Local vasotocin modulation of the pacemaker nucleus resembles distinct electric behaviors in two species of weakly electric fish

Q Medicine
Rossana Perrone , Adriana Migliaro , Virginia Comas , Laura Quintana , Michel Borde , Ana Silva
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引用次数: 17

Abstract

The neural bases of social behavior diversity in vertebrates have evolved in close association with hypothalamic neuropeptides. In particular, arginine-vasotocin (AVT) is a key integrator underlying differences in behavior across vertebrate taxa. Behavioral displays in weakly electric fish are channeled through specific patterns in their electric organ discharges (EODs), whose rate is ultimately controlled by a medullary pacemaker nucleus (PN). We first explored interspecific differences in the role of AVT as modulator of electric behavior in terms of EOD rate between the solitary Gymnotus omarorum and the gregarious Brachyhypopomus gauderio. In both species, AVT IP injection (10 μg/gbw) caused a progressive increase of EOD rate of about 30%, which was persistent in B. gauderio, and attenuated after 30 min in G. omarorum. Secondly, we demonstrated by in vitro electrophysiological experiments that these behavioral differences can be accounted by dissimilar effects of AVT upon the PN in itself. AVT administration (1 μM) to the perfusion bath of brainstem slices containing the PN produced a small and transient increase of PN activity rate in G. omarorum vs the larger and persistent increase previously reported in B. gauderio. We also identified AVT neurons, for the first time in electric fish, using immunohistochemistry techniques and confirmed the presence of hindbrain AVT projections close to the PN that might constitute the anatomical substrate for AVT influences on PN activity. Taken together, our data reinforce the view of the PN as an extremely plastic medullary central pattern generator that not only responds to higher influences to adapt its function to diverse contexts, but also is able to intrinsically shape its response to neuropeptide actions, thus adding a hindbrain target level to the complexity of the global integration of central neuromodulation of electric behavior.

在两种弱电鱼类中,起搏器核的局部血管催产素调节类似于不同的电行为
脊椎动物社会行为多样性的神经基础与下丘脑神经肽密切相关。特别是,精氨酸-血管催产素(AVT)是脊椎动物行为差异的关键整合因子。弱电鱼类的行为表现是通过它们的电器官放电(eod)的特定模式来引导的,其速率最终由髓质起搏器核(PN)控制。我们首先探讨了AVT作为电行为调节剂在孤立裸鼠和群居裸鼠之间的不同作用。注射AVT IP (10 μg/gbw)后,两种物种的EOD率均渐进式升高约30%,且在高氏白僵菌中持续升高,而在黄僵菌中则在30 min后减弱。其次,我们通过体外电生理实验证明,这些行为差异可以通过AVT对PN本身的不同影响来解释。在含有PN的脑干切片灌注液中给予AVT (1 μM),可使大鼠的PN活性率短暂而小的增加,而先前报道的白鸡的PN活性率则持续而大的增加。我们还利用免疫组织化学技术首次在电鱼中鉴定出AVT神经元,并证实了靠近PN的后脑AVT突起的存在,这可能构成了AVT影响PN活性的解剖学基础。综上所述,我们的数据强化了PN作为一种极具可塑性的髓质中枢模式发生器的观点,它不仅对更高的影响做出反应,使其功能适应不同的环境,而且能够从本质上塑造其对神经肽作用的反应,从而为中枢神经电行为调节的全球整合的复杂性增加了后脑目标水平。
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来源期刊
Journal of Physiology-Paris
Journal of Physiology-Paris 医学-神经科学
CiteScore
2.02
自引率
0.00%
发文量
0
审稿时长
>12 weeks
期刊介绍: Each issue of the Journal of Physiology (Paris) is specially commissioned, and provides an overview of one important area of neuroscience, delivering review and research papers from leading researchers in that field. The content will interest both those specializing in the experimental study of the brain and those working in interdisciplinary fields linking theory and biological data, including cellular neuroscience, mathematical analysis of brain function, computational neuroscience, biophysics of brain imaging and cognitive psychology.
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