Literature DB >> 21289288

Tropomyosin variants describe distinct functional subcellular domains in differentiated vascular smooth muscle cells.

Cynthia Gallant1, Sarah Appel, Philip Graceffa, Paul Leavis, Jim Jung-Ching Lin, Peter W Gunning, Galina Schevzov, Christine Chaponnier, Jon DeGnore, William Lehman, Kathleen G Morgan.   

Abstract

Tropomyosin (Tm) is known to be an important gatekeeper of actin function. Tm isoforms are encoded by four genes, and each gene produces several variants by alternative splicing, which have been proposed to play roles in motility, proliferation, and apoptosis. Smooth muscle studies have focused on gizzard smooth muscle, where a heterodimer of Tm from the α-gene (Tmsm-α) and from the β-gene (Tmsm-β) is associated with contractile filaments. In this study we examined Tm in differentiated mammalian vascular smooth muscle (dVSM). Liquid chromatography-tandem mass spectrometry (LC MS/MS) analysis and Western blot screening with variant-specific antibodies revealed that at least five different Tm proteins are expressed in this tissue: Tm6 (Tmsm-α) and Tm2 from the α-gene, Tm1 (Tmsm-β) from the β-gene, Tm5NM1 from the γ-gene, and Tm4 from the δ-gene. Tm6 is by far most abundant in dVSM followed by Tm1, Tm2, Tm5NM1, and Tm4. Coimmunoprecipitation and coimmunofluorescence studies demonstrate that Tm1 and Tm6 coassociate with different actin isoforms and display different intracellular localizations. Using an antibody specific for cytoplasmic γ-actin, we report here the presence of a γ-actin cortical cytoskeleton in dVSM cells. Tm1 colocalizes with cortical cytoplasmic γ-actin and coprecipitates with γ-actin. Tm6, on the other hand, is located on contractile bundles. These data indicate that Tm1 and Tm6 do not form a classical heterodimer in dVSM but rather describe different functional cellular compartments.

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Year:  2011        PMID: 21289288      PMCID: PMC3118631          DOI: 10.1152/ajpcell.00450.2010

Source DB:  PubMed          Journal:  Am J Physiol Cell Physiol        ISSN: 0363-6143            Impact factor:   4.249


  59 in total

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Journal:  Mol Cell Biol       Date:  1988-02       Impact factor: 4.272

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Journal:  Cell       Date:  1989-03-10       Impact factor: 41.582

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Journal:  Annu Rev Biophys Biophys Chem       Date:  1987

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Authors:  C Sanders; L D Burtnick; L B Smillie
Journal:  J Biol Chem       Date:  1986-09-25       Impact factor: 5.157

6.  Isolation and characterization of a 34,000-dalton calmodulin- and F-actin-binding protein from chicken gizzard smooth muscle.

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Journal:  Lab Anim Sci       Date:  1985-06

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Journal:  J Cell Biol       Date:  1988-08       Impact factor: 10.539

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  19 in total

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Authors:  Galina Schevzov; Shane P Whittaker; Thomas Fath; Jim Jc Lin; Peter W Gunning
Journal:  Bioarchitecture       Date:  2011-07-01

Review 2.  Structure and dynamics of the actin-based smooth muscle contractile and cytoskeletal apparatus.

Authors:  William Lehman; Kathleen G Morgan
Journal:  J Muscle Res Cell Motil       Date:  2012-02-07       Impact factor: 2.698

Review 3.  Non-receptor tyrosine kinases and the actin cytoskeleton in contractile vascular smooth muscle.

Authors:  Jacqueline Ohanian; Maria Pieri; Vasken Ohanian
Journal:  J Physiol       Date:  2014-12-23       Impact factor: 5.182

Review 4.  Elastic fibers and biomechanics of the aorta: Insights from mouse studies.

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Journal:  Matrix Biol       Date:  2019-03-15       Impact factor: 11.583

Review 5.  The role of mechanotransduction on vascular smooth muscle myocytes' [corrected] cytoskeleton and contractile function.

Authors:  George J C Ye; Alexander P Nesmith; Kevin Kit Parker
Journal:  Anat Rec (Hoboken)       Date:  2014-09       Impact factor: 2.064

6.  Cytoskeletal reorganization evoked by Rho-associated kinase- and protein kinase C-catalyzed phosphorylation of cofilin and heat shock protein 27, respectively, contributes to myogenic constriction of rat cerebral arteries.

Authors:  Alejandro Moreno-Domínguez; Ahmed F El-Yazbi; Hai-Lei Zhu; Olaia Colinas; X Zoë Zhong; Emma J Walsh; Dylan M Cole; Gary J Kargacin; Michael P Walsh; William C Cole
Journal:  J Biol Chem       Date:  2014-07-25       Impact factor: 5.157

Review 7.  Mechanisms of Vascular Smooth Muscle Contraction and the Basis for Pharmacologic Treatment of Smooth Muscle Disorders.

Authors:  F V Brozovich; C J Nicholson; C V Degen; Yuan Z Gao; M Aggarwal; K G Morgan
Journal:  Pharmacol Rev       Date:  2016-04       Impact factor: 25.468

8.  Structural analysis of smooth muscle tropomyosin α and β isoforms.

Authors:  Jampani Nageswara Rao; Roland Rivera-Santiago; Xiaochuan Edward Li; William Lehman; Roberto Dominguez
Journal:  J Biol Chem       Date:  2011-11-27       Impact factor: 5.157

Review 9.  Polymorphism in tropomyosin structure and function.

Authors:  Miro Janco; Worawit Suphamungmee; Xiaochuan Li; William Lehman; Sherwin S Lehrer; Michael A Geeves
Journal:  J Muscle Res Cell Motil       Date:  2013-07-07       Impact factor: 2.698

10.  Localization and function of Xinα in mouse skeletal muscle.

Authors:  Han-Zhong Feng; Qinchuan Wang; Rebecca S Reiter; Jenny L-C Lin; Jim J-C Lin; J-P Jin
Journal:  Am J Physiol Cell Physiol       Date:  2013-03-13       Impact factor: 4.249

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