A Mathematical Analysis of Agonist- and KCI-Induced Ca2+ Oscillations in Mouse Airway Smooth Muscle Cells

作者:Wang Inga Y; Bai Yan; Sanderson Michael J; Sneyd James*
来源:Biophysical Journal, 2010, 98(7): 1170-1181.
DOI:10.1016/j.bpj.2009.12.4273

摘要

Airway hyperresponsiveness is a major characteristic of asthma and is generally ascribed to excessive airway narrowing associated with the contraction of airway smooth muscle cells (ASMCs). ASMC contraction is initiated by a rise in intracellular calcium concentration ([Ca2+](i)), observed as oscillatory Ca2+ waves that can be induced by either agonist or high extracellular K+ (KCI). In this work, we present a model of oscillatory Ca2+ waves based on experimental data that incorporate both the inositol trisphosphate receptor and the ryanodine receptor. We then combined this Ca2+ model and our modified actin-myosin cross-bridge model to investigate the role and contribution of oscillatory Ca2+ waves to contractile force generation in mouse ASMCs. The model predicts that: 1), the difference in behavior of agonist- and KCI-induced Ca2+ waves results principally from the fact that the sarcoplasmic reticulum is depleted during agonist-induced oscillations, but is overfilled during KCI-induced oscillations; 2), regardless of the order in which agonist and KCI are added into the cell, the resulting [Ca2+](i) oscillations will always be the short-period, agonist-induced-like oscillations; and 3), both the inositol trisphosphate receptor and the ryanodine receptor densities are higher toward one end of the cell. In addition, our results indicate that oscillatory Ca2+ waves generate less contraction than whole-cell Ca2+ oscillations induced by the same agonist concentration. This is due to the spatial inhomogeneity of the receptor distributions.

  • 出版日期2010-4-7