Literature DB >> 14614988

Elastin induces myofibrillogenesis via a specific domain, VGVAPG.

Satyajit K Karnik1, Joshua D Wythe, Lise Sorensen, Benjamin S Brooke, Lisa D Urness, Dean Y Li.   

Abstract

A hallmark of vascular smooth muscle cells (VSMCs) is their dynamic ability to assemble and disassemble contractile proteins into sarcomeric units depending upon their phenotypic state. This phenotypic plasticity plays an important role during vascular development and in obstructive vascular disease. Previously, we showed that the Elastin gene product, tropoelastin, activates myofibrillar organization of VSMCs. Recently, others have suggested that elastin does not have a direct signaling role but rather binds to and alters the interactions of other matrix proteins with their cognate receptors or disrupts the binding of growth factors and cytokines. In contrast, we provide evidence that tropoelastin directly regulates contractile organization of VSMCs. First, we show that a discrete domain within tropoelastin, VGVAPG, induces myofibrillogenesis in a time- and dose-dependent fashion. We confirm specificity using a closely related control peptide that fails to stimulate actin stress fiber formation. Second, the activity of VGVAPG is not affected by the presence or absence of other serum or matrix components. Third, both the elastin hexapeptide and tropoelastin stimulate actin polymerization through a common pertussis toxin-sensitive G protein pathway that activates RhoA-GTPase and results in the conversion of G to F actin. Collectively, these data support a model whereby the elastin gene product, signaling through the VGVAPG domain, directly induces VSMC myofibrillogenesis.

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Year:  2003        PMID: 14614988     DOI: 10.1016/s0945-053x(03)00076-3

Source DB:  PubMed          Journal:  Matrix Biol        ISSN: 0945-053X            Impact factor:   11.583


  14 in total

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5.  Novel approach for endothelializing vascular devices: understanding and exploiting elastin-endothelial interactions.

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6.  Structural and cellular characterization of electrospun recombinant human tropoelastin biomaterials.

Authors:  Kathryn A McKenna; Kenton W Gregory; Rebecca C Sarao; Cheryl L Maslen; Robert W Glanville; Monica T Hinds
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Review 7.  Cell-matrix biology in vascular tissue engineering.

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8.  A novel cell adhesion region in tropoelastin mediates attachment to integrin αVβ5.

Authors:  Pearl Lee; Daniel V Bax; Marcela M M Bilek; Anthony S Weiss
Journal:  J Biol Chem       Date:  2013-11-29       Impact factor: 5.157

9.  Cell adhesion to tropoelastin is mediated via the C-terminal GRKRK motif and integrin alphaVbeta3.

Authors:  Daniel V Bax; Ursula R Rodgers; Marcela M M Bilek; Anthony S Weiss
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Review 10.  Elastin, arterial mechanics, and cardiovascular disease.

Authors:  Austin J Cocciolone; Jie Z Hawes; Marius C Staiculescu; Elizabeth O Johnson; Monzur Murshed; Jessica E Wagenseil
Journal:  Am J Physiol Heart Circ Physiol       Date:  2018-04-06       Impact factor: 4.733

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