Use of high frequency electrorotation to identify cytoplasmic changes in cells non-disruptively.

Cell-analysis Electrorotation Non-disruptive analysis, single-cell analysis

Journal

Biomedical microdevices
ISSN: 1572-8781
Titre abrégé: Biomed Microdevices
Pays: United States
ID NLM: 100887374

Informations de publication

Date de publication:
06 10 2023
Historique:
accepted: 12 09 2023
medline: 9 10 2023
pubmed: 6 10 2023
entrez: 6 10 2023
Statut: epublish

Résumé

In this paper we demonstrate how the use of frequencies ranging from 50 kHz to 5 GHz in the analysis of cells by electrorotation can open the path to the identification of differences not detectable by conventional set-ups. Earlier works usually reported electrorotation devices operating below 20 MHz, limiting the response obtained to properties associated with the cell membrane. Those devices are thus unable to resolve the physiological properties in the cytoplasm. We used microwave-based technology to extend the frequency operation to 5 GHz. At high frequencies (from tens of MHz to GHz), the electromagnetic signal passes through the membrane and allows probing the cytoplasm. This enables several applications, such as cell classification, and viability analysis. Additionally, the use of conventional microfabrication techniques reduces the cost and complexity of analysis, compared to other non-invasive methods. We demonstrated the potential of this set-up by identifying two different populations of T-lymphocytes not distinguishable through visual assessment. We also assessed the effect of calcein on cell cytoplasmic properties and used it as a controlled experiment to demonstrate the possibility of this method to detect changes happening predominantly in the cytoplasm.

Identifiants

pubmed: 37801137
doi: 10.1007/s10544-023-00677-9
pii: 10.1007/s10544-023-00677-9
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

39

Informations de copyright

© 2023. The Author(s), under exclusive licence to Springer Science+Business Media, LLC, part of Springer Nature.

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Auteurs

Camila D M Campos (C)

imec, Kapeldreef 75, 3001, Leuven, Belgium. Camila.campos@imec.be.
Department Electrical Engineering, KU Leuven, Kasteelpark Arenberg 10, 3001, Leuven, Belgium. Camila.campos@imec.be.

Kevin T Uning (KT)

imec, Kapeldreef 75, 3001, Leuven, Belgium.
Institute of Electrical and Micro Engineering, Ecole Polytechnique Federal de Lausanne, Route Cantonale, 1015, Lausanne, Switzerland.

Pawel Barmuta (P)

Department Electrical Engineering, KU Leuven, Kasteelpark Arenberg 10, 3001, Leuven, Belgium.

Tomislav Markovic (T)

Department Electrical Engineering, KU Leuven, Kasteelpark Arenberg 10, 3001, Leuven, Belgium.
Faculty of Electrical Engineering and Computing, University of Zagreb, Unska 3, 10000, Zagreb, Croatia.

Rahul Yadav (R)

imec, Kapeldreef 75, 3001, Leuven, Belgium.
imec OnePlanet Research Center, Bronland 10, 6708 WE, Wageningen, The Netherlands.

Giovanni Mangraviti (G)

imec, Kapeldreef 75, 3001, Leuven, Belgium.

Ilja Ocket (I)

imec, Kapeldreef 75, 3001, Leuven, Belgium.

Willem Van Roy (W)

imec, Kapeldreef 75, 3001, Leuven, Belgium.

Liesbet Lagae (L)

imec, Kapeldreef 75, 3001, Leuven, Belgium.
Department Physics and Astronomy, KU Leuven, Celestijnenlaan 200d, 3001, Leuven, Belgium.

Chengxun Liu (C)

imec, Kapeldreef 75, 3001, Leuven, Belgium. chengxun.liu@imec.be.

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