Literature DB >> 18374641

Mechanical signals modulated vascular endothelial growth factor-A (VEGF-A) alternative splicing in osteoblastic cells through actin polymerisation.

Céline Faure1, Marie-Thérèse Linossier, Luc Malaval, Marie-Hélène Lafage-Proust, Sylvie Peyroche, Laurence Vico, Alain Guignandon.   

Abstract

Since VEGF-A is involved in mechanically induced bone gain and because vegf exists under 6 isoforms exerting various biological effects, we studied vegf isoform expression and VEGF protein production in osteoblastic cells (rat Ros17/2.8 and human osteoblasts) submitted to 4 mechanical regimens. Mechanical regimens (1% stretch deformation) were designed with a fixed number of cycles (450) delivered at various frequencies (0.05 to 5 Hz). We found a negative correlation (R(2)=0.76, p<0.0001) between production of soluble VEGF and mechanical stretch frequency and a positive correlation (R(2)=0.99, p<0.0001) between production of matrix-bound VEGF and mechanical stretch frequency. mRNA expressions of soluble VEGF isoforms (121, 165) were specifically expressed under low frequency while matrix-bound VEGF isoforms (206, 189, 165, 145) were specifically expressed under high frequency in human osteoblasts. As f-actin stress fiber formation was significantly increased selectively in high frequency conditions, we disrupted actin fibers in Ros17/2.8 and found that immobilisation of VEGF was abolished. Conversely, Jasplakinolide treatment which increases stress fiber formation was able to mimic high frequency stretch-induced immobilisation of VEGF. Thus, we speculate that the stretch-induced increase in cell tension is responsible for matrix-bound vegf isoform production. Mechanically induced selection of soluble or matrix-bound VEGF production may modify osteoblast and endothelial cell crosstalk crucial during osteogenesis and fracture healing.

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Year:  2008        PMID: 18374641     DOI: 10.1016/j.bone.2008.02.011

Source DB:  PubMed          Journal:  Bone        ISSN: 1873-2763            Impact factor:   4.398


  23 in total

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Review 2.  Impact of mechanical stretch on the cell behaviors of bone and surrounding tissues.

Authors:  Hye-Sun Yu; Jung-Ju Kim; Hae-Won Kim; Mark P Lewis; Ivan Wall
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3.  Alternative splicing in bone following mechanical loading.

Authors:  Sara M Mantila Roosa; Yunlong Liu; Charles H Turner
Journal:  Bone       Date:  2010-11-21       Impact factor: 4.398

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Authors:  Alain Guignandon; Céline Faure; Thibaut Neutelings; Aline Rattner; Pierre Mineur; Marie-Thérèse Linossier; Norbert Laroche; Charles Lambert; Christophe Deroanne; Betty Nusgens; René Demets; Alain Colige; Laurence Vico
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8.  Mechano-regulation of alternative splicing.

Authors:  Huan Liu; Liling Tang
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Review 9.  Molecular diversity of VEGF-A as a regulator of its biological activity.

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10.  Mechanical strain promotes osteoblast ECM formation and improves its osteoinductive potential.

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Journal:  Biomed Eng Online       Date:  2012-10-25       Impact factor: 2.819

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