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血管加压素细胞活动中的迟滞双稳态

Bistability with hysteresis in the activity of vasopressin cells.

作者信息

Sabatier N, Leng G

机构信息

Centre for Integrative Physiology, University of Edinburgh College of Medical and Veterinary Sciences, Edinburgh, UK.

出版信息

J Neuroendocrinol. 2007 Feb;19(2):95-101. doi: 10.1111/j.1365-2826.2006.01509.x.

DOI:10.1111/j.1365-2826.2006.01509.x
PMID:17214871
Abstract

Magnocellular vasopressin neurones generate distinctive 'phasic' patterns of electrical activity during which periods of spiking activity (bursts) alternate with periods of no spikes or occasional spikes. The mechanisms of burst termination in vivo are still not clearly understood. We recorded from single phasic vasopressin cells in vivo and here we show that burst terminations in some phasic cells is preceded by transient increases in activity, consistent with bursts ending as a result of activity-dependent inhibition. We show that extrinsically imposed increases in activity, evoked by brief stimulation of the organum vasculosum of the lamina terminalis, can either trigger bursts if given when a cell is silent, or stop bursts if given when a cell is active. Thus, the magnocellular vasopressin system is a population of independent bistable oscillators. The population as a whole is insensitive to transient changes in input level, whether these are excitatory or inhibitory. The vasopressin cell population thus acts like a 'low-pass filter'; although brief large changes in input rate have little overall effect, the population responds very effectively to small, sustained changes in input rate by evolving a pattern of discharge activity that efficiently maintains secretion. We note that these filtering characteristics are the opposite of the filtering characteristics that are typically associated with neurones.

摘要

大细胞血管加压素神经元会产生独特的“相位性”电活动模式,在此期间,爆发式放电活动(脉冲群)与无放电或偶尔放电的时期交替出现。体内脉冲群终止的机制仍未完全清楚。我们在体内记录了单个相位性血管加压素细胞的活动,在此我们表明,一些相位性细胞的脉冲群终止之前会出现活动的短暂增加,这与脉冲群因活动依赖性抑制而结束一致。我们表明,通过短暂刺激终板血管器诱发的外部施加的活动增加,如果在细胞静止时给予,可触发脉冲群,如果在细胞活跃时给予,则可停止脉冲群。因此,大细胞血管加压素系统是一群独立的双稳态振荡器。整个群体对输入水平的短暂变化不敏感,无论这些变化是兴奋性的还是抑制性的。血管加压素细胞群体因此起到了“低通滤波器”的作用;尽管输入速率的短暂大幅变化总体影响很小,但群体通过形成一种能有效维持分泌的放电活动模式,对输入速率的小幅度持续变化反应非常有效。我们注意到,这些滤波特性与通常与神经元相关的滤波特性相反。

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