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Resumen

Studying specific subpopulations of cancer-derived extracellular vesicles (EVs) could help reveal their role in cancer progression. In cancer, an increase in reactive oxygen species (ROS) happens which results in lipid peroxidation with a major product of 4-hydroxynonenal (HNE). Adduction by HNE causes alteration to the structure of proteins, leading to loss of function. Blebbing of EVs carrying these HNE-adducted proteins as a cargo or carrying HNE-adducted on EV membrane are methods for clearing these molecules by the cells. We have referred to these EVs as Redox EVs. Here, we utilize a surface tension-mediated extraction process, termed exclusion-based sample preparation (ESP), for the rapid and efficient isolation of intact Redox EVs, from a mixed population of EVs derived from human glioblastoma cell line LN18. After optimizing different parameters, two populations of EVs were analyzed, those isolated from the sample (Redox EVs) and those remaining in the original sample (Remaining EVs). Electron microscopic imaging was used to confirm the presence of HNE adducts on the outer leaflet of Redox EVs. Moreover, the population of HNE-adducted Redox EVs shows significantly different characteristics to those of Remaining EVs including smaller size EVs and a more negative zeta potential EVs. We further treated glioblastoma cells (LN18), radiation-resistant glioblastoma cells (RR-LN18), and normal human astrocytes (NHA) with both Remaining and Redox EV populations. Our results indicate that Redox EVs promote the growth of glioblastoma cells, likely through the production of H2O2, and cause injury to normal astrocytes. In contrast, Remaining EVs have minimal impact on the viability of both glioblastoma cells and NHA cells. Thus, isolating a subpopulation of EVs employing ESP-based immunoaffinity could pave the way for a deeper mechanistic understanding of how subtypes of EVs, such as those containing HNE-adducted proteins, induce biological changes in the cells that take up these EVs. Graphical Abstract: (Figure presented.)

Idioma originalEnglish
Páginas (desde-hasta)6317-6331
Número de páginas15
PublicaciónAnalytical and Bioanalytical Chemistry
Volumen416
N.º28
DOI
EstadoPublished - nov 2024

Nota bibliográfica

Publisher Copyright:
© The Author(s), under exclusive licence to Springer-Verlag GmbH, DE part of Springer Nature 2024. corrected publication 2024.

Financiación

This work was supported, in part, by (1) NIH grants R01 CA251663 (L.C.), P20 GM148326 (L.C.), and R01 CA217934 (D.A.B. and D.S.) and (2) pilot funding to L.C and S.M.B. by Markey Cancer Center support grant (P30 CA177558). S.M.B., M.D.B., and S.B. were supported by NIH grants 1U01DA053903-01 and P30 ES026529, CDC contract BAA 75D301-20-R-68024, and NSF grant 2154934. The content is solely the responsibility of the authors and does not necessarily represent the official views of the National Institutes of Health.

FinanciadoresNúmero del financiador
National Science Foundation Arctic Social Science Program2154934
National Institutes of Health (NIH)P20 GM148326, R01 CA217934, R01 CA251663
University of Kentucky Markey Comprehensive Cancer CenterP30 CA177558, 1U01DA053903-01, P30 ES026529
Centers for Disease Control and PreventionBAA 75D301-20-R-68024

    ODS de las Naciones Unidas

    Este resultado contribuye a los siguientes Objetivos de Desarrollo Sostenible

    1. Good health and well being
      Good health and well being

    ASJC Scopus subject areas

    • Analytical Chemistry
    • Biochemistry

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