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微井阵列集成纳米电极用于单个线粒体的光电化学耦联监测。

Microwell array integrating nanoelectrodes for coupled opto-electrochemical monitorings of single mitochondria.

机构信息

Univ. Bordeaux, ISM, CNRS UMR 5255, INP Bordeaux, Pessac, France.

LAAS-CNRS, Université de Toulouse, F-31400 Toulouse, France.

出版信息

Biosens Bioelectron. 2019 Feb 1;126:672-678. doi: 10.1016/j.bios.2018.11.036. Epub 2018 Nov 26.

Abstract

Chips composed of microwell arrays integrating nanoelectrodes (OptoElecWell) were developed to achieve dual optical and electrochemical detections on isolated biological entities. Each array consists in 10 microwells of 6 µm diameter × 5.2 µm height each, with a transparent bottom surface for optical observations, a platinum nano-ring electrode at its half-height for in situ electrochemistry, and a top open surface to inject solutions. Then, populations of individual mitochondria isolated from yeasts (Saccharomyces cerevisiae) were let to sediment on the array and be trapped within microwells. The trapping efficiency reached 20% but owing to the large number of microwells on the platform, hundreds of them could be filled simultaneously by single mitochondria. This allowed to follow up their individual energetic status based on fluorescence microscopy of their endogenous NADH. Simultaneously, the array of interconnected Pt nanoelectrodes in the microwells was used to monitor in situ variations of dioxygen consumed by all mitochondria captured in the device. Mitochondrial bioenergetics were modulated sequentially using respiratory chain-ATP synthase substrates (ethanol and ADP) and inhibitor (antimycin A). Overall, we show how two complementary analytical approaches, fluorescence and electrochemical detections, can be coupled for a multi-parametric monitoring of mitochondrial activities, with a resolution ranging from a small population (whole device) to the single mitochondrion level (unique well).

摘要

采用微腔阵列集成纳米电极(OptoElecWell)的芯片,实现了对单个生物实体的双重光学和电化学检测。每个微腔阵列由 10 个直径为 6 µm、高为 5.2 µm 的微腔组成,底部为透明表面,用于光学观察;在微腔的一半高度处有一个铂纳米环电极,用于原位电化学检测;顶部为开口表面,用于注入溶液。然后,将从酵母(酿酒酵母)中分离的单个线粒体群体沉积在微腔阵列上并被困在微腔中。捕获效率达到 20%,但由于平台上有大量的微腔,单个线粒体可以同时填充数百个微腔。这使得可以基于内源性 NADH 的荧光显微镜对其单个能量状态进行跟踪。同时,微腔中互连的 Pt 纳米电极阵列用于监测设备中捕获的所有线粒体消耗的氧气的原位变化。线粒体生物能学使用呼吸链-ATP 合酶的底物(乙醇和 ADP)和抑制剂(antimycin A)依次进行调节。总之,我们展示了如何将两种互补的分析方法,荧光和电化学检测,结合起来进行线粒体活动的多参数监测,分辨率从整个设备的小群体到单个线粒体水平(单个微腔)。

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