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The single-cell chemostat: an agarose-based microfluidic device for high-throughput single-cell studies of bacteria and bacterial communities

机译:单细胞恒化:高吞吐量的琼脂糖为基础以微流体装置细菌和细菌群落的单细胞研究

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摘要

Optical microscopy of single bacteria growing on solid agarose support is a powerful method for studying the natural heterogeneity in growth and gene expression. While the material properties of agarose make it an excellent substrate for such studies, the sheer number of exponentially growing cells eventually overwhelms the agarose pad, which fundamentally limits the duration and the throughput of measurements. Here we overcome the limitations of exponential growth by patterning agarose pads on the sub-micron-scale. Linear tracks constrain the growth of bacteria into a high density array of linear micro-colonies. Buffer flow through microfluidic lines washes away excess cells and delivers fresh nutrient buffer. Densely patterned tracks allow us to cultivate and image hundreds of thousands of cells on a single agarose pad over 30-40 generations, which drastically increases single-cell measurement throughput. In addition, we show that patterned agarose can facilitate single-cell measurements of bacterial communities. As a proof-of-principle, we study a community of E. coli auxotrophs that can complement the amino acid deficiencies of one another. We find that the growth rate of colonies of one strain decreases sharply with the distance to colonies of the complementary strain over distances of only a few cell lengths. Because patterned agarose pads maintain cells in a chemostatic environment in which every cell can be imaged, we term our device the single-cell chemostat. High-throughput measurements of single cells growing chemostatically should greatly facilitate the study of a variety of microbial behaviours.
机译:生长在固体琼脂糖糖上的单细菌的光学显微镜是研究生长和基因表达中的天然异质性的强大方法。虽然琼脂糖的材料特性使其成为这种研究的优异底物,但是截然不同的细胞的纯粹数量较大,最终将琼脂糖垫极大地限制了测量的持续时间和吞吐量。在这里,我们通过在亚微米级上的图案化琼脂糖垫来克服指数增长的局限性。线性轨道将细菌的生长限制为高密度的线性微菌落阵列。缓冲液流过微流体线洗掉过量细胞并提供新鲜的营养缓冲液。密集图案轨道允许我们在30-40代以上单个琼脂糖垫上培养和图像数十万个细胞,这急剧增加单细胞测量产量。此外,我们表明图案化的琼脂糖可以促进细菌群体的单细胞测量。作为原则上的原则,我们研究了一群大肠杆菌滋巢的群落,可以补充彼此的氨基酸缺陷。我们发现一个应变的菌落的生长速率随着互补菌株的距离而在仅少量细胞长度的距离下降而降低。因为图案化的琼脂糖垫在化疗环境中维持细胞,所以可以将每种细胞成像的化疗环境中,我们术语我们的装置术语单细胞化学稳定剂。种子化切割的单细胞的高通量测量应极大地促进各种微生物行为的研究。

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