Pattern Engineering of Living Bacterial Colonies Using Meniscus-Driven Fluidic Channels
Author(s) -
Vasily Kantsler,
Elena Ontañón-McDonald,
Cansu Küey,
Manjari J Ghanshyam,
Maria Chiara Roffin,
Munehiro Asally
Publication year - 2020
Publication title -
acs synthetic biology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.156
H-Index - 66
ISSN - 2161-5063
DOI - 10.1021/acssynbio.0c00146
Subject(s) - robustness (evolution) , living systems , synthetic biology , nanotechnology , fluidics , bacillus subtilis , microfluidics , biology , computer science , biochemical engineering , computational biology , artificial intelligence , materials science , engineering , aerospace engineering , bacteria , biochemistry , genetics , gene
Creating adaptive, sustainable, and dynamic biomaterials is a forthcoming mission of synthetic biology. Engineering spatially organized bacterial communities has a potential to develop such bio-metamaterials. However, generating living patterns with precision, robustness, and a low technical barrier remains as a challenge. Here we present an easily implementable technique for patterning live bacterial populations using a controlled meniscus-driven fluidics system, named as MeniFluidics. We demonstrate multiscale patterning of biofilm colonies and swarms with submillimeter resolution. Utilizing the faster bacterial spreading in liquid channels, MeniFluidics allows controlled bacterial colonies both in space and time to organize fluorescently labeled Bacillus subtilis strains into a converged pattern and to form dynamic vortex patterns in confined bacterial swarms. The robustness, accuracy, and low technical barrier of MeniFluidics offer a tool for advancing and inventing new living materials that can be combined with genetically engineered systems, and adding to fundamental research into ecological, evolutional, and physical interactions between microbes.
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