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本文引用的文献

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Bacterial Quorum-Sensing Regulation Induces Morphological Change in a Key Host Tissue during the Euprymna scolopes-Vibrio fischeri Symbiosis.细菌群体感应调控在共生的章鱼属-Vibrio fischeri 中诱导关键宿主组织的形态变化。
mBio. 2021 Oct 26;12(5):e0240221. doi: 10.1128/mBio.02402-21. Epub 2021 Sep 28.
2
Chemotactic migration of bacteria in porous media.细菌在多孔介质中的趋化迁移。
Biophys J. 2021 Aug 17;120(16):3483-3497. doi: 10.1016/j.bpj.2021.05.012. Epub 2021 May 20.
3
Patterns of bacterial motility in microfluidics-confining environments.微流控限制环境中的细菌运动模式。
Proc Natl Acad Sci U S A. 2021 Apr 27;118(17). doi: 10.1073/pnas.2013925118.
4
Modeled microgravity alters lipopolysaccharide and outer membrane vesicle production of the beneficial symbiont Vibrio fischeri.模拟微重力改变了有益共生菌费氏弧菌的脂多糖和外膜囊泡的产生。
NPJ Microgravity. 2021 Mar 8;7(1):8. doi: 10.1038/s41526-021-00138-8.
5
Asymmetric random walks reveal that the chemotaxis network modulates flagellar rotational bias in .不对称随机游动表明趋化网络调节 中的鞭毛旋转偏向。
Elife. 2021 Jan 25;10:e63936. doi: 10.7554/eLife.63936.
6
Chemotaxis strategies of bacteria with multiple run modes.具有多种游动模式的细菌的趋化策略。
Sci Adv. 2020 May 27;6(22):eaaz6153. doi: 10.1126/sciadv.aaz6153. eCollection 2020 May.
7
Interactions of Symbiotic Partners Drive the Development of a Complex Biogeography in the Squid-Vibrio Symbiosis.共生伙伴的相互作用推动了鱿鱼-弧菌共生关系中复杂生物地理学的发展。
mBio. 2020 May 26;11(3):e00853-20. doi: 10.1128/mBio.00853-20.
8
Tumble Kinematics of Escherichia coli near a Solid Surface.大肠杆菌在固体表面附近的翻滚运动学
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9
Burkholderia insecticola triggers midgut closure in the bean bug Riptortus pedestris to prevent secondary bacterial infections of midgut crypts.昆虫伯克霍尔德菌触发豆芫菁中肠闭合,以防止中肠隐窝的继发细菌感染。
ISME J. 2020 Jul;14(7):1627-1638. doi: 10.1038/s41396-020-0633-3. Epub 2020 Mar 23.
10
"super-contaminates" narrow ducts fostered by broad run-time distribution.“超级污染物”会使较宽的运行时间分布更有利于狭窄管道的形成。
Sci Adv. 2020 Mar 13;6(11):eaay0155. doi: 10.1126/sciadv.aay0155. eCollection 2020 Mar.

进入封闭空间会影响细菌的游动和逃离反应。

Transitioning to confined spaces impacts bacterial swimming and escape response.

机构信息

Pacific Biosciences Research Center, University of Hawai'i at Mānoa, Honolulu, Hawai'i.

Department of Cell and Molecular Biology, University of Hawai'i at Mānoa, Honolulu, Hawai'i.

出版信息

Biophys J. 2022 Jul 5;121(13):2653-2662. doi: 10.1016/j.bpj.2022.04.008. Epub 2022 Apr 6.

DOI:10.1016/j.bpj.2022.04.008
PMID:35398019
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9300662/
Abstract

Symbiotic bacteria often navigate complex environments before colonizing privileged sites in their host organism. Chemical gradients are known to facilitate directional taxis of these bacteria, guiding them toward their eventual destination. However, less is known about the role of physical features in shaping the path the bacteria take and defining how they traverse a given space. The flagellated marine bacterium Vibrio fischeri, which forms a binary symbiosis with the Hawaiian bobtail squid, Euprymna scolopes, must navigate tight physical confinement during colonization, squeezing through a tissue bottleneck constricting to ∼2 μm in width on the way to its eventual home. Using microfluidic in vitro experiments, we discovered that V. fischeri cells alter their behavior upon entry into confined space, straightening their swimming paths and promoting escape from confinement. Using a computational model, we attributed this escape response to two factors: reduced directional fluctuation and a refractory period between reversals. Additional experiments in asymmetric capillary tubes confirmed that V. fischeri quickly escape from confined ends, even when drawn into the ends by chemoattraction. This avoidance was apparent down to a limit of confinement approaching the diameter of the cell itself, resulting in a balance between chemoattraction and evasion of physical confinement. Our findings demonstrate that nontrivial distributions of swimming bacteria can emerge from simple physical gradients in the level of confinement. Tight spaces may serve as an additional, crucial cue for bacteria while they navigate complex environments to enter specific habitats.

摘要

共生细菌在定植宿主生物的特权部位之前,通常会在复杂环境中导航。众所周知,化学梯度有助于这些细菌的定向趋化运动,引导它们到达最终目的地。然而,对于物理特征在塑造细菌行进路径以及确定它们如何穿越给定空间方面的作用,人们了解得较少。具有鞭毛的海洋细菌 Vibrio fischeri 与夏威夷短尾乌贼 Euprymna scolopes 形成二元共生关系,在定植过程中必须适应紧密的物理限制,通过组织瓶颈,其宽度压缩到约 2 μm,才能到达最终的栖息地。通过体外微流控实验,我们发现 V. fischeri 细胞在进入受限空间时会改变其行为,使其游动路径变直,并促进其逃离受限空间。通过计算模型,我们将这种逃逸反应归因于两个因素:方向波动减小和反转之间的“不应期”。在不对称毛细管中的额外实验证实,V. fischeri 即使被化学引诱拉入管端,也能迅速从受限端逃脱。这种回避现象一直持续到接近细胞本身直径的限制极限,从而在化学引诱和逃避物理限制之间达到平衡。我们的研究结果表明,从简单的受限水平的物理梯度中可以产生非平凡的游动细菌分布。在细菌导航复杂环境以进入特定栖息地时,狭窄的空间可能成为额外的关键线索。