Ultrafast and Controlled Capturing, Loading, and Release of Extracellular Vesicles by a Portable Microstructured Electrochemical Fluidic Device

Author:

Krivitsky Vadim1ORCID,Krivitsky Adva1,Mantella Valeria1,Ben‐Yehuda Greenwald Maya2,Sankar Devanarayanan Siva3,Betschmann Jil1,Bader Johannes1,Zoratto Nicole1,Schreier Kento1,Feiss Sarah1,Walker Dario1,Dengjel Jörn3,Werner Sabine2,Leroux Jean‐Christophe1ORCID

Affiliation:

1. Institute of Pharmaceutical Sciences Department of Chemistry and Applied Biosciences ETH Zurich Zurich 8093 Switzerland

2. Institute of Molecular Health Sciences Department of Biology ETH Zurich Zurich 8093 Switzerland

3. Department of Biology University of Fribourg Fribourg 1700 Switzerland

Abstract

AbstractExtracellular vesicles (EVs) are secreted by all living cells and are found in body fluids. They exert numerous physiological and pathological functions and serve as cargo shuttles. Due to their safety and inherent bioactivity, they have emerged as versatile therapeutic agents, biomarkers, and potential drug carriers. Despite the growing interest in EVs, current progress in this field is, in part, limited by relatively inefficient isolation techniques. Conventional methods are indeed slow, laborious, require specialized laboratory equipment, and may result in low yield and purity. This work describes an electrochemically controlled “all‐in‐one” device enabling capturing, loading, and releasing of EVs. The device is composed of a fluidic channel confined within antibody‐coated microstructured electrodes. It rapidly isolates EVs with a high level of purity from various biofluids. As a proof of principle, the device is applied to isolate EVs from skin wounds of healthy and diabetic mice. Strikingly, it is found that EVs from healing wounds of diabetic mice are enriched in mitochondrial proteins compared to those of healthy mice. Additionally, the device improves the loading protocol of EVs with polyplexes, and may therefore find applications in nucleic acid delivery. Overall, the electrochemical device can greatly facilitate the development of EVs‐based technologies.

Funder

Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung

Université de Fribourg

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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