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多重亲和测量法分析细胞外囊泡结合动力学。

Multiplexed Affinity Measurements of Extracellular Vesicles Binding Kinetics.

机构信息

Department of Electrical Engineering, Boston University, Boston, MA 02215, USA.

NanoView Biosciences, Boston, MA 02135, USA.

出版信息

Sensors (Basel). 2021 Apr 9;21(8):2634. doi: 10.3390/s21082634.

Abstract

Extracellular vesicles (EVs) have attracted significant attention as impactful diagnostic biomarkers, since their properties are closely related to specific clinical conditions. However, designing experiments that involve EVs phenotyping is usually highly challenging and time-consuming, due to laborious optimization steps that require very long or even overnight incubation durations. In this work, we demonstrate label-free, real-time detection, and phenotyping of extracellular vesicles binding to a multiplexed surface. With the ability for label-free kinetic binding measurements using the Interferometric Reflectance Imaging Sensor (IRIS) in a microfluidic chamber, we successfully optimize the capture reaction by tuning various assay conditions (incubation time, flow conditions, surface probe density, and specificity). A single (less than 1 h) experiment allows for characterization of binding affinities of the EVs to multiplexed probes. We demonstrate kinetic characterization of 18 different probe conditions, namely three different antibodies, each spotted at six different concentrations, simultaneously. The affinity characterization is then analyzed through a model that considers the complexity of multivalent binding of large structures to a carpet of probes and therefore introduces a combination of fast and slow association and dissociation parameters. Additionally, our results confirm higher affinity of EVs to aCD81 with respect to aCD9 and aCD63. Single-vesicle imaging measurements corroborate our findings, as well as confirming the EVs nature of the captured particles through fluorescence staining of the EVs membrane and cargo.

摘要

细胞外囊泡 (EVs) 作为有影响力的诊断生物标志物引起了极大的关注,因为它们的特性与特定的临床情况密切相关。然而,由于需要繁琐的优化步骤,实验设计涉及 EVs 的表型通常极具挑战性和耗时,这些步骤需要非常长甚至过夜的孵育时间。在这项工作中,我们展示了无标记、实时检测和表型分析细胞外囊泡与多通道表面的结合。使用干涉反射成像传感器 (IRIS) 在微流控室中进行无标记动力学结合测量的能力,我们通过调整各种测定条件(孵育时间、流动条件、表面探针密度和特异性)成功优化了捕获反应。单个(不到 1 小时)实验允许对 EVs 与多通道探针的结合亲和力进行特征描述。我们通过考虑到复杂的多价结合来分析动力学特性,对于大结构与探针地毯的结合,引入了快速和缓慢结合和解离参数的组合。此外,我们的结果证实了 EVs 对 aCD81 的亲和力高于 aCD9 和 aCD63。单囊泡成像测量证实了我们的发现,并通过 EV 膜和货物的荧光染色证实了捕获颗粒的 EV 性质。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6d92/8069658/c2a6327ba70f/sensors-21-02634-g001.jpg

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