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Acoustofluidic medium exchange for preparation of electrocompetent bacteria using channel wall trapping

Comprehensive integration of process steps into a miniaturised version of synthetic biology workflows remains a crucial task in automating the design of biosystems. However, each of these process steps has specific demands with respect to the environmental conditions, including in particular the com...

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Autores principales: Gerlt, M. S., Ruppen, P., Leuthner, M., Panke, S., Dual, J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8577197/
https://www.ncbi.nlm.nih.gov/pubmed/34668506
http://dx.doi.org/10.1039/d1lc00406a
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author Gerlt, M. S.
Ruppen, P.
Leuthner, M.
Panke, S.
Dual, J.
author_facet Gerlt, M. S.
Ruppen, P.
Leuthner, M.
Panke, S.
Dual, J.
author_sort Gerlt, M. S.
collection PubMed
description Comprehensive integration of process steps into a miniaturised version of synthetic biology workflows remains a crucial task in automating the design of biosystems. However, each of these process steps has specific demands with respect to the environmental conditions, including in particular the composition of the surrounding fluid, which makes integration cumbersome. As a case in point, transformation, i.e. reprogramming of bacteria by delivering exogenous genetic material (such as DNA) into the cytoplasm, is a key process in molecular engineering and modern biotechnology in general. Transformation is often performed by electroporation, i.e. creating pores in the membrane using electric shocks in a low conductivity environment. However, cell preparation for electroporation can be cumbersome as it requires the exchange of growth medium (high-conductivity) for low-conductivity medium, typically performed via multiple time-intensive centrifugation steps. To simplify and miniaturise this step, we developed an acoustofluidic device capable of trapping the bacterium Escherichia coli non-invasively for subsequent exchange of medium, which is challenging in acoustofluidic devices due to detrimental acoustic streaming effects. With an improved etching process, we were able to produce a thin wall between two microfluidic channels, which, upon excitation, can generate streaming fields that complement the acoustic radiation force and therefore can be utilised for trapping of bacteria. Our novel design robustly traps Escherichia coli at a flow rate of 10 μL min(−1) and has a cell recovery performance of 47 ± 3% after washing the trapped cells. To verify that the performance of the medium exchange device is sufficient, we tested the electrocompetence of the recovered cells in a standard transformation procedure and found a transformation efficiency of 8 × 10(5) CFU per μg of plasmid DNA. Our device is a low-volume alternative to centrifugation-based methods and opens the door for miniaturisation of a plethora of microbiological and molecular engineering protocols.
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spelling pubmed-85771972021-12-13 Acoustofluidic medium exchange for preparation of electrocompetent bacteria using channel wall trapping Gerlt, M. S. Ruppen, P. Leuthner, M. Panke, S. Dual, J. Lab Chip Chemistry Comprehensive integration of process steps into a miniaturised version of synthetic biology workflows remains a crucial task in automating the design of biosystems. However, each of these process steps has specific demands with respect to the environmental conditions, including in particular the composition of the surrounding fluid, which makes integration cumbersome. As a case in point, transformation, i.e. reprogramming of bacteria by delivering exogenous genetic material (such as DNA) into the cytoplasm, is a key process in molecular engineering and modern biotechnology in general. Transformation is often performed by electroporation, i.e. creating pores in the membrane using electric shocks in a low conductivity environment. However, cell preparation for electroporation can be cumbersome as it requires the exchange of growth medium (high-conductivity) for low-conductivity medium, typically performed via multiple time-intensive centrifugation steps. To simplify and miniaturise this step, we developed an acoustofluidic device capable of trapping the bacterium Escherichia coli non-invasively for subsequent exchange of medium, which is challenging in acoustofluidic devices due to detrimental acoustic streaming effects. With an improved etching process, we were able to produce a thin wall between two microfluidic channels, which, upon excitation, can generate streaming fields that complement the acoustic radiation force and therefore can be utilised for trapping of bacteria. Our novel design robustly traps Escherichia coli at a flow rate of 10 μL min(−1) and has a cell recovery performance of 47 ± 3% after washing the trapped cells. To verify that the performance of the medium exchange device is sufficient, we tested the electrocompetence of the recovered cells in a standard transformation procedure and found a transformation efficiency of 8 × 10(5) CFU per μg of plasmid DNA. Our device is a low-volume alternative to centrifugation-based methods and opens the door for miniaturisation of a plethora of microbiological and molecular engineering protocols. The Royal Society of Chemistry 2021-10-20 /pmc/articles/PMC8577197/ /pubmed/34668506 http://dx.doi.org/10.1039/d1lc00406a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Gerlt, M. S.
Ruppen, P.
Leuthner, M.
Panke, S.
Dual, J.
Acoustofluidic medium exchange for preparation of electrocompetent bacteria using channel wall trapping
title Acoustofluidic medium exchange for preparation of electrocompetent bacteria using channel wall trapping
title_full Acoustofluidic medium exchange for preparation of electrocompetent bacteria using channel wall trapping
title_fullStr Acoustofluidic medium exchange for preparation of electrocompetent bacteria using channel wall trapping
title_full_unstemmed Acoustofluidic medium exchange for preparation of electrocompetent bacteria using channel wall trapping
title_short Acoustofluidic medium exchange for preparation of electrocompetent bacteria using channel wall trapping
title_sort acoustofluidic medium exchange for preparation of electrocompetent bacteria using channel wall trapping
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8577197/
https://www.ncbi.nlm.nih.gov/pubmed/34668506
http://dx.doi.org/10.1039/d1lc00406a
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