Marty A, Evans M G, Tan Y P, Trautmann A
J Exp Biol. 1986 Sep;124:15-32. doi: 10.1242/jeb.124.1.15.
A large variety of responses has been uncovered by recent investigations of conductance changes elicited by muscarinic agonists. In exocrine glands, the permeability to K+, Cl- and Na+ ions is increased, and internal Ca2+ serves as a second messenger. Patch-clamp analysis of the secreting cells has revealed three types of Ca2+-dependent channels, which are respectively selective for K+, for Cl-, and for monovalent cations. The channels differ in their sensitivity to the internal Ca2+ concentration, Cai. K+-selective channels are partially activated at rest, with Cai approx. 10 nmol l-1; Cl(-)-selective channels are activated between 100 nmol l-1 and 1 mumol l-1; activation of cationic channels requires micromolar Cai levels. Cell-attached recordings, performed either on isolated cells or on cell clusters, show an activation of all three channel types upon application of acetylcholine. In whole-cell recordings, mostly K+- and Cl(-)-selective channels are activated. The cell currents display slow oscillations linked to variations of Cai. Whole-cell currents rise after a delay of approx. 1 s, and decay with a time constant of approx. 0.7 s upon removal of acetylcholine. They do not depend on extracellular Ca2+. The recent demonstration that Ca2+-dependent currents can also be obtained when dialysing the cells with inositoltrisphosphate or with GTP gamma S, a non-hydrolysable analogue of guanosine triphosphate, opens promising leads to an analysis of intracellular events regulated by acetylcholine.
近期对毒蕈碱激动剂引发的电导变化进行的研究揭示了多种反应。在外分泌腺中,对K⁺、Cl⁻和Na⁺离子的通透性增加,并且细胞内Ca²⁺作为第二信使。对分泌细胞的膜片钳分析揭示了三种类型的Ca²⁺依赖性通道,它们分别对K⁺、Cl⁻和单价阳离子具有选择性。这些通道对细胞内Ca²⁺浓度(Cai)的敏感性不同。K⁺选择性通道在静息时部分被激活,此时Cai约为10 nmol/L;Cl⁻选择性通道在100 nmol/L至1 μmol/L之间被激活;阳离子通道的激活需要微摩尔级的Cai水平。在分离的细胞或细胞簇上进行的细胞贴附记录显示,施加乙酰胆碱后所有三种通道类型均被激活。在全细胞记录中,主要是K⁺和Cl⁻选择性通道被激活。细胞电流显示出与Cai变化相关的缓慢振荡。全细胞电流在约1秒的延迟后上升,并在去除乙酰胆碱后以约0.7秒的时间常数衰减。它们不依赖于细胞外Ca²⁺。最近的研究表明,当用肌醇三磷酸或鸟苷三磷酸的不可水解类似物GTPγS透析细胞时,也可以获得Ca²⁺依赖性电流,这为分析乙酰胆碱调节的细胞内事件开辟了有前景的途径。