; Li-Li Yang; Yu Chen; Hai-Long He
Journal:  Eur Spine J       Date:  2011-03-26       Impact factor: 3.134

Review 9.  Gene expression studies of osteoporosis: implications for microarray research.

Authors:  V Dvornyk; R R Recker; H-W Deng
Journal:  Osteoporos Int       Date:  2003-04-29       Impact factor: 4.507

Review 10.  Hormones and growth factors in the pathogenesis of spinal ligament ossification.

Authors:  Hai Li; Lei-Sheng Jiang; Li-Yang Dai
Journal:  Eur Spine J       Date:  2007-04-11       Impact factor: 3.134

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