دورية أكاديمية

Silver Nanoparticle Surface Chemistry Determines Interactions with Human Serum Albumin and Cytotoxic Responses in Human Liver Cells

التفاصيل البيبلوغرافية
العنوان: Silver Nanoparticle Surface Chemistry Determines Interactions with Human Serum Albumin and Cytotoxic Responses in Human Liver Cells
المؤلفون: Kira M. Fahy (13804317), Madeline K. Eiken (14375828), Karl V. Baumgartner (14375831), Kaitlyn Q. Leung (14375834), Sarah E. Anderson (8214798), Erik Berggren (14375837), Evangelia Bouzos (14375840), Lauren R. Schmitt (14375843), Prashanth Asuri (511501), Korin E. Wheeler (2077783)
سنة النشر: 2023
مصطلحات موضوعية: Biophysics, Biochemistry, Medicine, Molecular Biology, Biotechnology, Cancer, Hematology, Space Science, Biological Sciences not elsewhere classified, Chemical Sciences not elsewhere classified, Physical Sciences not elsewhere classified, silver engineered nanomaterials, human serum albumin, hepg2 cells across, dynamic light scattering, circular dichroism spectroscopy, three agenm types, mediate biochemical interactions, 40 nm agenms, three agenm coatings, protein upon interaction, coated agenms compared, coated agenms cause, positively charged bpei, coated agenms, charged coatings, protein interactions, biophysical interactions, agenms alter, two coatings
الوصف: Engineered nanomaterials (ENMs) are synthesized with a diversity of surface chemistries that mediate biochemical interactions and physiological response to the particles. In this work, silver engineered nanomaterials (AgENMs) are used to evaluate the role of surface charge in protein interactions and cellular cytotoxicity. The most abundant protein in blood, human serum albumin (HSA), was interacted with 40 nm AgENMs with a range of surface-charged coatings: positively charged branched polyethyleneimine (bPEI), negatively charged citrate (CIT), and circumneutral poly(ethylene glycol) (PEG). HSA adsorption to AgENMs was monitored by UV–vis spectroscopy and dynamic light scattering, while changes to the protein structure were evaluated with circular dichroism spectroscopy. Binding affinity for citrate-coated AgENMs and HSA is largest among the three AgENM coatings; yet, HSA lost the most secondary structure upon interaction with bPEI-coated AgENMs compared to the other two coatings. HSA increased AgENM oxidative dissolution across all particle types, with the greatest dissolution for citrate-coated AgENMs. Results indicate that surface coating is an important consideration in transformation of both the particle and protein upon interaction. To connect results to cellular outcomes, we also performed cytotoxicity experiments with HepG2 cells across all three AgENM types with and without HSA. Results show that bPEI-coated AgENMs cause the greatest loss of cell viability, both with and without inclusion of HSA with the AgENMs. Thus, surface coatings on AgENMs alter both biophysical interactions with proteins and particle cytotoxicity. Within this study set, positively charged bPEI-coated AgENMs cause the greatest disruption to HSA structure and cell viability.
نوع الوثيقة: article in journal/newspaper
اللغة: unknown
العلاقة: https://figshare.com/articles/journal_contribution/Silver_Nanoparticle_Surface_Chemistry_Determines_Interactions_with_Human_Serum_Albumin_and_Cytotoxic_Responses_in_Human_Liver_Cells/21861887Test
DOI: 10.1021/acsomega.2c06882.s001
الإتاحة: https://doi.org/10.1021/acsomega.2c06882.s001Test
حقوق: CC BY-NC 4.0
رقم الانضمام: edsbas.8472770A
قاعدة البيانات: BASE