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Acetylcholine-induced Calcium Signaling and Contraction of Airway Smooth Muscle Cells in Lung Slices

机译:乙酰胆碱诱导肺切片中气道平滑肌细胞的钙信号传导和收缩

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摘要

The Ca2+ signaling and contractility of airway smooth muscle cells (SMCs) were investigated with confocal microscopy in murine lung slices (∼75-μm thick) that maintained the in situ organization of the airways and the contractility of the SMCs for at least 5 d. 10–500 nM acetylcholine (ACH) induced a contraction of the airway lumen and a transient increase in [Ca2+]i in individual SMCs that subsequently declined to initiate multiple intracellular Ca2+ oscillations. These Ca2+ oscillations spread as Ca2+ waves through the SMCs at ∼48 μm/s. The magnitude of the airway contraction, the initial Ca2+ transient, and the frequency of the subsequent Ca2+ oscillations were all concentration-dependent. In a Ca2+-free solution, ACH induced a similar Ca2+ response, except that the Ca2+ oscillations ceased after 1–1.5 min. Incubation with thapsigargin, xestospongin, or ryanodine inhibited the ACH-induced Ca2+ signaling. A comparison of airway contraction with the ACH-induced Ca2+ response of the SMCs revealed that the onset of airway contraction correlated with the initial Ca2+ transient, and that sustained airway contraction correlated with the occurrence of the Ca2+ oscillations. Buffering intracellular Ca2+ with BAPTA prohibited Ca2+ signaling and airway contraction, indicating a Ca2+-dependent pathway. Cessation of the Ca2+ oscillations, induced by ACH-esterase, halothane, or the absence of extracellular Ca2+ resulted in a relaxation of the airway. The concentration dependence of the airway contraction matched the concentration dependence of the increased frequency of the Ca2+ oscillations. These results indicate that Ca2+ oscillations, induced by ACH in murine bronchial SMCs, are generated by Ca2+ release from the SR involving IP3- and ryanodine receptors, and are required to maintain airway contraction.
机译:共聚焦显微镜观察了鼠肺切片(厚约75μm)中Ca 2 + 信号和气道平滑肌细胞的收缩性,该切片保持了气道的原位组织和收缩性至少5 d的SMC。 10–500 nM乙酰胆碱(ACH)在单个SMC中诱导气管腔收缩和[Ca 2 + ] i的瞬时增加,随后下降以引发多个细胞内Ca 2+ < / sup>振荡。这些Ca 2 + 振荡随着Ca 2 + 波以约48μm/ s的速度通过SMC传播。气道收缩的幅度,最初的Ca 2 + 瞬变以及随后的Ca 2 + 振荡的频率均与浓度有关。在不含Ca 2 + 的溶液中,ACH诱导了类似的Ca 2 + 响应,除了Ca 2 + 振荡在1– 1.5分钟thapsigargin,xestospongin或ryanodine孵育可抑制ACH诱导的Ca 2 + 信号传导。将气道收缩与ACH诱导的SMC的Ca 2 + 反应进行比较,发现气道收缩的发生与初始Ca 2 + 短暂相关,并且持续气道收缩与Ca 2 + 振荡的发生有关。用BAPTA缓冲细胞内Ca 2 + 会阻止Ca 2 + 信号传导和气道收缩,表明Ca 2 + 依赖性途径。 ACH-酯酶,氟烷或缺少细胞外Ca 2 + 引起的Ca 2 + 振荡的停止导致气道舒张。气道收缩的浓度依赖性与Ca 2 + 振荡频率增加的浓度依赖性相一致。这些结果表明,在小鼠支气管平滑肌细胞中,ACH引起的Ca 2 + 振荡是由SR释放的Ca 2 + 涉及IP3-和ryanodine受体引起的。需要保持气道收缩。

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