Monitoring Populations of Single Extracellular Vesicles from Pseudomonas aeruginosa Using Large Parallel Arrays of Zero-Mode Waveguides

IF 6.2
Jarek Metro, Abigail A. Weaver, Julius Reitemeier, Charlie Desnoyers and Paul W. Bohn*, 
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引用次数: 0

Abstract

Extracellular vesicles (EV) have emerged as key factors for intercellular communication, disease biomarkers, and vaccines, but EV populations generally exhibit broad heterogeneity, making single-vesicle measurements critical in order to understand the roles played by EVs and the pathways they utilize. To circumvent the exhaustive isolation and concentration protocols and/or long incubation periods required by common single-vesicle characterization methods, we have developed a method for the in situ study of single EVs from crude Pseudomonas aeruginosa culture in real-time with minimal sample preparation using nanopore-based zero-mode waveguides (ZMW). The dimensions of the ZMW allow only a single EV to occupy the nanopore volume, making it possible to monitor large arrays of single EVs one-at-a-time in parallel. Furthermore, the attoliter-volume ZMW nanopores restrict the much larger P. aeruginosa cells from entering the observation volume, eliminating the need to isolate EVs from their parent cells. Lipophilic fluorophores are used to selectively tag the EV membrane, thereby restricting optical observations to single EVs captured one-at-a-time in individual ZMW nanopores. By fashioning the ZMWs into 21 × 21 arrays, 441 individual observation volumes can be observed in parallel, revealing the heterogeneity of single EV responses, which is usually masked by ensemble averaging when examining hundreds of events at once without spatial segregation. The minimal sample preparation and ability to monitor the sample in situ enables real-time analysis of changes in the bacterial culture environment, since detection of EVs is governed solely by diffusion of the particle into the ZMW optical volume. The work described here presents an approach for studying EV heterogeneity in crude bacterial culture and makes it possible to observe shifts in the vesicle population in response to culture perturbations in real-time.

利用大型平行零模波导阵列监测铜绿假单胞菌胞外囊泡群
细胞外囊泡(EV)已成为细胞间通讯、疾病生物标志物和疫苗的关键因素,但EV群体通常表现出广泛的异质性,因此单囊泡测量对于了解EV所起的作用及其利用的途径至关重要。为了避免常见的单囊泡表征方法所需要的详尽的分离和浓缩协议和/或长潜伏期,我们开发了一种方法,用于实时原位研究铜绿假单胞菌粗培养物中的单个ev,使用基于纳米孔的零模波导(ZMW)进行最小样品制备。ZMW的尺寸只允许单个EV占据纳米孔体积,从而可以一次一个地并行监测单个EV的大型阵列。此外,100升体积的ZMW纳米孔限制了更大的铜绿假单胞菌细胞进入观察体积,从而消除了从亲本细胞中分离ev的需要。亲脂性荧光团用于选择性标记EV膜,从而将光学观察限制在单个ZMW纳米孔中一次捕获单个EV。通过将ZMWs形成21 × 21的阵列,可以并行观察441个单独的观测体积,揭示了单个EV响应的异质性,而在没有空间隔离的情况下一次检查数百个事件时,通常用集合平均来掩盖这种异质性。最小的样品制备和原位监测样品的能力使实时分析细菌培养环境的变化成为可能,因为ev的检测仅受粒子扩散到ZMW光学体积的控制。本文所描述的工作提供了一种研究粗细菌培养中EV异质性的方法,并使实时观察囊泡种群响应培养扰动的变化成为可能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Precision Chemistry
Precision Chemistry 精密化学技术-
CiteScore
0.80
自引率
0.00%
发文量
0
期刊介绍: Chemical research focused on precision enables more controllable predictable and accurate outcomes which in turn drive innovation in measurement science sustainable materials information materials personalized medicines energy environmental science and countless other fields requiring chemical insights.Precision Chemistry provides a unique and highly focused publishing venue for fundamental applied and interdisciplinary research aiming to achieve precision calculation design synthesis manipulation measurement and manufacturing. It is committed to bringing together researchers from across the chemical sciences and the related scientific areas to showcase original research and critical reviews of exceptional quality significance and interest to the broad chemistry and scientific community.
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