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RESEARCH PRODUCT

Anticancer activity of biogenerated silver nanoparticles: an integrated proteomic investigation

Salvatore FeoGianluca Di CaraClaudia FaleriFranco BaldiNadia Ninfa AlbaneseMiriam ButtacavoliRosa AlduinaGiuseppe GalloMichele GalloPatrizia CancemiGiuseppe Pizzolanti

subject

0301 basic medicineProgrammed cell deathSettore BIO/11 - Biologia MolecolareMitochondrionmedicine.disease_causeSettore BIO/19 - Microbiologia Generale03 medical and health sciencesproteomicsbreast cancer cellmedicineMTT assaySettore BIO/06 - Anatomia Comparata E Citologiabacteriachemistry.chemical_classificationAnticancer activity; Bacteria; Breast cancer cells; Proteomics; Silver nanoparticles (AgNPs); OncologyReactive oxygen speciesBreast cancer cellsChemistryAutophagysilver nanoparticles (AgNPs)Cell biology030104 developmental biologyanticancer activitysilver nanoparticles (AgNPs); bacteria; breast cancer cells; anticancer activity; proteomicsOncologyApoptosisSKBR3Oxidative stressResearch Paper

description

Silver nanoparticles (AgNPs), embedded into a specific polysaccharide (EPS), were biogenerated by Klebsiella oxytoca DSM 29614 under aerobic (AgNPs-EPSaer) and anaerobic conditions (AgNPs-EPSanaer). Both AgNPs-EPS matrices were tested by MTT assay for cytotoxic activity against human breast (SKBR3 and 8701-BC) and colon (HT-29, HCT 116 and Caco-2) cancer cell lines, revealing AgNPs-EPSaer as the most active, in terms of IC50, with a more pronounced efficacy against breast cancer cell lines. Therefore, colony forming capability, morphological changes, generation of reactive oxygen species (ROS), induction of apoptosis and autophagy, inhibition of migratory and invasive capabilities and proteomic changes were investigated using SKBR3 breast cancer cells with the aim to elucidate AgNPs-EPSaer mode of action. In particular, AgNPs-EPSaer induced a significant decrease of cell motility and MMP-2 and MMP-9 activity and a significant increase of ROS generation, which, in turn, supported cell death mainly through autophagy and in a minor extend through apoptosis. Consistently, TEM micrographs and the determination of total silver in subcellular fractions indicated that the Ag+ accumulated preferentially in mitochondria and in smaller concentrations in nucleus, where interact with DNA. Interestingly, these evidences were confirmed by a differential proteomic analysis that highlighted important pathways involved in AgNPs-EPSaer toxicity, including endoplasmic reticulum stress, oxidative stress and mitochondrial impairment triggering cell death trough apoptosis and/or autophagy activation.

10.18632/oncotarget.23859http://hdl.handle.net/10447/253142