用于平行细菌趋化试验的多重微流控平台

IF 1 Q3 BIOLOGY Bio-protocol Pub Date : 2024-09-05 DOI:10.21769/BioProtoc.5062
Michael R Stehnach, Richard J Henshaw, Sheri A Floge, Jeffrey S Guasto
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引用次数: 0

摘要

微生物通过趋化作用对环境化学梯度的感知和反应调节着许多对生态系统功能、人类健康和疾病至关重要的微生物过程。微流控技术已成为研究微生物趋化作用不可或缺的工具,可对时空化学条件进行精确、稳健和可重复的控制。以往的技术包括将层流图案化和止流扩散相结合,以产生准稳定化学梯度,从而直接探测单细胞反应,或加载微孔,在准稳定化学条件下诱导和捕获趋化细菌。这种微流控方法体现了细胞行为的高时空分辨率与浓度特异性趋化反应的高通量筛选之间的权衡。不过,要想弄清各种化合物和浓度是如何介导微生物的营养吸收、繁殖和毒素趋化等过程,这两方面都是必要的。在这里,我们介绍了多重趋化装置(MCD)的操作规程,这是一种并行化微流体平台,用于在一系列化学浓度范围内对游动微生物进行高效、高通量和高分辨率的趋化筛选。双层聚二甲基硅氧烷(PDMS)装置的第一层包括一个串行稀释网络,旨在通过单个化学溶液输入产生五个对数稀释的趋化浓度和一个对照。第二层装置中的层流使细胞悬浮液和缓冲溶液与六种独立趋化试验中的每一种趋化刺激溶液接触,其中微生物的反应随时间同时成像。MCD 是通过标准摄影和软光刻技术制作的,可为装置中的每项实验提供稳定、可重复的化学刺激浓度。这种微流控平台提供了一种趋化测定方法,将高通量筛选方法与单细胞分辨率相结合,从而更全面地了解趋化介导的微生物过程。主要特点 - 在无尘室中使用光刻技术制造微通道母模,并使用掩模对准器制造多级特征高度。- 使用标准软光刻技术,根据母模复制成型,用 PDMS 制作微流控装置。- 由此产生的微通道需要对驱动入口压力进行一次性校准,校准后,来自相同母模的装置将具有稳定的性能。- 该微流体平台经过优化和测试,可用于测量游动原核生物的趋化性。
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Multiplexed Microfluidic Platform for Parallel Bacterial Chemotaxis Assays.

The sensing of and response to ambient chemical gradients by microorganisms via chemotaxis regulates many microbial processes fundamental to ecosystem function, human health, and disease. Microfluidics has emerged as an indispensable tool for the study of microbial chemotaxis, enabling precise, robust, and reproducible control of spatiotemporal chemical conditions. Previous techniques include combining laminar flow patterning and stop-flow diffusion to produce quasi-steady chemical gradients to directly probe single-cell responses or loading micro-wells to entice and ensnare chemotactic bacteria in quasi-steady chemical conditions. Such microfluidic approaches exemplify a trade-off between high spatiotemporal resolution of cell behavior and high-throughput screening of concentration-specific chemotactic responses. However, both aspects are necessary to disentangle how a diverse range of chemical compounds and concentrations mediate microbial processes such as nutrient uptake, reproduction, and chemorepulsion from toxins. Here, we present a protocol for the multiplexed chemotaxis device (MCD), a parallelized microfluidic platform for efficient, high-throughput, and high-resolution chemotaxis screening of swimming microbes across a range of chemical concentrations. The first layer of the two-layer polydimethylsiloxane (PDMS) device comprises a serial dilution network designed to produce five logarithmically diluted chemostimulus concentrations plus a control from a single chemical solution input. Laminar flow in the second device layer brings a cell suspension and buffer solution into contact with the chemostimuli solutions in each of six separate chemotaxis assays, in which microbial responses are imaged simultaneously over time. The MCD is produced via standard photography and soft lithography techniques and provides robust, repeatable chemostimulus concentrations across each assay in the device. This microfluidic platform provides a chemotaxis assay that blends high-throughput screening approaches with single-cell resolution to achieve a more comprehensive understanding of chemotaxis-mediated microbial processes. Key features • Microchannel master molds are fabricated using photolithography techniques in a clean room with a mask aligner to fabricate multilevel feature heights. • The microfluidic device is fabricated from PDMS using standard soft lithography replica molding from the master molds. • The resulting microchannel requires a one-time calibration of the driving inlet pressures, after which devices from the same master molds have robust performance. • The microfluidic platform is optimized and tested for measuring chemotaxis of swimming prokaryotes.

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