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原始社会性昆虫中可塑性和特化的自组织

Self-organization of plasticity and specialization in a primitively social insect.

机构信息

Epigenetics Programme, Babraham Institute, Cambridge CB22 3AT, UK.

Max Planck Institute for the Physics of Complex Systems, Noethnitzer Str. 38, 01187 Dresden, Germany.

出版信息

Cell Syst. 2022 Sep 21;13(9):768-779.e4. doi: 10.1016/j.cels.2022.08.002. Epub 2022 Aug 30.

Abstract

Biological systems have the capacity to not only build and robustly maintain complex structures but also to rapidly break up and rebuild such structures. Here, using primitive societies of Polistes wasps, we show that both robust specialization and rapid plasticity are emergent properties of multi-scale dynamics. We combine theory with experiments that, after perturbing the social structure by removing the queen, correlate time-resolved multi-omics with video recordings. We show that the queen-worker dimorphism relies on the balance between the development of a molecular queen phenotype in all insects and colony-scale inhibition of this phenotype via asymmetric interactions. This allows Polistes to be stable against intrinsic perturbations of molecular states while reacting plastically to extrinsic cues affecting the whole society. Long-term stability of the social structure is reinforced by dynamic DNA methylation. Our study provides a general principle of how both specialization and plasticity can be achieved in biological systems. A record of this paper's transparent peer review process is included in the supplemental information.

摘要

生物系统不仅具有构建和稳健维持复杂结构的能力,而且还具有快速分解和重建此类结构的能力。在这里,我们使用 Polistes 胡蜂的原始社会群体,表明稳健的专业化和快速的可塑性都是多尺度动力学的新兴特性。我们将理论与实验相结合,在通过移除女王来破坏社会结构后,将时间分辨的多组学与视频记录相关联。我们表明,女王-工蜂二态性依赖于所有昆虫中分子女王表型的发育与通过不对称相互作用抑制该表型的群体尺度之间的平衡。这使得 Polistes 能够在分子状态的内在扰动下保持稳定,同时对影响整个社会的外在线索做出可塑性反应。社会结构的长期稳定性通过动态 DNA 甲基化得到加强。我们的研究提供了一个普遍的原则,即生物系统如何能够实现专业化和可塑性。本文的透明同行评审过程记录包含在补充信息中。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e0d5/9512265/00be7dad8222/fx1.jpg

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