The detection of metal nanoparticles (NPs) in solution is essential for environmental monitoring and indirect detection of chemical and biological analytes when NPs are used as labels. Here we detect 4 nm diameter citrate-stabilized (cit) Au NPs using indium tin oxide-coated glass electrodes (glass/ITO) by (1) electrophoretic deposition (EPD) of varying concentrations of 4 nm cit Au NPs and varying EPD time (30 s to 5 h), (2) seeded electrochemical deposition (ECD) of Au for 1 to 10 min to selectively grow the 4 nm cit Au NPs into larger structures, and (3) anodic stripping voltammetry (ASV) of Au in 0.010 M KBr plus 0.1 M KClO. For varying concentrations from 170 nM down to 1.7 nM (in terms of Au) and a constant 1 min ECD time, the EPD time required to achieve a maximum ASV signal increases with decreasing Au NP concentration. With 0.17 nM and 0.017 nM concentrations and 1 min ECD times, the Au NPs could not be distinguished from a blank solution even for EPD times up to 5 h. Using EPD times of 30 min and increasing the ECD time to 5-10 min allowed reliable detection with a linear response from 0 nM to 0.2 nM with a sensitivity of 371 μA/nM and limit of detection (LOD) of 0.01 nM in terms of Au and 5 fM in terms of Au NPs, which is competitive with the lowest reported values in the literature. Our method is fast, simple, and low cost with very low LOD that can likely be pushed even lower with increasing ECD time further. The method is selective against 9 nm diameter cit Ag NPs with a signal for Au 10 times greater than that for Ag.
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http://dx.doi.org/10.1021/acs.analchem.4c02708 | DOI Listing |
Anal Chem
December 2024
Department of Chemistry, University of Louisville, Louisville, Kentucky 40292, United States.
The detection of metal nanoparticles (NPs) in solution is essential for environmental monitoring and indirect detection of chemical and biological analytes when NPs are used as labels. Here we detect 4 nm diameter citrate-stabilized (cit) Au NPs using indium tin oxide-coated glass electrodes (glass/ITO) by (1) electrophoretic deposition (EPD) of varying concentrations of 4 nm cit Au NPs and varying EPD time (30 s to 5 h), (2) seeded electrochemical deposition (ECD) of Au for 1 to 10 min to selectively grow the 4 nm cit Au NPs into larger structures, and (3) anodic stripping voltammetry (ASV) of Au in 0.010 M KBr plus 0.
View Article and Find Full Text PDFInt J Pharm X
December 2024
Department of Biochemistry, Faculty of Medicine Siriraj Hospital, Mahidol University, Bangkok 10700, Thailand.
Cancer-associated fibroblasts (CAFs) are abundant stromal cells residing in a tumor microenvironment (TME) which are associated with the progression of tumor. Herein, we developed novel CAFs-targeting polymeric nanoparticles encapsulating a synthetic 8--methylfusarubin (OMF) compound (OMF@NPs-anti-FAP). Anti-FAP/fibroblast activation protein antibody was employed as a CAFs-targeting ligand.
View Article and Find Full Text PDFACS Appl Bio Mater
November 2024
Biochemistry, Molecular Endocrinology and Reproductive Physiology Laboratory, Department of Human Physiology, Vidyasagar University, Midnapore, West Bengal, India, 721102.
Triple-negative breast cancer (TNBC) is recognized as a major aggressive subtype of breast cancer due to its expeditious worsening growth, extensive metastatic capability, and recalcitrance to standard current treatments. Hesperetin (HSP), a natural bioflavonoid from citrus fruits, demonstrates pronounced anticancer efficacy, but its hydrophobicity limits its clinical development. The present study reports the fabrication of a biocompatible and pH-responsive transferrin (TF) receptor-targeted HSP-loaded poly(lactic--glycolic acid) (PLGA) nanobioconjugate (PLGA-HSP-TF NPs) and the exploration of its and antineoplastic potential.
View Article and Find Full Text PDFChem Res Toxicol
October 2024
Division of Molecular Medicine, Bose Institute, P 1/12, CIT Scheme VIIM, Kankurgachi, Kolkata-700054, India.
Titanium oxide nanoparticles (TiO NPs) have been regarded as a legacy nanomaterial due to their widespread usage across multiple fields. The TiO NPs have been and are still extensively used as a food and cosmetic additive and in wastewater and sewage treatment, paints, and industrial catalysis as ultrafine TiO. Recent developments in nanotechnology have catapulted it into a potent antibacterial and anticancer agent due to its excellent photocatalytic potential that generates substantial amounts of highly reactive oxygen radicals.
View Article and Find Full Text PDFSci Rep
August 2024
Department of Chemistry, Central Institute of Technology Kokrajhar (Deemed to be University, under MoE, Govt. of India), Kokrajhar, Assam, 783370, India.
In the present study, green synthetic pathway was adapted to synthesize CuO-ZnO bimetallic nanoparticles (BNPs) using Eryngium foetidum leaf extract and their anti-cancer activity against MCF7 breast cancer cell lines, anti-microbial activity and in vitro anti-oxidant activity were evaluated. Various bio-active compounds present in leaf extract were responsible for the reduction of CuO-ZnO NPs from respective Cu and Zn metal precursors. In the present study, the involvement of bio-active compounds present in E.
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