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自生成的氧气浓度梯度控制着光合微生物的集体聚集。

Self-generated oxygen gradients control collective aggregation of photosynthetic microbes.

机构信息

Max Planck Institute for Dynamics and Self-Organization (MPIDS), Am Faßberg 17, 37077 Göttingen, Germany.

Nordita, KTH Royal Institute of Technology and Stockholm University, Hannes Alfvéns väg 12, 106 91 Stockholm, Sweden.

出版信息

J R Soc Interface. 2021 Dec;18(185):20210553. doi: 10.1098/rsif.2021.0553. Epub 2021 Dec 1.

Abstract

For billions of years, photosynthetic microbes have evolved under the variable exposure to sunlight in diverse ecosystems and microhabitats all over our planet. Their abilities to dynamically respond to alterations of the luminous intensity, including phototaxis, surface association and diurnal cell cycles, are pivotal for their survival. If these strategies fail in the absence of light, the microbes can still sustain essential metabolic functionalities and motility by switching their energy production from photosynthesis to oxygen respiration. For suspensions of motile cells above a critical density, we demonstrate that this switch reversibly controls collective microbial aggregation. Aerobic respiration dominates over photosynthesis in conditions of low light, which causes the microbial motility to sensitively depend on the local availability of oxygen. For dense microbial populations in self-generated oxygen gradients, microfluidic experiments and continuum theory based on a reaction-diffusion mechanism show that oxygen-regulated motility enables the collective emergence of highly localized regions of high and low cell densities.

摘要

数十亿年来,光合微生物在地球的各种生态系统和小生境中,不断变化的阳光照射下进化。它们能够动态响应光强的变化,包括趋光性、表面附着和昼夜细胞周期,这对它们的生存至关重要。如果在没有光照的情况下这些策略失败,微生物仍然可以通过将能量生产从光合作用切换到氧气呼吸来维持基本的代谢功能和能动性。对于超过临界密度的运动细胞悬浮液,我们证明这种转换可以可逆地控制微生物的聚集。在低光条件下,有氧呼吸占主导地位,这导致微生物的能动性对局部氧气的可用性非常敏感。对于在自生成氧气梯度中的密集微生物种群,微流控实验和基于反应扩散机制的连续体理论表明,氧气调节的能动性使高度局部化的高细胞密度和低细胞密度区域能够集体出现。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2ef1/8633776/de8993fa2cc3/rsif20210553f01.jpg

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