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用电化学微孔阵列直接测量总囊泡儿茶酚胺含量

Direct Measurement of Total Vesicular Catecholamine Content with Electrochemical Microwell Arrays.

作者信息

Ranjbari Elias, Taleat Zahra, Mapar Mokhtar, Aref Mohaddeseh, Dunevall Johan, Ewing Andrew

机构信息

Department of Chemistry and Molecular Biology, University of Gothenburg, Gothenburg, Sweden.

Division of Biological Physics, Department of Applied Physics, Chalmers University of Technology, SE-41296 Gothenburg, Sweden.

出版信息

Anal Chem. 2020 Aug 18;92(16):11325-11331. doi: 10.1021/acs.analchem.0c02010. Epub 2020 Aug 4.

Abstract

We have designed and fabricated a microwell array chip (MWAC) to trap and detect the entire content of individual vesicles after disruption of the vesicular membrane by an applied electrical potential. To understand the mechanism of vesicle impact electrochemical cytometry (VIEC) in microwells, we simulated the rupture of the vesicles and subsequent diffusion of entrapped analytes. Two possibilities were tested: (i) the vesicle opens toward the electrode, and (ii) the vesicle opens away from the electrode. These two possibilities were simulated in the different microwells with varied depth and width. Experimental VIEC measurements of the number of molecules for each vesicle in the MWAC were compared to VIEC on a gold microdisk electrode as a control, and the quantified catecholamines between these two techniques was the same. We observed a prespike foot in a significant number of events (∼20%) and argue this supports the hypothesis that the vesicles rupture toward the electrode surface with a more complex mechanism including the formation of a stable pore intermediate. This study not only confirms that in standard VIEC experiments the whole content of the vesicle is oxidized and quantified at the surface of the microdisk electrode but actively verifies that the adsorbed vesicle on the surface of the electrode forms a pore in the vicinity of the electrode rather than away from it. The fabricated MWAC promotes our ability to quantify the content of vesicles accurately, which is fundamentally important in bioanalysis of the vesicles.

摘要

我们设计并制造了一种微孔阵列芯片(MWAC),通过施加电势破坏囊泡膜后,捕获并检测单个囊泡的全部内容物。为了理解微孔中囊泡冲击电化学细胞术(VIEC)的机制,我们模拟了囊泡的破裂以及随后被捕获分析物的扩散。测试了两种可能性:(i)囊泡朝向电极打开,以及(ii)囊泡远离电极打开。在具有不同深度和宽度的不同微孔中模拟了这两种可能性。将MWAC中每个囊泡的分子数量的实验性VIEC测量结果与作为对照的金微盘电极上的VIEC进行比较,并且这两种技术之间的儿茶酚胺定量结果相同。我们在大量事件(约20%)中观察到一个尖峰前的波谷,并认为这支持了以下假设,即囊泡以更复杂的机制(包括形成稳定的孔中间体)朝向电极表面破裂。这项研究不仅证实了在标准的VIEC实验中,囊泡的全部内容物在微盘电极表面被氧化并定量,而且还积极验证了电极表面吸附的囊泡在电极附近而非远离电极处形成孔。制造的MWAC提高了我们准确量化囊泡内容物的能力,这在囊泡的生物分析中至关重要。

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