Best L, Sheader E A, Brown P D
Cell Physiology Group, School of Biological Sciences, University of Manchester, Oxford Road, Manchester M13 9PT, UK.
Pflugers Arch. 1996 Jan;431(3):363-70. doi: 10.1007/BF02207273.
The whole-cell patch-clamp recording technique was used to measure volume-activated currents in K+-free solutions in RINm5F and HIT-T15 insulinoma cells and in dispersed rat islet cells. Cell swelling, induced by intracellular hypertonicity or extracellular hypotonicity, caused activation of an outwardly rectifying conductance which could be subsequently inactivated by hypertonic extracellular solutions. The conductance required adenosine 5'-triphosphate (ATP) in the pipette solution but was Ca2+ independent. Na+ and Cl- substitution studies suggested that the swelling-activated current is Cl- selective with a halide permeability sequence of Br > Cl > I. The conductance was reversibly inhibited by the anion channel inhibitors 4,4'-diisothiocyanatostilbene-2,2'-disulphonic acid (DIDS) and by 5-nitro-2-(3-phenylpropylamino) benzoic acid (NPPB). Further evidence for a volume-activated anion conductance was provided by studies of volume regulation in insulin-secreting cells. When RINm5F cells were exposed to a hypotonic medium, the initial cell swelling was followed by a regulatory volume decrease (RVD). This RVD response was also inhibited by DIDS and by NPPB. These data therefore provide evidence for a volume-activated anion conductance in insulin-secreting cells which could be involved in the RVD following osmotic stress. A possible role for the conductance in hypotonically induced insulin release is also discussed.
采用全细胞膜片钳记录技术,在无钾溶液中测量RINm5F细胞、HIT-T15胰岛素瘤细胞以及分散的大鼠胰岛细胞中的容积激活电流。细胞内高渗或细胞外低渗诱导的细胞肿胀,会激活外向整流电导,随后该电导可被高渗细胞外溶液失活。该电导需要移液管溶液中的三磷酸腺苷(ATP),但与Ca2+无关。钠和氯的替代研究表明,肿胀激活电流对氯离子具有选择性,卤化物通透性顺序为溴>氯>碘。该电导可被阴离子通道抑制剂4,4'-二异硫氰酸根合芪-2,2'-二磺酸(DIDS)和5-硝基-2-(3-苯丙基氨基)苯甲酸(NPPB)可逆抑制。胰岛素分泌细胞容积调节的研究为容积激活阴离子电导提供了进一步证据。当RINm5F细胞暴露于低渗培养基中时,最初的细胞肿胀之后会出现调节性容积减小(RVD)。这种RVD反应也受到DIDS和NPPB的抑制。因此,这些数据为胰岛素分泌细胞中存在容积激活阴离子电导提供了证据,该电导可能参与渗透应激后的RVD过程。本文还讨论了该电导在低渗诱导的胰岛素释放中的可能作用。