Single-cell phenotyping of extracellular electron transfer via microdroplet encapsulation.

IF 3.9 2区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Applied and Environmental Microbiology Pub Date : 2025-01-31 Epub Date: 2025-01-14 DOI:10.1128/aem.02465-24
Gina Partipilo, Emily K Bowman, Emma J Palmer, Yang Gao, Rodney S Ridley, Hal S Alper, Benjamin K Keitz
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Abstract

Electroactive organisms contribute to metal cycling, pollutant removal, and other redox-driven environmental processes via extracellular electron transfer (EET). Unfortunately, developing genotype-phenotype relationships for electroactive organisms is challenging because EET is necessarily removed from the cell of origin. Microdroplet emulsions, which encapsulate individual cells in aqueous droplets, have been used to study a variety of extracellular phenotypes but have not been applied to investigate EET. Here, we describe the development of a microdroplet emulsion system to sort and enrich EET-capable organisms from complex populations. We validated our system using the model electrogen Shewanella oneidensis and described the tooling of a benchtop microfluidic system for oxygen-limited conditions. We demonstrated the enrichment of strains exhibiting electroactive phenotypes from mixed wild-type and EET-deficient populations. As a proof-of-concept application, we collected samples from iron sedimentation in Town Lake (Austin, TX) and subjected them to microdroplet enrichment. We measured an increase in electroactive organisms in the sorted population that was distinct compared to a population growing in bulk culture with Fe(III) as the sole electron acceptor. Finally, two bacterial species not previously shown to be EET-capable, Cronobacter sakazakii and Vagococcus fessus, were further cultured and characterized for electroactivity. Our results demonstrate the utility of microdroplet emulsions for isolating and identifying EET-capable bacteria.IMPORTANCEThis work outlines a new high-throughput method for identifying electroactive bacteria from mixed populations. Electroactive bacteria play key roles in iron trafficking, soil remediation, and pollutant degradation. Many existing methods for identifying electroactive bacteria are coupled to microbial growth and fitness-as a result, the contributions from weak or poor-growing electrogens are often muted. However, extracellular electron transfer (EET) has historically been difficult to study in high-throughput in a mixed population since extracellular reduction is challenging to trace back to the parent cell and there are no suitable fluorescent readouts for EET. Our method circumvents these challenges by utilizing an aqueous microdroplet emulsion wherein a single cell is statistically isolated in a pico- to nano-liter-sized droplet. Then, via fluorescence obtained from copper reduction, the mixed population can be fluorescently sorted and gated by performance. Utilizing our technique, we characterize two previously unrecognized weak electrogens Vagococcus fessus and Cronobacter sakazakii.

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通过微滴封装的细胞外电子转移的单细胞表型。
电活性生物通过细胞外电子转移(EET)促进金属循环、污染物去除和其他氧化还原驱动的环境过程。不幸的是,开发电活性生物的基因型-表型关系是具有挑战性的,因为EET必须从起源细胞中去除。微滴乳剂将单个细胞包裹在水滴中,已被用于研究各种细胞外表型,但尚未应用于研究EET。在这里,我们描述了一种微滴乳液系统的发展,以从复杂的种群中筛选和富集具有eet能力的生物。我们使用电子希瓦氏菌模型验证了我们的系统,并描述了氧气限制条件下台式微流体系统的工具。我们证明了从混合野生型和eet缺乏群体中富集出具有电活性表型的菌株。作为概念验证应用,我们从镇湖(奥斯汀,德克萨斯州)的铁沉积物中收集样品,并对其进行微滴富集。我们测量到,与以Fe(III)作为唯一电子受体的群体相比,在分类群体中电活性生物的增加是明显的。最后,研究人员进一步培养了两种以前未被证明具有eet能力的细菌,即阪崎克罗诺杆菌(Cronobacter sakazaki)和雪球菌(Vagococcus fessus),并对其电活性进行了表征。我们的研究结果证明了微滴乳剂在分离和鉴定eet能力细菌方面的实用性。这项工作概述了一种新的高通量方法,用于从混合群体中鉴定电活性细菌。电活性细菌在铁转运、土壤修复和污染物降解等方面发挥着重要作用。许多现有的鉴定电活性细菌的方法都是与微生物的生长和适应性相结合的,因此,来自弱或生长不良的电原的贡献往往被减弱。然而,细胞外电子转移(EET)一直难以在混合群体中进行高通量研究,因为细胞外还原很难追溯到亲本细胞,并且没有合适的荧光读数用于EET。我们的方法通过利用水微滴乳液来规避这些挑战,其中单个细胞在统计上被隔离在微米到纳米升大小的液滴中。然后,通过铜还原获得的荧光,混合种群可以根据性能进行荧光分选和门控。利用我们的技术,我们表征了两个以前未被识别的弱电原迷走球菌和阪崎克罗诺杆菌。
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来源期刊
Applied and Environmental Microbiology
Applied and Environmental Microbiology 生物-生物工程与应用微生物
CiteScore
7.70
自引率
2.30%
发文量
730
审稿时长
1.9 months
期刊介绍: Applied and Environmental Microbiology (AEM) publishes papers that make significant contributions to (a) applied microbiology, including biotechnology, protein engineering, bioremediation, and food microbiology, (b) microbial ecology, including environmental, organismic, and genomic microbiology, and (c) interdisciplinary microbiology, including invertebrate microbiology, plant microbiology, aquatic microbiology, and geomicrobiology.
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