Kaneko Takuya, Macara Ann Marie, Li Ruonan, Hu Yujia, Iwasaki Kenichi, Dunnings Zane, Firestone Ethan, Horvatic Shawn, Guntur Ananya, Shafer Orie T, Yang Chung-Hui, Zhou Jie, Ye Bing
Life Sciences Institute and Department of Cell and Developmental Biology, University of Michigan, Ann Arbor, MI 48109, USA.
Life Sciences Institute and Department of Cell and Developmental Biology, University of Michigan, Ann Arbor, MI 48109, USA; Department of Molecular, Cellular, and Developmental Biology, University of Michigan, Ann Arbor, MI 48109, USA.
Neuron. 2017 Aug 2;95(3):623-638.e4. doi: 10.1016/j.neuron.2017.06.034. Epub 2017 Jul 14.
How experiences during development cause long-lasting changes in sensory circuits and affect behavior in mature animals are poorly understood. Here we establish a novel system for mechanistic analysis of the plasticity of developing neural circuits by showing that sensory experience during development alters nociceptive behavior and circuit physiology in Drosophila larvae. Despite the convergence of nociceptive and mechanosensory inputs on common second-order neurons (SONs), developmental noxious input modifies transmission from nociceptors to their SONs, but not from mechanosensors to the same SONs, which suggests striking sensory pathway specificity. These SONs activate serotonergic neurons to inhibit nociceptor-to-SON transmission; stimulation of nociceptors during development sensitizes nociceptor presynapses to this feedback inhibition. Our results demonstrate that, unlike associative learning, which involves inputs from two sensory pathways, sensory pathway-specific plasticity in the Drosophila nociceptive circuit is in part established through feedback modulation. This study elucidates a novel mechanism that enables pathway-specific plasticity in sensory systems. VIDEO ABSTRACT.
发育过程中的经历如何在感觉回路中引起持久变化并影响成年动物的行为,目前还知之甚少。在这里,我们通过证明发育过程中的感觉经验会改变果蝇幼虫的伤害性感受行为和回路生理学,建立了一个用于对发育中的神经回路可塑性进行机制分析的新系统。尽管伤害性感受和机械感觉输入汇聚于共同的二阶神经元(SONs),但发育过程中的有害输入会改变从伤害感受器到其SONs的传递,而不会改变从机械感受器到相同SONs的传递,这表明了显著的感觉通路特异性。这些SONs激活血清素能神经元以抑制伤害感受器到SONs的传递;发育过程中对伤害感受器的刺激会使伤害感受器突触前膜对这种反馈抑制敏感。我们的结果表明,与涉及来自两条感觉通路输入的联想学习不同,果蝇伤害性感受回路中的感觉通路特异性可塑性部分是通过反馈调节建立的。这项研究阐明了一种在感觉系统中实现通路特异性可塑性的新机制。视频摘要。