Bacterial motility in aqueous micro-environment with natural soil particles.

IF 1.6 4区 医学 Q4 BIOPHYSICS
Biointerphases Pub Date : 2025-07-01 DOI:10.1116/6.0004380
Diksha Shrestha, Kishan Mahmud, Sam Mortenson, Mary Savin, Wen Zhang, Yong Wang
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引用次数: 0

Abstract

Bacterial motility is essential for navigating heterogeneous environments like soil, where it plays a key role in nutrient cycling, bioremediation, and overall soil health. Despite its importance, the interplay between bacterial motility and soil microstructures-such as the effects of physical confinement and interfacial interactions-remains underexplored. In this study, we investigated the motility of Escherichia coli bacteria in aqueous micro-environments with three different natural soil samples and examined how the particle size, void fraction, and proximity to soil particles affect bacterial motility and movement patterns by quantitatively analyzing bacterial trajectories, velocities, and directional changes. We observed that bacterial velocity decreased significantly in soil micro-environments, showing a strong positive correlation with the soil particle size and a negative correlation with the void fraction of the soil samples. Additionally, bacteria in soil micro-environments showed rapid and dramatic directional changes, and the rate of directional changes of bacteria was negatively correlated with the particle size. These results were further validated with synthetic micro-environments with glass microspheres. As the density of microspheres increased, the translational velocity of bacteria decreased while the directional changes increased. This study enhances our understanding of how the soil type, porosity, and particle proximity impact bacterial movement and is expected to contribute to a better understanding of bacterial activities on soil health and management.

天然土壤颗粒在水微环境中的细菌运动。
细菌的运动对于在土壤等异质环境中导航是必不可少的,它在养分循环、生物修复和整体土壤健康中起着关键作用。尽管它很重要,但细菌运动和土壤微观结构之间的相互作用,如物理限制和界面相互作用的影响,仍然没有得到充分的探索。在这项研究中,我们通过定量分析细菌的运动轨迹、速度和方向变化,研究了三种不同天然土壤样品中大肠杆菌在水微环境中的运动,并研究了颗粒大小、空隙率和与土壤颗粒的接近程度如何影响细菌的运动和运动模式。我们观察到细菌速度在土壤微环境中显著下降,与土壤粒度呈强正相关,与土壤样品的孔隙率呈负相关。此外,土壤微环境中细菌表现出快速而剧烈的方向性变化,并且细菌方向性变化的速率与颗粒大小呈负相关。用玻璃微球合成微环境进一步验证了上述结果。随着微球密度的增加,细菌的平移速度减小,方向变化增大。该研究增强了我们对土壤类型、孔隙度和颗粒接近度如何影响细菌运动的理解,并有望有助于更好地理解细菌活动对土壤健康和管理的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biointerphases
Biointerphases 生物-材料科学:生物材料
自引率
0.00%
发文量
35
期刊介绍: Biointerphases emphasizes quantitative characterization of biomaterials and biological interfaces. As an interdisciplinary journal, a strong foundation of chemistry, physics, biology, engineering, theory, and/or modelling is incorporated into originated articles, reviews, and opinionated essays. In addition to regular submissions, the journal regularly features In Focus sections, targeted on specific topics and edited by experts in the field. Biointerphases is an international journal with excellence in scientific peer-review. Biointerphases is indexed in PubMed and the Science Citation Index (Clarivate Analytics). Accepted papers appear online immediately after proof processing and are uploaded to key citation sources daily. The journal is based on a mixed subscription and open-access model: Typically, authors can publish without any page charges but if the authors wish to publish open access, they can do so for a modest fee. Topics include: bio-surface modification nano-bio interface protein-surface interactions cell-surface interactions in vivo and in vitro systems biofilms / biofouling biosensors / biodiagnostics bio on a chip coatings interface spectroscopy biotribology / biorheology molecular recognition ambient diagnostic methods interface modelling adhesion phenomena.
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