Suppr超能文献

重复性有害刺激改变了椎实螺中阴影诱发的退缩行为。

Repetitive noxious stimulus altered the shadow-induced withdrawal behavior in Lymnaea.

作者信息

Sunada H, Lukowiak K, Sakakibara M

机构信息

Graduate School of Bioscience, Tokai University, Numazu Japan.

出版信息

Acta Biol Hung. 2012;63 Suppl 2:179-89. doi: 10.1556/ABiol.63.2012.Suppl.2.23.

Abstract

Stress alters adaptive behaviors including vigilance behaviors. In Lymnaea one of these vigilance behavior is a heightened withdrawal response to a shadow. The shadow withdrawal response (SWR) is mediated by dermal photoreceptors located primarily on the foot, mantle cavity, and skin around the pneumostome area. Here we asked whether we could obtain a neural correlate of the heightened SWR and other essential behaviors following traumatic stress. We measured the electrophysiological properties of 'Right Pedal Dorsal 11 (RPeD11)', the interneuron that plays a major role in mediating the whole-body withdrawal response. In traumatized snails 24 hours after the trauma they responded not only to a shadow stimulus with an augmented withdrawal response, but suppressed in locomotive, feeding and respiratory behavior. Their behavioral change lasted at least one week. Accompanying the behavioral change in these 'traumatized' preparations there are a number of significant changes in the neuronal properties of RPeD11 compared to naïve preparations. For example, RPeD11 is significantly more depolarized (∼10 mV) has significantly larger input resistance, and the duration of the response elicited by the shadow persists longer. All these changes result in an increased RPeD11 response and seem to raise their defensive alert level.

摘要

应激会改变适应性行为,包括警觉行为。在椎实螺中,其中一种警觉行为是对阴影增强的退缩反应。阴影退缩反应(SWR)由主要位于足部、外套腔和呼吸孔区域周围皮肤的皮肤光感受器介导。在这里,我们询问在创伤性应激后,是否能够获得增强的SWR和其他基本行为的神经关联。我们测量了“右足背11(RPeD11)”的电生理特性,该中间神经元在介导全身退缩反应中起主要作用。在创伤后24小时的受创伤蜗牛中,它们不仅对阴影刺激有增强的退缩反应,而且在运动、进食和呼吸行为方面受到抑制。它们的行为变化至少持续一周。与未受创伤的标本相比,在这些“受创伤”标本的行为变化的同时,RPeD11的神经元特性有许多显著变化。例如,RPeD11明显更去极化(约10 mV),输入电阻明显更大,阴影引发的反应持续时间更长。所有这些变化导致RPeD11反应增加,似乎提高了它们的防御警觉水平。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验