Smooth muscle biomechanics and plasticity: relevance for vascular calibre and remodelling

Basic Clin Pharmacol Toxicol. 2012 Jan;110(1):35-41. doi: 10.1111/j.1742-7843.2011.00794.x. Epub 2011 Oct 21.

Abstract

Blood vessel structure and calibre are not static. Rather, vessels remodel continuously in response to their biomechanical environment. Vascular calibre is dictated by the amount, composition and organization of the elastic extracellular matrix. In addition, the amount and organization of contractile smooth muscle cell (SMC) also need to be regulated. The SMCs are organized such that maximum contractile force generally occurs at diameters slightly below the diameter at full dilation and physiological pressure. Thus, in a remodelling vessel, not only the matrix but also the SMCs need to undergo structural adaptation. Surprisingly little is known on the adaptation of SMC contractile properties in the vasculature. The purpose of this review is to explore this SMC plasticity in the context of vascular remodelling. While not much work on this has been carried out on blood vessels, SMC plasticity is more extensively studied on other hollow structures such as airway and bladder. We therefore include studies on bladder and airway SMCs because of their possible relevance for vascular SMC behaviour. Here, plasticity is thought to form an adaptation allowing maintained function despite large volume changes. In blood vessels, the general match of active and passive diameter-tension relations suggests that SMC plasticity is part of normal vascular physiological adaptation. Vascular SMCs display similar processes and forms of adaptation as seen in nonvascular SMCs. This may become particularly relevant under strong vasoconstriction, when inward cytoskeletal adaptation possibly prevents immediate full dilation. This may contribute to structural inward remodelling as seen in hypertension and flow reduction.

Publication types

  • Research Support, Non-U.S. Gov't
  • Review

MeSH terms

  • Airway Remodeling
  • Airway Resistance
  • Animals
  • Biomechanical Phenomena
  • Blood Vessels / anatomy & histology
  • Blood Vessels / physiology
  • Cytoskeleton
  • Humans
  • Microcirculation*
  • Microvessels / anatomy & histology*
  • Microvessels / physiology
  • Muscle Tonus
  • Muscle, Smooth / anatomy & histology
  • Muscle, Smooth / physiology
  • Muscle, Smooth, Vascular / anatomy & histology*
  • Muscle, Smooth, Vascular / physiology*
  • Respiratory System / anatomy & histology
  • Urinary Bladder / anatomy & histology
  • Urinary Bladder / physiology
  • Vascular Resistance*
  • Vasoconstriction
  • Vasodilation