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Looping circuit: A novel mechanism for prolonged spontaneous [Ca2+]i increases in developing embryonic mouse brainstem

机译:循环回路:延长胚胎小鼠脑干中自发性[Ca2 +] i延长的新机制

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摘要

Most cells maintain [Ca2+]i at extremely low levels; calcium entry usually occurs briefly, and within seconds it is cleared. However, at embryonic day 12.5 in the mouse brainstem, trains of spontaneous events occur with [Ca2+]i staying close to peak value, well above baseline, for minutes; we termed this 'bash bursts'. Here, we investigate the mechanism of this unusual activity using calcium imaging and electrophysiology. Bash bursts are triggered by an event originating at the mid-line of the rostral hindbrain and are usually the result of that event propagating repeatedly along a defined circular path. The looping circuit can either encompass both the midbrain and hindbrain or remain in the hindbrain only, and the type of loop determines the duration of a single lap time, 5 or 3 s, respectively. Bash bursts are supported by high membrane excitability of mid-line cells and are regulated by persistent inward 'window current' at rest, contributing to spontaneous activity. This looping circuit is an effective means for increasing [Ca2+]i at brief, regular intervals. Bash bursts disappear by embryonic day 13.5 via alteration of the looping circuit, curtailing the short epoch of bash bursts. The resulting sustained [Ca2+]i may influence development of raphe serotonergic and ventral tegmental dopaminergic neurons by modulating gene expression.
机译:大多数细胞将[Ca2 +] i维持在极低的水平。钙进入通常会短暂发生,几秒钟内就会清除。然而,在小鼠脑干的胚胎第12.5天,发生了一系列自发事件,其中[Ca2 +] i保持在接近峰值的位置,远高于基线,持续了数分钟。我们称之为“爆炸爆发”。在这里,我们使用钙成像和电生理学研究这种异常活动的机制。重击爆发是由源自延髓后脑中线的事件触发的,通常是该事件沿着定义的圆形路径重复传播的结果。回路可以同时包含中脑和后脑,也可以只保留在后脑中,回路的类型分别确定单圈时间的持续时间,即5或3 s。重击爆发由中线细胞的高膜兴奋性支持,并由静止时持续的内向“窗口电流”调节,从而促进了自发活动。该环路是一种有效的手段,用于以短暂的规则间隔增加[Ca2 +] i。 Bash爆发在胚胎第13.5天通过循环回路的改变而消失,从而缩短了bash爆发的短暂时期。产生的持续的[Ca2 +] i可能通过调节基因表达来影响裂殖血清素能神经和腹侧被膜多巴胺能神经元的发育。

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