Literature DB >> 10759460

The contractile apparatus and mechanical properties of airway smooth muscle.

S J Gunst1, D D Tang.   

Abstract

The functional properties of airway smooth muscle are fundamental to the properties of the airways in vivo. However, many of the distinctive characteristics of smooth muscle are not easily accounted for on the basis of molecular models developed to account for the properties of striated muscles. The specialized ultrastructural features and regulatory mechanisms present in smooth muscle are likely to form the basis for many of its characteristic properties. The molecular organization and structure of the contractile apparatus in smooth muscle is consistent with a model of force generation based on the relative sliding of adjacent actin and myosin filaments. In airway smooth muscle, actomyosin activation is initiated by the phosphorylation of the 20 kDa light chain of myosin; but there is conflicting evidence regarding the role of myosin light chain phosphorylation in tension maintenance. Tension generated by the contractile filaments is transmitted throughout the cell via a network of actin filaments anchored at dense plaques at the cell membrane, where force is transmitted to the extracellular matrix via transmembrane integrins. Proteins bound to actin and/or localized to actin filament anchorage sites may participate in regulating the shape of the smooth muscle cell and the organization of its contractile filament system. These proteins may also participate in signalling pathways that regulate the crossbridge activation and other functions of the actin cytoskeleton. The length-dependence of active force and the mechanical plasticity of airway smooth muscle may play an important role in determining airway responsiveness during lung volume changes in vivo. The molecular basis for the length-dependence of tension in smooth muscle differs from that in skeletal muscle, and may involve mechano-transduction mechanisms that modulate contractile filament activation and cytoskeletal organization in response to changes in muscle length. The reorganization of contractile filaments may also underlie the plasticity of the mechanical response of airway smooth muscle. Changes in the structural organization and signalling pathways of airway smooth muscle cells resulting form alterations in mechanical forces in the lung may be important factors in the development of pathophysiological conditions of chronic airway hyperresponsiveness.

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Year:  2000        PMID: 10759460     DOI: 10.1034/j.1399-3003.2000.15.29.x

Source DB:  PubMed          Journal:  Eur Respir J        ISSN: 0903-1936            Impact factor:   16.671


  55 in total

1.  Probing the viscoelastic behavior of cultured airway smooth muscle cells with atomic force microscopy: stiffening induced by contractile agonist.

Authors:  Benjamin A Smith; Barbara Tolloczko; James G Martin; Peter Grütter
Journal:  Biophys J       Date:  2005-01-21       Impact factor: 4.033

Review 2.  Interactions of airway smooth muscle cells with their tissue matrix: implications for contraction.

Authors:  Wenwu Zhang; Susan J Gunst
Journal:  Proc Am Thorac Soc       Date:  2008-01-01

Review 3.  Intermediate filaments in smooth muscle.

Authors:  Dale D Tang
Journal:  Am J Physiol Cell Physiol       Date:  2008-02-06       Impact factor: 4.249

4.  Mechanotransduction, asthma, and airway smooth muscle.

Authors:  Ben Fabry; Jeffrey J Fredberg
Journal:  Drug Discov Today Dis Models       Date:  2007

5.  Myosin phosphorylation triggers actin polymerization in vascular smooth muscle.

Authors:  Xuesong Chen; Kristin Pavlish; Joseph N Benoit
Journal:  Am J Physiol Heart Circ Physiol       Date:  2008-10-03       Impact factor: 4.733

6.  Mast cells promote airway smooth muscle cell differentiation via autocrine up-regulation of TGF-beta 1.

Authors:  Lucy Woodman; Salman Siddiqui; Glenn Cruse; Amanda Sutcliffe; Ruth Saunders; Davinder Kaur; Peter Bradding; Christopher Brightling
Journal:  J Immunol       Date:  2008-10-01       Impact factor: 5.422

Review 7.  Airway smooth muscle and bronchospasm: fluctuating, fluidizing, freezing.

Authors:  Ramaswamy Krishnan; Xavier Trepat; Trang T B Nguyen; Guillaume Lenormand; Madavi Oliver; Jeffrey J Fredberg
Journal:  Respir Physiol Neurobiol       Date:  2008-04-20       Impact factor: 1.931

8.  Glia maturation factor-γ phosphorylation at Tyr-104 regulates actin dynamics and contraction in human airway smooth muscle.

Authors:  Tao Wang; Rachel A Cleary; Ruping Wang; Dale D Tang
Journal:  Am J Respir Cell Mol Biol       Date:  2014-11       Impact factor: 6.914

9.  The focal adhesion protein paxillin regulates contraction in canine tracheal smooth muscle.

Authors:  Dale D Tang; Ming-Fang Wu; Anabelle M Opazo Saez; Susan J Gunst
Journal:  J Physiol       Date:  2002-07-15       Impact factor: 5.182

Review 10.  Airway smooth muscle dynamics: a common pathway of airway obstruction in asthma.

Authors:  S S An; T R Bai; J H T Bates; J L Black; R H Brown; V Brusasco; P Chitano; L Deng; M Dowell; D H Eidelman; B Fabry; N J Fairbank; L E Ford; J J Fredberg; W T Gerthoffer; S H Gilbert; R Gosens; S J Gunst; A J Halayko; R H Ingram; C G Irvin; A L James; L J Janssen; G G King; D A Knight; A M Lauzon; O J Lakser; M S Ludwig; K R Lutchen; G N Maksym; J G Martin; T Mauad; B E McParland; S M Mijailovich; H W Mitchell; R W Mitchell; W Mitzner; T M Murphy; P D Paré; R Pellegrino; M J Sanderson; R R Schellenberg; C Y Seow; P S P Silveira; P G Smith; J Solway; N L Stephens; P J Sterk; A G Stewart; D D Tang; R S Tepper; T Tran; L Wang
Journal:  Eur Respir J       Date:  2007-05       Impact factor: 16.671

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