首页> 外文期刊>The Journal of Physiology >Contrasting short-term plasticity at two sides of the mitral-granule reciprocal synapse in the mammalian olfactory bulb.
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Contrasting short-term plasticity at two sides of the mitral-granule reciprocal synapse in the mammalian olfactory bulb.

机译:哺乳动物嗅球中二尖瓣互易突触两侧的短期可塑性不同。

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摘要

The mitral-granule reciprocal synapse shapes the response of the olfactory bulb to odour stimuli by mediating lateral and reciprocal inhibition. We investigated the short-term plasticity of both the mitral-to-granule excitatory synapse and the granule-to-mitral inhibitory synapse in rat olfactory bulb slices, using whole-cell patch clamp recordings. The granule-to-mitral inhibitory synapse invariably exhibited paired-pulse depression at interstimulus intervals of less than a second, while the mitral-to-granule excitatory synapse showed heterogeneous responses, which on average yielded a moderate facilitation. Trains of stimuli led to a much greater depression at the granule-to-mitral synapse than at the mitral-to-granule synapse. Since mitral cells commonly respond to odours by burst firing with each inhalation cycle, we used bursts of stimuli to study recovery from depression. We found that recovery from depression induced by fast trains of stimuli was more rapid at the mitral-to-granule synapse than at the granule-to-mitral synapse. In addition, depression was enhanced by higher calcium concentrations, suggesting at least partial contribution of presynaptic mechanisms to short-term depression. The observed short-term plasticity could enable mitral cells to overcome autoinhibition and increase action potential propagation along lateral dendrites by burst firing.
机译:通过调节横向和相互抑制,二尖峰颗粒相互突触影响嗅球对气味刺激的反应。我们使用全细胞膜片钳记录,研究了大鼠嗅球切片中二尖瓣到颗粒的兴奋性突触和颗粒间的抑制性突触的短期可塑性。颗粒间抑制性突触在少于1秒的刺激间隔内始终表现为成对脉冲抑制,而二尖瓣间的兴奋性突触表现出异质性反应,平均而言产生中等程度的促进作用。一连串的刺激导致颗粒间的突触比二尖瓣间的突触压抑更大。由于二尖瓣细胞通常在每个吸入循环中通过爆发刺激来响应气味,因此我们使用刺激爆发来研究抑郁症的恢复情况。我们发现,由快速刺激引起的抑郁症的恢复在二尖瓣至颗粒突触处比在颗粒至二尖瓣突触处更快。此外,较高的钙浓度会增加抑郁症的发生,提示突触前机制至少部分有助于短期抑郁症。观察到的短期可塑性可以使二尖瓣细胞克服自身抑制作用,并通过爆发发射增加动作电位沿侧突的传播。

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