Chemotaxis under flow disorder shapes microbial dispersion in porous media

被引:0
作者
Pietro de Anna
Amir A. Pahlavan
Yutaka Yawata
Roman Stocker
Ruben Juanes
机构
[1] Institute of Earth Sciences,Department of Mechanical and Aerospace Engineering
[2] University of Lausanne,Department of Civil and Environmental Engineering
[3] Princeton University,Department of Earth, Atmospheric and Planetary Sciences
[4] Faculty of Life and Environmental Sciences,undefined
[5] University of Tsukuba,undefined
[6] Institute of Environmental Engineering,undefined
[7] Department of Civil,undefined
[8] Environmental and Geomatic Engineering,undefined
[9] ETH Zurich,undefined
[10] Massachusetts Institute of Technology,undefined
[11] Massachusetts Institute of Technology,undefined
来源
Nature Physics | 2021年 / 17卷
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摘要
Natural soils are host to a high density1 and diversity2 of microorganisms, and even deep-earth porous rocks provide a habitat for active microbial communities3. In these environments, microbial transport by disordered flows is relevant for a broad range of natural and engineered processes, from biochemical cycling to remineralization and bioremediation4–7. Yet, how bacteria are transported and distributed in the subsurface as a result of the disordered flow and the associated chemical gradients characteristic of porous media has remained poorly understood, in part because studies have so far focused on steady, macroscale chemical gradients8–10. Here, we use a microfluidic model system that captures flow disorder and chemical gradients at the pore scale to quantify the transport and dispersion of the soil-dwelling bacterium Bacillus subtilis in porous media. We observe that chemotaxis strongly modulates the persistence of bacteria in low-flow regions of the pore space, resulting in a 100% increase in their dispersion coefficient. This effect stems directly from the strong pore-scale gradients created by flow disorder and demonstrates that the microscale interplay between bacterial behaviour and pore-scale disorder can impact the macroscale dynamics of biota in the subsurface.
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页码:68 / 73
页数:5
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共 97 条
[1]  
Whitman WB(1998)Prokaryotes: the unseen majority Proc. Natl Acad. Sci. USA 95 6578-6583
[2]  
Coleman DC(2002)Prokaryotic diversity—magnitude, dynamics and controlling factors Science 296 1064-1066
[3]  
Wiebe WJ(2008)Environmental genomics reveals a single-species ecosystem deep within earth Science 322 275-278
[4]  
Torsvik V(2003)Biogeochemical hot spots and hot moments at the interface of terrestrial and aquatic ecosystems Ecosystems 6 301-312
[5]  
Øvreås L(2004)Biogenic manganese oxides: properties and mechanisms of formation Annu. Rev. Earth Planet. Sci. 32 287-328
[6]  
Thingstad TF(2007)Physical constraints affecting bacterial habitats and activity in unsaturated porous media—a review Adv. Water Resour. 30 1505-1527
[7]  
Chivian D(2013)Catchments as reactors: a comprehensive approach for water fluxes and solute turnover Environ. Earth Sci. 69 317-333
[8]  
McClain ME(2004)Quantification of bacterial chemotaxis in porous media using magnetic resonance imaging Environ. Sci. Technol. 38 3864-3870
[9]  
Tebo BM(2009)Transverse bacterial migration induced by chemotaxis in a packed column with structured physical heterogeneity Environ. Sci. Technol. 43 5921-5927
[10]  
Or D(2011)Chemotaxis increases vertical migration and apparent transverse dispersion of bacteria in a bench-scale microcosm Biotechnol. Bioeng. 108 2070-2077