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依赖刺突的去极化后电位有助于促性腺激素释放激素神经元的内源性爆发。

Spike-dependent depolarizing afterpotentials contribute to endogenous bursting in gonadotropin releasing hormone neurons.

作者信息

Kuehl-Kovarik M C, Partin K M, Handa R J, Dudek F E

机构信息

Department of Biomedical Sciences, Anatomy and Neurobiology Section, Colorado State University, Fort Collins, CO 80523, USA.

出版信息

Neuroscience. 2005;134(1):295-300. doi: 10.1016/j.neuroscience.2005.03.047.

Abstract

Pulsatile secretion of gonadotropin releasing hormone in mammals is thought to depend on repetitive and prolonged bursts of action potentials in specific neuroendocrine cells. We have previously described episodes of electrical activity in isolated gonadotropin releasing hormone neurons, but the intrinsic mechanisms underlying the generation of spike bursts are unknown. In acutely isolated gonadotropin releasing hormone neurons, which had been genetically targeted to express enhanced green fluorescent protein, current pulses generated spike-mediated depolarizing afterpotentials in 69% of cells. Spike-dependent depolarizing afterpotentials could evoke bursts of action potentials that lasted for tens of seconds. Brief pulses of glutamate (as short as 1 ms), which simulated excitatory postsynaptic potentials, also triggered spike-mediated depolarizing afterpotentials and episodic activity. These data indicate that spike-dependent depolarizing afterpotentials, an endogenous mechanism in gonadotropin releasing hormone neurons, likely contribute to the episodic firing thought to underlie pulsatile secretion of gonadotropin releasing hormone. Furthermore, fast excitatory postsynaptic potentials mediated by glutamate can activate this intrinsic mechanism.

摘要

哺乳动物中促性腺激素释放激素的脉冲式分泌被认为依赖于特定神经内分泌细胞中重复且持续的动作电位爆发。我们之前曾描述过分离出的促性腺激素释放激素神经元的电活动情况,但尖峰爆发产生的内在机制尚不清楚。在急性分离的、经基因靶向改造以表达增强型绿色荧光蛋白的促性腺激素释放激素神经元中,电流脉冲在69%的细胞中产生了由尖峰介导的去极化后电位。依赖于尖峰的去极化后电位可引发持续数十秒的动作电位爆发。短暂的谷氨酸脉冲(短至1毫秒),模拟兴奋性突触后电位,也触发了由尖峰介导的去极化后电位和阵发性活动。这些数据表明,依赖于尖峰的去极化后电位是促性腺激素释放激素神经元中的一种内源性机制,可能促成了被认为是促性腺激素释放激素脉冲式分泌基础的阵发性放电。此外,由谷氨酸介导的快速兴奋性突触后电位可激活这种内在机制。

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