Literature DB >> 21442291

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

Hai-Song Yang1, Xu-Hua Lu, De-Yu Chen, Wen Yuan, Li-Li Yang, Yu Chen, Hai-Long He.   

Abstract

Ossification of the posterior longitudinal ligament (OPLL) is characterized by ectopic bone formation in spinal ligaments. Some evidence indicates that mechanical strain can lead to the development of OPLL, although the signaling mechanism is not fully understood. Connexin43 (Cx43), a gap-junction protein, has been shown to be of particular importance in bone formation. We hypothesized that Cx43 may play an important role in the signal transmission induced by mechanical strain during the development of OPLL. To explore this possibility, we cultured fibroblasts from spinal ligaments of OPLL and non-OPLL patients and preloaded mechanical stretch onto the cells via a Flexercell 4000 Tension Plus system. We evaluated expression changes in osteocalcin (OCN), alkaline phosphatase (ALP), type I collagen (COL I) and Cx43 via semi-quantitative RT-PCR and western blotting at 12 and 24 h after mechanical strain application in contrast to static conditions. We observed a significant gene up-regulation of OCN, ALP and COL I and Cx43 protein in OPLL cells after mechanical strain application, but no changes in non-OPLL cells. Notably, after RNA interference targeting Cx43 was performed in OPLL cells, we found that there were no significant changes in the expressions of OCN, ALP, COL I and Cx43 after the mechanical strain was applied for 24 h. Thus, we propose that the increase in Cx43 expression induced by mechanical strain in OPLL cells plays an important role in the progression of OPLL.

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Year:  2011        PMID: 21442291      PMCID: PMC3175908          DOI: 10.1007/s00586-011-1767-9

Source DB:  PubMed          Journal:  Eur Spine J        ISSN: 0940-6719            Impact factor:   3.134


  20 in total

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Authors:  Jean Xin Jiang; Arlene Janel Siller-Jackson; Sirisha Burra
Journal:  Front Biosci       Date:  2007-01-01

Review 2.  Current topics in pharmacological research on bone metabolism: molecular basis of ectopic bone formation induced by mechanical stress.

Authors:  Ken-Ichi Furukawa
Journal:  J Pharmacol Sci       Date:  2006-03-04       Impact factor: 3.337

3.  Long-term follow-up results of anterior interbody fusion applied for cervical myelopathy due to ossification of the posterior longitudinal ligament.

Authors:  K Onari; N Akiyama; S Kondo; A Toguchi; H Mihara; T Tsuchiya
Journal:  Spine (Phila Pa 1976)       Date:  2001-03-01       Impact factor: 3.468

4.  Low peak bone mass and attenuated anabolic response to parathyroid hormone in mice with an osteoblast-specific deletion of connexin43.

Authors:  Dong Jin Chung; Charlles H M Castro; Marcus Watkins; Joseph P Stains; Min Young Chung; Vera Lucia Szejnfeld; Klaus Willecke; Martin Theis; Roberto Civitelli
Journal:  J Cell Sci       Date:  2006-09-19       Impact factor: 5.285

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

Authors:  Kozo Furushima; Kazuki Shimo-Onoda; Shingo Maeda; Takahiro Nobukuni; Katsunori Ikari; Hiroaki Koga; Setsuro Komiya; Toshiaki Nakajima; Seiko Harata; Ituro Inoue
Journal:  J Bone Miner Res       Date:  2002-01       Impact factor: 6.741

Review 6.  Ossification of the cervical posterior longitudinal ligament: a review.

Authors:  Nancy Epstein
Journal:  Neurosurg Focus       Date:  2002-08-15       Impact factor: 4.047

7.  Modulation of osteoblast gap junction connectivity by serum, TNFalpha, and TRAIL.

Authors:  Allison C Sharrow; Yanan Li; Amanda Micsenyi; Reed D Griswold; Alan Wells; Satdarshan S P Monga; Harry C Blair
Journal:  Exp Cell Res       Date:  2007-10-23       Impact factor: 3.905

Review 8.  Cell-cell communication in the osteoblast/osteocyte lineage.

Authors:  Roberto Civitelli
Journal:  Arch Biochem Biophys       Date:  2008-04-11       Impact factor: 4.013

9.  A patient with two re-surgeries for delayed myelopathy due to progression of ossification of the posterior longitudinal ligaments after cervical laminoplasty.

Authors:  Yasuaki Tokuhashi; Yasumitsu Ajiro; Natsuki Umezawa
Journal:  Spine (Phila Pa 1976)       Date:  2009-01-15       Impact factor: 3.468

10.  The role of gap junctions in megakaryocyte-mediated osteoblast proliferation and differentiation.

Authors:  Wendy A Ciovacco; Carolyn G Goldberg; Amanda F Taylor; Justin M Lemieux; Mark C Horowitz; Henry J Donahue; Melissa A Kacena
Journal:  Bone       Date:  2008-09-10       Impact factor: 4.398

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  10 in total

1.  The endoplasmic reticulum stress response participates in connexin 43-mediated ossification of the posterior longitudinal ligament.

Authors:  Lei Shi; Guodong Shi; Tiefeng Li; Yibin Luo; Deyu Chen; Jinhao Miao; Yu Chen
Journal:  Am J Transl Res       Date:  2019-07-15       Impact factor: 4.060

Review 2.  Connexins and pannexins in the skeleton: gap junctions, hemichannels and more.

Authors:  Lilian I Plotkin; Joseph P Stains
Journal:  Cell Mol Life Sci       Date:  2015-06-20       Impact factor: 9.261

3.  Upregulated expression of PERK in spinal ligament fibroblasts from the patients with ossification of the posterior longitudinal ligament.

Authors:  Yu Chen; Xinwei Wang; Haisong Yang; Jinhao Miao; Xiaowei Liu; Deyu Chen
Journal:  Eur Spine J       Date:  2013-10-07       Impact factor: 3.134

4.  Dysregulation of lncRNA-CCRR contributes to brain metastasis of breast cancer by intercellular coupling via regulating connexin 43 expression.

Authors:  Deheng Li; Liangdong Li; Xin Chen; Changshuai Zhou; Bin Hao; Yiqun Cao
Journal:  J Cell Mol Med       Date:  2021-04-01       Impact factor: 5.310

5.  Serum Periostin Level Reflects Progression of Ossification of the Posterior Longitudinal Ligament.

Authors:  Yoshiharu Kawaguchi; Isao Kitajima; Taketoshi Yasuda; Shoji Seki; Kayo Suzuki; Hiroto Makino; Yasuhiro Ujihara; Tomohiro Ueno; Nguyen Tran Canh Tung; Yasuhito Yahara
Journal:  JB JS Open Access       Date:  2022-02-04

6.  The Effect of the NFκB-USP9X-Cx43 Axis on the Dynamic Balance of Bone Formation/Degradation during Ossification of the Posterior Longitudinal Ligament of the Cervical Spine.

Authors:  Xiaoqiu Yuan; Yongfei Guo; Jilu Liu; Jingchuan Sun; Lei Shi; Jinhao Miao; Jiangang Shi; Yu Chen
Journal:  Oxid Med Cell Longev       Date:  2022-03-29       Impact factor: 6.543

7.  Genetic Odyssey to Ossification of the Posterior Longitudinal Ligament in the Cervical Spine: A Systematic Review.

Authors:  Young Il Won; Chang-Hyun Lee; Woon Tak Yuh; Shin Won Kwon; Chi Heon Kim; Chun Kee Chung
Journal:  Neurospine       Date:  2022-06-30

8.  Endoplasmic reticulum stress regulates mechanical stress-induced ossification of posterior longitudinal ligament.

Authors:  Lei Shi; Jinhao Miao; Deyu Chen; Jiangang Shi; Yu Chen
Journal:  Eur Spine J       Date:  2019-07-19       Impact factor: 3.134

9.  Uniaxial cyclic stretch promotes osteogenic differentiation and synthesis of BMP2 in the C3H10T1/2 cells with BMP2 gene variant of rs2273073 (T/G).

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Journal:  PLoS One       Date:  2014-09-05       Impact factor: 3.240

Review 10.  The Pathogenesis of Ossification of the Posterior Longitudinal Ligament.

Authors:  Liang Yan; Rui Gao; Yang Liu; Baorong He; Shemin Lv; Dingjun Hao
Journal:  Aging Dis       Date:  2017-10-01       Impact factor: 6.745

  10 in total

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