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From the Cover: 3D printing of microscopic bacterial communities

机译:从封面:微观细菌群落的3D打印

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摘要

Bacteria communicate via short-range physical and chemical signals, interactions known to mediate quorum sensing, sporulation, and other adaptive phenotypes. Although most in vitro studies examine bacterial properties averaged over large populations, the levels of key molecular determinants of bacterial fitness and pathogenicity (e.g., oxygen, quorum-sensing signals) may vary over micrometer scales within small, dense cellular aggregates believed to play key roles in disease transmission. A detailed understanding of how cell–cell interactions contribute to pathogenicity in natural, complex environments will require a new level of control in constructing more relevant cellular models for assessing bacterial phenotypes. Here, we describe a microscopic three-dimensional (3D) printing strategy that enables multiple populations of bacteria to be organized within essentially any 3D geometry, including adjacent, nested, and free-floating colonies. In this laser-based lithographic technique, microscopic containers are formed around selected bacteria suspended in gelatin via focal cross-linking of polypeptide molecules. After excess reagent is removed, trapped bacteria are localized within sealed cavities formed by the cross-linked gelatin, a highly porous material that supports rapid growth of fully enclosed cellular populations and readily transmits numerous biologically active species, including polypeptides, antibiotics, and quorum-sensing signals. Using this approach, we show that a picoliter-volume aggregate of Staphylococcus aureus can display substantial resistance to β-lactam antibiotics by enclosure within a shell composed of Pseudomonas aeruginosa.
机译:细菌通过短距离的物理和化学信号,相互作用来介导群体感应,孢子形成和其他适应性表型进行交流。尽管大多数体外研究检查的是平均细菌种群总数的平均值,但细菌适应性和致病性的关键分子决定因素(例如氧气,群体感应信号)的水平可能会在微米级范围内变化,这些微小,密集的细胞聚集体起着关键作用在疾病传播中。在自然,复杂的环境中,对细胞间相互作用如何导致致病性的详细了解将需要在构建更相关的细胞模型以评估细菌表型时提高控制水平。在这里,我们描述了一种微观的三维(3D)打印策略,该策略可使多个细菌种群在基本上任何3D几何形状内组织起来,包括相邻,嵌套和自由漂浮的菌落。在这种基于激光的光刻技术中,通过多肽分子的聚焦交联,在悬浮于明胶中的选定细菌周围形成了微观容器。去除多余的试剂后,捕获的细菌将定位在由交联明胶形成的密封腔内,明胶是一种高度多孔的材料,可支持完全封闭的细胞群的快速生长,并易于传播多种生物活性物质,包括多肽,抗生素和群体感应信号。使用这种方法,我们显示出金黄色葡萄球菌的微微升体积聚集体可以通过包围由铜绿假单胞菌组成的壳而显示出对β-内酰胺抗生素的实质性抗性。

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