Neural substrates of cold nociception in Drosophila larva.

Atit A Patel, Albert Cardona, Daniel N Cox
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Abstract

Metazoans detect and differentiate between innocuous (non-painful) and/or noxious (harmful) environmental cues using primary sensory neurons, which serve as the first node in a neural network that computes stimulus specific behaviors to either navigate away from injury-causing conditions or to perform protective behaviors that mitigate extensive injury. The ability of an animal to detect and respond to various sensory stimuli depends upon molecular diversity in the primary sensors and the underlying neural circuitry responsible for the relevant behavioral action selection. Recent studies in Drosophila larvae have revealed that somatosensory class III multidendritic (CIII md) neurons function as multimodal sensors regulating distinct behavioral responses to innocuous mechanical and nociceptive thermal stimuli. Recent advances in circuit bases of behavior have identified and functionally validated Drosophila larval somatosensory circuitry involved in innocuous (mechanical) and noxious (heat and mechanical) cues. However, central processing of cold nociceptive cues remained unexplored. We implicate multisensory integrators (Basins), premotor (Down-and-Back) and projection (A09e and TePns) neurons as neural substrates required for cold-evoked behavioral and calcium responses. Neural silencing of cell types downstream of CIII md neurons led to significant reductions in cold-evoked behaviors and neural co-activation of CIII md neurons plus additional cell types facilitated larval contraction (CT) responses. Further, we demonstrate that optogenetic activation of CIII md neurons evokes calcium increases in these neurons. Finally, we characterize the premotor to motor neuron network underlying cold-evoked CT and delineate the muscular basis of CT response. Collectively, we demonstrate how Drosophila larvae process cold stimuli through functionally diverse somatosensory circuitry responsible for generating stimulus-specific behaviors.

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果蝇幼虫冷伤害感受的神经基质。
Metazoans使用初级感觉神经元来检测和区分无害(非疼痛)和/或有害(有害)的环境线索,初级感觉神经元是神经网络中的第一个节点,该神经网络计算刺激特定行为,以避开导致伤害的条件,或执行减轻广泛伤害的保护行为。动物检测和响应各种感官刺激的能力取决于主要传感器和负责相关行为动作选择的底层神经回路中的分子多样性。最近对果蝇幼虫的研究表明,体感III类多节(CIII-md)神经元作为多模式传感器发挥作用,调节对无害的机械和伤害性热刺激的不同行为反应。行为回路基础的最新进展已经确定并在功能上验证了果蝇幼虫涉及无害(机械)和有害(热和机械)线索的体感回路。然而,对冷伤害性线索的中央处理仍未被探索。我们将多感觉积分器(Basins)、前运动神经元(Down和Back)和投射神经元(A09e和TePns)作为冷诱发行为和钙反应所需的神经基质。CIII-md神经元下游细胞类型的神经沉默导致冷诱发行为显著减少,CIII-md神经的神经共激活加上其他细胞类型促进幼虫收缩(CT)反应。我们进一步证明CIII-md神经元的光遗传学激活引起这些神经元中钙的增加。总之,我们展示了果蝇幼虫如何通过负责产生刺激特异性行为的功能多样的体感电路来处理冷刺激。
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