Literature DB >> 633184

Mechanical properties of smooth muscle cells in the walls of arterial resistance vessels.

W Halpern, M J Mulvany, D M Warshaw.   

Abstract

1. Methods have been developed for measuring the dynamic mechanical response of arterial resistance vessels (i.d. 83--235 micrometer) with a time resolution of about 4 msec. 2. Observations of the microscope image of the smooth muscle cells in the walls of these vessels indicate that there is little intercellular compliance in this preparation, and that the mechanical properties of the activated preparation are a reflexion of the mechanical properties of the individual smooth muscle cells. 3. Under isometric conditions the force developed per unit cell area was about 350 mN/mm2. Under isotonic conditions the cells had a maximum velocity for shortening at 37 degrees C of about 0.17 lengths/sec. 4. Quick releases of activated vessels indicate that the instantaneous elastic characteristic of smooth muscle cells is approximately exponential. 5. The wall tension response to small (0.3%) square wave changes in circumference was proportional to the logarithm of the time following the start of each circumference change. 6. Active wall tension, deltaT, was varied by varying the Ca2+ concentration of the activating solution. Under these conditions the active dynamic stiffness, k, was proportional to deltaT, and was not temperature dependent. The active half response time, tau (the time, taken to recover half the tension change caused by a small change in circumference) was also proportional to deltaT, but here the constant of proportionality had a Q10 of about 1.8. 7. It is concluded that the quick release response and the square wave response are in part a function of the mechanical properties of the crossbridges between the contractile filaments. Calculations show that both these responses can be explained if it is assumed that there is a relatively compliant passive component in series with the crossbridges.

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Year:  1978        PMID: 633184      PMCID: PMC1282534          DOI: 10.1113/jphysiol.1978.sp012179

Source DB:  PubMed          Journal:  J Physiol        ISSN: 0022-3751            Impact factor:   5.182


  29 in total

1.  Non-hyperbolic force-velocity relationship in single muscle fibres.

Authors:  K A Edman; L A Mulieri; B Scubon-Mulieri
Journal:  Acta Physiol Scand       Date:  1976-10

2.  SMOOTH MUSCLE: AN ULTRASTRUCTURAL BASIS FOR THE DYNAMIC OF ITS CONTRACTION.

Authors:  J ROSENBLUTH
Journal:  Science       Date:  1965-06-04       Impact factor: 47.728

3.  Conduction in smooth muscle: comparative structural properties.

Authors:  C L PROSSER; G BURNSTOCK; J KAHN
Journal:  Am J Physiol       Date:  1960-09

4.  Muscle structure and theories of contraction.

Authors:  A F HUXLEY
Journal:  Prog Biophys Biophys Chem       Date:  1957

5.  The instantaneous elasticity of frog skeletal muscle fibres [proceedings].

Authors:  L E Ford; A F Huxley; R M Simmons
Journal:  J Physiol       Date:  1976-09       Impact factor: 5.182

6.  Contractile properties of small arterial resistance vessels in spontaneously hypertensive and normotensive rats.

Authors:  M J Mulvany; W Halpern
Journal:  Circ Res       Date:  1977-07       Impact factor: 17.367

7.  Reorientation of myofilaments during contraction of a vertebrate smooth muscle.

Authors:  B A Fisher; R M Bagby
Journal:  Am J Physiol       Date:  1977-01

8.  The force generated by a visceral smooth muscle.

Authors:  G Gabella
Journal:  J Physiol       Date:  1976-12       Impact factor: 5.182

9.  Series elasticity of urinary bladder smooth muscle.

Authors:  R S Alexander
Journal:  Am J Physiol       Date:  1976-11

10.  Studies on isolated smooth muscle cells: The contractile apparatus.

Authors:  J V Small
Journal:  J Cell Sci       Date:  1977-04       Impact factor: 5.285

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  27 in total

1.  Differential effects of myosin light chain kinase inhibition on contractility, force development and myosin light chain 20 phosphorylation of rat cervical and thoracic duct lymphatics.

Authors:  Zhanna V Nepiyushchikh; Sanjukta Chakraborty; Wei Wang; Michael J Davis; David C Zawieja; Mariappan Muthuchamy
Journal:  J Physiol       Date:  2011-09-19       Impact factor: 5.182

2.  A microfluidic platform for probing small artery structure and function.

Authors:  Axel Günther; Sanjesh Yasotharan; Andrei Vagaon; Conrad Lochovsky; Sascha Pinto; Jingli Yang; Calvin Lau; Julia Voigtlaender-Bolz; Steffen-Sebastian Bolz
Journal:  Lab Chip       Date:  2010-07-06       Impact factor: 6.799

3.  Limits to shortening in smooth muscle tissues.

Authors:  R A Meiss
Journal:  J Muscle Res Cell Motil       Date:  1992-04       Impact factor: 2.698

4.  Maximum shortening velocity of lymphatic muscle approaches that of striated muscle.

Authors:  Rongzhen Zhang; Anne I Taucer; Anatoliy A Gashev; Mariappan Muthuchamy; David C Zawieja; Michael J Davis
Journal:  Am J Physiol Heart Circ Physiol       Date:  2013-08-30       Impact factor: 4.733

5.  Chemerin receptor blockade improves vascular function in diabetic obese mice via redox-sensitive and Akt-dependent pathways.

Authors:  Karla Bianca Neves; Aurelie Nguyen Dinh Cat; Rheure Alves-Lopes; Katie Yates Harvey; Rafael Menezes da Costa; Nubia Souza Lobato; Augusto Cesar Montezano; Ana Maria de Oliveira; Rhian M Touyz; Rita C Tostes
Journal:  Am J Physiol Heart Circ Physiol       Date:  2018-09-14       Impact factor: 4.733

Review 6.  Regulation of Coronary Blood Flow.

Authors:  Adam G Goodwill; Gregory M Dick; Alexander M Kiel; Johnathan D Tune
Journal:  Compr Physiol       Date:  2017-03-16       Impact factor: 9.090

Review 7.  Smooth muscle: a stiff sculptor of epithelial shapes.

Authors:  Jacob M Jaslove; Celeste M Nelson
Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  2018-09-24       Impact factor: 6.237

8.  Dorzolamide-induced relaxation of isolated rabbit ciliary arteries mediated by inhibition of extracellular calcium influx.

Authors:  Yaru Dong; Yu Sawada; Jizhe Cui; Masahiro Hayakawa; Dai Ogino; Makoto Ishikawa; Takeshi Yoshitomi
Journal:  Jpn J Ophthalmol       Date:  2016-01-12       Impact factor: 2.447

9.  A dynamic model of smooth muscle contraction.

Authors:  S Gestrelius; P Borgström
Journal:  Biophys J       Date:  1986-07       Impact factor: 4.033

Review 10.  Experimental Models Used to Assess Lymphatic Contractile Function.

Authors:  Scott D Zawieja; Jorge A Castorena-Gonzalez; Brandon Dixon; Michael J Davis
Journal:  Lymphat Res Biol       Date:  2017-12       Impact factor: 2.589

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