从线路到电路:进入中枢复合体的信息通道的发育和进化结构。

IF 1.9 4区 心理学 Q3 BEHAVIORAL SCIENCES
Pratyush Kandimalla, Jaison Jiro Omoto, Elizabeth J Hong, Volker Hartenstein
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引用次数: 0

摘要

表征和整合内外部线索对于任何生物体执行适当的行为都至关重要。在昆虫中,大脑的一个高度保守区域--中央复合体(CX)--具有表征空间信息和行为状态的功能,并能将这些信息转化为所需的导航指令。这种相对不变的结构是如何将昆虫所占据的解剖、行为和生态位多样性的信息纳入其中的呢?在此,我们将结合 CX 的发育和进化过程,对其输入通道进行研究。昆虫大脑由每个半球约 100 个神经母细胞发育而成,这些神经母细胞系统性地分裂形成姊妹神经元 "系",这些姊妹神经元沿着解剖学特征束投射到目标神经瞳孔。将这种发育束信息与最近生成的果蝇 "半脑 "连接组相叠加,并将这些信息与其他物种神经元的解剖和生理记录相整合,我们观察到了神经瞳孔和神经系特异性神经支配、连接以及 CX 输入通道的活动特征。我们认为,神经母细胞的增殖潜力和信息通道基于谱系的结构能够以物种特异性的方式改变现有的、新的和废弃的神经网络模式,从而形成昆虫导航回路进化和多样化的基质。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Lineages to circuits: the developmental and evolutionary architecture of information channels into the central complex.

Lineages to circuits: the developmental and evolutionary architecture of information channels into the central complex.

The representation and integration of internal and external cues is crucial for any organism to execute appropriate behaviors. In insects, a highly conserved region of the brain, the central complex (CX), functions in the representation of spatial information and behavioral states, as well as the transformation of this information into desired navigational commands. How does this relatively invariant structure enable the incorporation of information from the diversity of anatomical, behavioral, and ecological niches occupied by insects? Here, we examine the input channels to the CX in the context of their development and evolution. Insect brains develop from ~ 100 neuroblasts per hemisphere that divide systematically to form "lineages" of sister neurons, that project to their target neuropils along anatomically characteristic tracts. Overlaying this developmental tract information onto the recently generated Drosophila "hemibrain" connectome and integrating this information with the anatomical and physiological recording of neurons in other species, we observe neuropil and lineage-specific innervation, connectivity, and activity profiles in CX input channels. We posit that the proliferative potential of neuroblasts and the lineage-based architecture of information channels enable the modification of neural networks across existing, novel, and deprecated modalities in a species-specific manner, thus forming the substrate for the evolution and diversification of insect navigational circuits.

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来源期刊
CiteScore
4.80
自引率
14.30%
发文量
67
审稿时长
1 months
期刊介绍: The Journal of Comparative Physiology A welcomes original articles, short reviews, and short communications in the following fields: - Neurobiology and neuroethology - Sensory physiology and ecology - Physiological and hormonal basis of behavior - Communication, orientation, and locomotion - Functional imaging and neuroanatomy Contributions should add to our understanding of mechanisms and not be purely descriptive. The level of organization addressed may be organismic, cellular, or molecular. Colour figures are free in print and online.
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