Almoril-Porras Agustin, Calvo Ana C, Niu Longgang, Beagan Jonathan, Hawk Josh D, Aljobeh Ahmad, Wisdom Elias M, Ren Ivy, Díaz-García Malcom, Wang Zhao-Wen, Colón-Ramos Daniel A
Department of Neuroscience and Department of Cell Biology, Yale University School of Medicine; New Haven, CT 06536, USA.
Department of Neuroscience, University of Connecticut Health Center; Farmington, CT 06030, USA.
bioRxiv. 2023 Aug 3:2023.08.01.551556. doi: 10.1101/2023.08.01.551556.
Synaptic configurations in precisely wired circuits underpin how sensory information is processed by the nervous system, and the emerging animal behavior. This is best understood for chemical synapses, but far less is known about how electrical synaptic configurations modulate, and in specific neurons, sensory information processing and context-specific behaviors. We discovered that INX-1, a gap junction protein that forms electrical synapses, is required to deploy context-specific behavioral strategies during thermotaxis behavior. INX-1 couples two bilaterally symmetric interneurons, and this configuration is required for the integration of sensory information during migration of animals across temperature gradients. In mutants, uncoupled interneurons display increased excitability and responses to subthreshold temperature stimuli, resulting in abnormally longer run durations and context-irrelevant tracking of isotherms. Our study uncovers a conserved configuration of electrical synapses that, by increasing neuronal capacitance, enables differential processing of sensory information and the deployment of context-specific behavioral strategies.
精确布线电路中的突触结构是神经系统处理感觉信息以及产生新出现的动物行为的基础。这在化学突触方面已得到很好的理解,但对于电突触结构如何调节,以及在特定神经元中如何调节感觉信息处理和特定情境行为,人们了解得要少得多。我们发现,形成电突触的间隙连接蛋白INX-1是动物在趋温行为中采用特定情境行为策略所必需的。INX-1连接两个双侧对称的中间神经元,这种结构对于动物在温度梯度中迁移时感觉信息的整合是必需的。在突变体中,未耦合的中间神经元表现出兴奋性增加以及对阈下温度刺激的反应,导致运行持续时间异常延长以及与情境无关的等温线追踪。我们的研究揭示了一种保守的电突触结构,这种结构通过增加神经元电容,实现对感觉信息的差异处理以及特定情境行为策略的运用。