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动物最亲近的亲属中的电信号传导与协同行为。

Electrical signaling and coordinated behavior in the closest relative of animals.

作者信息

Colgren Jeffrey, Burkhardt Pawel

机构信息

Michael Sars Centre, University of Bergen, 5008 Bergen, Norway.

出版信息

Sci Adv. 2025 Jan 10;11(2):eadr7434. doi: 10.1126/sciadv.adr7434. Epub 2025 Jan 8.

Abstract

The transition from simple to complex multicellularity involves division of labor and specialization of cell types. In animals, complex sensory-motor systems are primarily built around specialized cells of muscles and neurons, though the evolutionary origins of these and their integration remain unclear. Here, to investigate sensory-behavior coupling in the closest relatives of animals, we established a line of the choanoflagellate, which stably expresses the calcium indicator RGECO1. Using this, we identify a previously unknown cellular behavior associated with electrical signaling, in which ciliary arrest is coupled with apical-basal contraction of the cell. This behavior and the associated calcium transients are synchronized in the multicellular state and result in coordinated ciliary arrest and colony-wide contraction, suggesting that information is spread among the cells. Our work reveals fundamental insights into how choanoflagellates sense and respond to their environment and enhances our understanding of the integration of cellular and organism-wide behavior in the closest protistan relatives of animals.

摘要

从简单的多细胞生物向复杂的多细胞生物的转变涉及细胞类型的分工和专业化。在动物中,复杂的感觉运动系统主要围绕肌肉和神经元的特化细胞构建,尽管这些细胞及其整合的进化起源仍不清楚。在这里,为了研究动物最亲近的亲属中的感觉-行为耦合,我们建立了一条稳定表达钙指示剂RGECO1的领鞭毛虫系。利用这个,我们确定了一种与电信号相关的先前未知的细胞行为,其中纤毛停止与细胞的顶端-基部收缩相关联。这种行为和相关的钙瞬变在多细胞状态下是同步的,并导致纤毛停止和群体范围的收缩协调一致,这表明信息在细胞间传播。我们的工作揭示了关于领鞭毛虫如何感知和响应环境的基本见解,并增强了我们对动物最亲近的原生生物亲属中细胞和整个生物体行为整合的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8b6b/11708886/8a72edb44107/sciadv.adr7434-f1.jpg

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