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Surfaces for hearts: Establishing the optimum plasma surface engineering methodology on polystyrene for cardiac cell engineering

Applied Surface Science 2023 8 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 50 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Μαρία Κιτσαρά, Dimitrios Kontziampasis, Efi Bolomiti, Efi Bolomiti, Alexandre Simon, Alexandre Simon, Panagiotis Dimitrakis, Dimitrios Kontziampasis, Antoine Miche, Georgios Kokkoris, Georgios Kokkoris, Vincent Humblot, Vincent Humblot, Onnik Agbulut

Summary

Researchers tested several plasma gas treatments on polystyrene plastic to find the best surface for growing heart muscle cells in the lab, finding that nitrogen (N2) plasma created the most stable, cell-friendly surface — improving heart cell shape, organization, and adhesion compared to untreated plastic.

Plasma surface modification is a popular method for improving cell culture on surfaces, and polystyrene (PS) is literature’s material of choice. This study identifies the optimum plasma treatment for promoting normal cardiac cell behaviour during culture. PS slides were plasma-treated with O2, N2, O2 + N2 and Ar + N2 for 20 and 30 min in a reactive ion etcher (RIE). SEM reveals that O2 and O2 + N2 plasmas create dual scale roughness, N2 plasma creates oval-shaped structures, while Ar + N2 exhibits no topography. Evaluation by XPS reveals an increase in the atomic percentage of oxygen for all treatments. Contact angle measurements agree as all treatments lead to hydrophilisation, with N2 samples exhibiting long-term stability. Two sources of cells were used to identify the optimum plasma treatment for cardiac cell culture on PS. H9c2 cells exhibit optimal behaviour with N2 and N2 + Ar regarding viability, morphology, and focal adhesion contact. The same was observed for primary cardiomyocytes on N2 samples. For purified cardiomyocytes, immunofluorescence revealed well-organised sarcomeric structure on N2 samples, exhibiting clear improvement compared to control. SEM validated these findings, as cardiomyocytes on N2-treated PS exhibited physiological, elongated shape. These findings provide solid evidence that the optimum treatment for PS is the use of N2 plasma.

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