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In actio optophysiological analyses reveal functional diversification of dopaminergic neurons in the nematode C. elegans

机译:Actio Opolophyogysiological分析中揭示了线虫C.秀丽杆菌中多巴胺能神经元的功能多样化

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Many neuronal groups such as dopamine-releasing (dopaminergic) neurons are functionally divergent, although the details of such divergence are not well understood. Dopamine in the nematode Caenorhabditis elegans modulates various neural functions and is released from four left-right pairs of neurons. The terminal identities of these dopaminergic neurons are regulated by the same genetic program, and previous studies have suggested that they are functionally redundant. In this study, however, we show functional divergence within the dopaminergic neurons of C. elegans. Because dopaminergic neurons of the animals were supposedly activated by mechanical stimulus upon entry into a lawn of their food bacteria, we developed a novel integrated microscope system that can auto-track a freely-moving (in actio) C. elegans to individually monitor and stimulate the neuronal activities of multiple neurons. We found that only head-dorsal pair of dopaminergic neurons (CEPD), but not head-ventral or posterior pairs, were preferentially activated upon food entry. In addition, the optogenetic activation of CEPD neurons alone exhibited effects similar to those observed upon food entry. Thus, our results demonstrated functional divergence in the genetically similar dopaminergic neurons, which may provide a new entry point toward understanding functional diversity of neurons beyond genetic terminal identification.
机译:许多神经元群,例如多巴胺释放(多巴胺能)神经元在功能性发散,尽管这种发散的细节并不顺利。多巴胺在Nematode caenorhabditise elegans调制各种神经功能,并从四个左右神经元释放。这些多巴胺能神经元的终端身份由相同的遗传程序调节,并且之前的研究表明它们在功能上是多余的。然而,在这项研究中,我们展示了C.秀丽隐杆线虫的多巴胺能神经元内的功能性分歧。因为在进入其食物细菌的草坪上,所谓的动物的多巴胺能神经元被机械刺激激活,所以我们开发了一种新颖的集成显微镜系统,可以自动追踪(在Actio)C.秀丽隐滑,以单独监测和刺激多个神经元的神经元活性。我们发现,只有在食物进入后才能优先激活头部背侧对多巴胺能神经元(CEPD),但不是头腹部或后对。此外,Cepd神经元的致敏激活单独表现出与食物进入后观察到的效果。因此,我们的结果表明了遗传上类似的多巴胺能神经元在遗传上具有功能性,这可以为了解超越遗传终端识别的神经元的功能多样性提供新的入学点。

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