Mlinar B, Biagi B A, Enyeart J J
Department of Pharmacology, Ohio State University, Columbus 43210-1239.
J Gen Physiol. 1993 Aug;102(2):217-37. doi: 10.1085/jgp.102.2.217.
The whole cell version of the patch clamp technique was used to identify and characterize voltage-gated Ca2+ channels in enzymatically dissociated bovine adrenal zona fasciculata (AZF) cells. The great majority of cells (84 of 86) expressed only low voltage-activated, rapidly inactivating Ca2+ current with properties of T-type Ca2+ current described in other cells. Voltage-dependent activation of this current was fit by a Boltzmann function raised to an integer power of 4 with a midpoint at -17 mV. Independent estimates of the single channel gating charge obtained from the activation curve and using the "limiting logarithmic potential sensitivity" were 8.1 and 6.8 elementary charges, respectively. Inactivation was a steep function of voltage with a v1/2 of -49.9 mV and a slope factor K of 3.73 mV. The expression of a single Ca2+ channel subtype by AZF cells allowed the voltage-dependent gating and kinetic properties of T current to be studied over a wide range of potentials. Analysis of the gating kinetics of this Ca2+ current indicate that T channel activation, inactivation, deactivation (closing), and reactivation (recovery from inactivation) each include voltage-independent transitions that become rate limiting at extreme voltages. Ca2+ current activated with voltage-dependent sigmoidal kinetics that were described by an m4 model. The activation time constant varied exponentially at test potentials between -30 and +10 mV, approaching a voltage-independent minimum of 1.6 ms. The inactivation time constant (tau i) also decreased exponentially to a minimum of 18.3 ms at potentials positive to 0 mV. T channel closing (deactivation) was faster at more negative voltages; the deactivation time constant (tau d) decreased from 8.14 +/- 0.7 to 0.48 +/- 0.1 ms at potentials between -40 and -150 mV. T channels inactivated by depolarization returned to the closed state along pathways that included two voltage-dependent time constants. tau rec-s ranged from 8.11 to 4.80 s when the recovery potential was varied from -50 to -90 mV, while tau rec-f decreased from 1.01 to 0.372 s. At potentials negative to -70 mV, both time constants approached minimum values. The low voltage-activated Ca2+ current in AZF cells was blocked by the T channel selective antagonist Ni2+ with an IC50 of 20 microM. At similar concentrations, Ni2+ also blocked cortisol secretion stimulated by adrenocorticotropic hormone. Our results indicate that bovine AZF cells are distinctive among secretory cells in expressing primarily or exclusively T-type Ca2+ channels.(ABSTRACT TRUNCATED AT 400 WORDS)
采用膜片钳全细胞记录技术对酶解分离的牛肾上腺束状带(AZF)细胞中的电压门控Ca2+通道进行鉴定和特性分析。绝大多数细胞(86个细胞中的84个)仅表达低电压激活、快速失活的Ca2+电流,其特性与其他细胞中描述的T型Ca2+电流一致。该电流的电压依赖性激活可用幂次为4的玻尔兹曼函数拟合,中点电位为-17 mV。通过激活曲线并利用“极限对数电位敏感性”对单通道门控电荷进行的独立估计分别为8.1和6.8个基本电荷。失活是电压的陡峭函数,半数失活电压(v1/2)为-49.9 mV,斜率因子K为3.73 mV。AZF细胞中单一Ca2+通道亚型的表达使得能够在很宽的电位范围内研究T电流的电压依赖性门控和动力学特性。对该Ca2+电流门控动力学的分析表明,T通道的激活、失活、去激活(关闭)和再激活(从失活中恢复)均包括电压非依赖性转变,这些转变在极端电压下成为限速步骤。Ca2+电流以电压依赖性S形动力学激活,可用m4模型描述。在-30至+10 mV的测试电位下,激活时间常数呈指数变化,接近1.6 ms的电压非依赖性最小值。失活时间常数(tau i)在电位高于0 mV时也呈指数下降至最小值18.3 ms。T通道在更负的电压下去激活(关闭)更快;去激活时间常数(tau d)在-40至-150 mV的电位下从8.14±0.7 ms降至0.48±0.1 ms。经去极化失活的T通道沿包含两个电压依赖性时间常数的途径恢复到关闭状态。当恢复电位从-50 mV变化至-90 mV时,tau rec-s范围为8.11至4.80 s,而tau rec-f从1.01 s降至0.372 s。在电位低于-70 mV时,两个时间常数均接近最小值。AZF细胞中的低电压激活Ca2+电流被T通道选择性拮抗剂Ni2+阻断,IC50为20 microM。在相似浓度下,Ni2+也阻断促肾上腺皮质激素刺激的皮质醇分泌。我们的结果表明,牛AZF细胞在分泌细胞中具有独特性,主要或仅表达T型Ca2+通道。(摘要截短于400字)