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本文引用的文献

1
Bistable emergence of oscillations in growing biofilms.生物膜生长过程中振荡的双稳涌现
Proc Natl Acad Sci U S A. 2018 Sep 4;115(36):E8333-E8340. doi: 10.1073/pnas.1805004115. Epub 2018 Aug 20.
2
Role of metabolic spatiotemporal dynamics in regulating biofilm colony expansion.代谢时空动力学在调控生物膜菌落扩张中的作用。
Proc Natl Acad Sci U S A. 2018 Apr 17;115(16):4288-4293. doi: 10.1073/pnas.1706920115. Epub 2018 Apr 2.
3
Energy-efficient neural information processing in individual neurons and neuronal networks.个体神经元和神经网络中的节能神经信息处理。
J Neurosci Res. 2017 Nov;95(11):2253-2266. doi: 10.1002/jnr.24131. Epub 2017 Aug 22.
4
Perspective of ions and messengers: an intricate link between potassium, glutamate, and cyclic di-AMP.离子与信使的视角:钾、谷氨酸和环二磷酸腺苷之间的复杂联系
Curr Genet. 2018 Feb;64(1):191-195. doi: 10.1007/s00294-017-0734-3. Epub 2017 Aug 20.
5
Endogenous Bioelectric Signaling Networks: Exploiting Voltage Gradients for Control of Growth and Form.内源性生物电信号网络:利用电压梯度控制生长和形态。
Annu Rev Biomed Eng. 2017 Jun 21;19:353-387. doi: 10.1146/annurev-bioeng-071114-040647.
6
Coupling between distant biofilms and emergence of nutrient time-sharing.远距离生物膜之间的耦合以及营养物质分时利用的出现。
Science. 2017 May 12;356(6338):638-642. doi: 10.1126/science.aah4204. Epub 2017 Apr 6.
7
Species-Independent Attraction to Biofilms through Electrical Signaling.通过电信号实现的对生物膜的非物种特异性吸引。
Cell. 2017 Jan 12;168(1-2):200-209.e12. doi: 10.1016/j.cell.2016.12.014.
8
Early evolution of neurons.神经元的早期进化
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9
Biofilms: an emergent form of bacterial life.生物膜:细菌的一种新兴生命形式。
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10
Spreading depolarization in the brain of Drosophila is induced by inhibition of the Na+/K+-ATPase and mitigated by a decrease in activity of protein kinase G.果蝇大脑中的扩散性去极化是由钠钾ATP酶的抑制所诱导,并通过蛋白激酶G活性的降低而减轻。
J Neurophysiol. 2016 Sep 1;116(3):1152-60. doi: 10.1152/jn.00353.2016. Epub 2016 Jun 29.

细菌群落中类脑电信号的代谢基础。

Metabolic basis of brain-like electrical signalling in bacterial communities.

机构信息

1 Department of Experimental and Health Sciences, Universitat Pompeu Fabra , Barcelona Biomedical Research Park, Barcelona 08003 , Spain.

2 Center for Infectious Diseases Research and Tsinghua-Peking Center for Life Sciences, School of Medicine, Tsinghua University , Beijing 100084 , People's Republic of China.

出版信息

Philos Trans R Soc Lond B Biol Sci. 2019 Jun 10;374(1774):20180382. doi: 10.1098/rstb.2018.0382.

DOI:10.1098/rstb.2018.0382
PMID:31006362
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6553584/
Abstract

Information processing in the mammalian brain relies on a careful regulation of the membrane potential dynamics of its constituent neurons, which propagates across the neuronal tissue via electrical signalling. We recently reported the existence of electrical signalling in a much simpler organism, the bacterium Bacillus subtilis. In dense bacterial communities known as biofilms, nutrient-deprived B. subtilis cells in the interior of the colony use electrical communication to transmit stress signals to the periphery, which interfere with the growth of peripheral cells and reduce nutrient consumption, thereby relieving stress from the interior. Here, we explicitly address the interplay between metabolism and electrophysiology in bacterial biofilms, by introducing a spatially extended mathematical model that combines the metabolic and electrical components of the phenomenon in a discretized reaction-diffusion scheme. The model is experimentally validated by environmental and genetic perturbations, and confirms that metabolic stress is transmitted through the bacterial population via a potassium wave. Interestingly, this behaviour is reminiscent of cortical spreading depression in the brain, characterized by a wave of electrical activity mediated by potassium diffusion that has been linked to various neurological disorders, calling for future studies on the evolutionary link between the two phenomena. This article is part of the theme issue 'Liquid brains, solid brains: How distributed cognitive architectures process information'.

摘要

哺乳动物大脑中的信息处理依赖于其组成神经元的膜电位动力学的精细调节,这种调节通过电信号在神经元组织中传播。我们最近在一种更为简单的生物体——枯草芽孢杆菌中报告了电信号的存在。在被称为生物膜的密集细菌群落中,菌落内部处于营养匮乏状态的枯草芽孢杆菌细胞利用电通信将应激信号传递到外围,从而干扰外围细胞的生长并减少营养消耗,从而减轻内部的压力。在这里,我们通过引入一个空间扩展的数学模型,明确地研究了细菌生物膜中代谢和电生理学之间的相互作用,该模型在离散的反应-扩散方案中结合了现象的代谢和电学成分。该模型通过环境和遗传扰动进行了实验验证,并证实代谢应激通过细菌种群通过钾波传递。有趣的是,这种行为让人联想到大脑中的皮质扩散性抑制,其特征是由钾扩散介导的电活动波与各种神经疾病有关,这呼吁未来对这两种现象之间的进化联系进行研究。本文是主题为“液体大脑,固体大脑:分布式认知架构如何处理信息”的特刊的一部分。