Kano Amane, Matsuyama Hironori J, Nakano Shunji, Mori Ikue
Group of Molecular Neurobiology, Department of Biological Science, Graduate School of Science, Nagoya University, Nagoya 464-8602, Japan.
Neuroscience Institute, Graduate School of Science, Nagoya University, Nagoya 464-8602, Japan.
Neurosci Res. 2023 Mar;188:10-27. doi: 10.1016/j.neures.2022.11.001. Epub 2022 Nov 3.
Elucidating how individual neurons encode and integrate sensory information to generate a behavior is crucial for understanding neural logic underlying sensory-dependent behavior. In the nematode Caenorhabditis elegans, information flow from sensory input to behavioral output is traceable at single-cell level due to its entirely solved neural connectivity. C. elegans processes the temperature information for regulating behavior consisting of undulatory posture dynamics in a circuit including two thermosensory neurons AFD and AWC, and their postsynaptic interneuron AIY. However, how the information processing in AFD-AWC-AIY circuit generates the posture dynamics remains elusive. To quantitatively evaluate the posture dynamics, we introduce locomotion entropy, which measures bandwidth of the frequency spectrum of the undulatory posture dynamics, and assess how the motor pattern fluctuates. We here found that AWC disorders the information processing in AFD-AWC-AIY circuit for regulating temperature-evoked posture dynamics. Under slow temperature ramp-up, AWC adjusts AFD response, whereby broadening the temperature range in which animals exhibit fluctuating posture undulation. Under rapid temperature ramp-up, AWC increases inter-individual variability in AIY activity and the fluctuating posture undulation. We propose that a compact nervous system recruits a sensory neuron as a fluctuation inducer for regulating sensory-dependent behavior.
阐明单个神经元如何编码和整合感觉信息以产生行为,对于理解感觉依赖行为背后的神经逻辑至关重要。在秀丽隐杆线虫中,由于其完整解析的神经连接性,从感觉输入到行为输出的信息流在单细胞水平上是可追踪的。秀丽隐杆线虫在一个包含两个热敏神经元AFD和AWC及其突触后中间神经元AIY的回路中处理温度信息,以调节包括波动姿势动态的行为。然而,AFD-AWC-AIY回路中的信息处理如何产生姿势动态仍不清楚。为了定量评估姿势动态,我们引入了运动熵,它测量波动姿势动态频谱的带宽,并评估运动模式如何波动。我们在此发现,AWC扰乱了AFD-AWC-AIY回路中用于调节温度诱发姿势动态的信息处理。在缓慢升温的情况下,AWC调整AFD反应,从而拓宽动物表现出波动姿势起伏的温度范围。在快速升温的情况下,AWC增加了AIY活动的个体间变异性以及波动姿势起伏。我们提出,一个紧凑的神经系统招募一个感觉神经元作为波动诱导器来调节感觉依赖行为。