Tanimoto Yuki, Yamazoe-Umemoto Akiko, Fujita Kosuke, Kawazoe Yuya, Miyanishi Yosuke, Yamazaki Shuhei J, Fei Xianfeng, Busch Karl Emanuel, Gengyo-Ando Keiko, Nakai Junichi, Iino Yuichi, Iwasaki Yuishi, Hashimoto Koichi, Kimura Koutarou D
Department of Biological Sciences, Graduate School of Science, Osaka University, Toyonaka, Japan.
Faculty of Science and Technology, Tohoku Bunka Gakuen University, Sendai, Japan.
Elife. 2017 May 23;6:e21629. doi: 10.7554/eLife.21629.
Brains regulate behavioral responses with distinct timings. Here we investigate the cellular and molecular mechanisms underlying the timing of decision-making during olfactory navigation in . We find that, based on subtle changes in odor concentrations, the animals appear to choose the appropriate migratory direction from multiple trials as a form of behavioral decision-making. Through optophysiological, mathematical and genetic analyses of neural activity under virtual odor gradients, we further find that odor concentration information is temporally integrated for a decision by a gradual increase in intracellular calcium concentration ([Ca]), which occurs via L-type voltage-gated calcium channels in a pair of olfactory neurons. In contrast, for a reflex-like behavioral response, [Ca] rapidly increases via multiple types of calcium channels in a pair of nociceptive neurons. Thus, the timing of neuronal responses is determined by cell type-dependent involvement of calcium channels, which may serve as a cellular basis for decision-making.
大脑以不同的时间尺度调节行为反应。在此,我们研究了秀丽隐杆线虫嗅觉导航过程中决策时机背后的细胞和分子机制。我们发现,基于气味浓度的细微变化,动物似乎能从多次试验中选择合适的迁移方向,这是一种行为决策形式。通过对虚拟气味梯度下神经活动的光生理学、数学和遗传学分析,我们进一步发现,气味浓度信息通过一对嗅觉神经元中L型电压门控钙通道导致细胞内钙浓度([Ca])逐渐升高,从而在时间上整合以做出决策。相比之下,对于类似反射的行为反应,[Ca]通过一对伤害性神经元中的多种钙通道迅速升高。因此,神经元反应的时机由钙通道的细胞类型依赖性参与决定,这可能是决策的细胞基础。