Zobrazeno 1 - 10
of 223
pro vyhledávání: '"Paolo Pompa"'
Autor:
Elisa De Luca, Deborah Pedone, Anna Scarsi, Roberto Marotta, Federico Catalano, Doriana Debellis, Lorenzo Cursi, Benedetto Grimaldi, Mauro Moglianetti, Pier Paolo Pompa
Publikováno v:
Small Science, Vol 4, Iss 9, Pp n/a-n/a (2024)
The highly efficient peroxidase‐like activity of platinum nanozymes (3–20 nm size) is exploited within the complex cellular environment to catalyze the oxidation of the DAB substrate, producing an electron‐dense signal around the nanozyme surfa
Externí odkaz:
https://doaj.org/article/e7be5034e5ea48e8b0b4e0fd20a6dde7
Autor:
Annapaola Petrosino, Roberto Saporetti, Francesco Starinieri, Edoardo Sarti, Luca Ulfo, Luca Boselli, Andrea Cantelli, Andrea Morini, Suleman Khan Zadran, Giampaolo Zuccheri, Zeno Pasquini, Matteo Di Giosia, Luca Prodi, Pier Paolo Pompa, Paolo Emidio Costantini, Matteo Calvaresi, Alberto Danielli
Publikováno v:
iScience, Vol 26, Iss 10, Pp 108032- (2023)
Summary: Growing antibiotic resistance has encouraged the revival of phage-inspired antimicrobial approaches. On the other hand, photodynamic therapy (PDT) is considered a very promising research domain for the protection against infectious diseases.
Externí odkaz:
https://doaj.org/article/9a982da35a5645b3ad0d3093e0491099
Autor:
Sebastian Franco-Ulloa, Giuseppina Tatulli, Sigbjørn Løland Bore, Mauro Moglianetti, Pier Paolo Pompa, Michele Cascella, Marco De Vivo
Publikováno v:
Nature Communications, Vol 11, Iss 1, Pp 1-10 (2020)
Citrate-stabilized metallic colloids are key materials towards chemosensing and catalysis applications. Here the authors introduce a new theoretical model to estimate how the stoichiometry of citrate molecules absorbed onto spherical metallic nanopar
Externí odkaz:
https://doaj.org/article/1f6382bb4f2e4860883252f747794bfc
Autor:
Mireya Viviana Belloso Daza, Anna Scarsi, Francesca Gatto, Gabriele Rocchetti, Pier Paolo Pompa, Pier Sandro Cocconcelli
Publikováno v:
Antioxidants, Vol 12, Iss 5, p 1029 (2023)
Platinum nanoparticles (PtNPs) are being intensively explored as efficient nanozymes due to their biocompatibility coupled with excellent catalytic activities, which make them potential candidates as antimicrobial agents. Their antibacterial efficacy
Externí odkaz:
https://doaj.org/article/e8258a0d517549b7a199d3f2a8303719
Publikováno v:
Biosensors, Vol 12, Iss 10, p 896 (2022)
A simple, rapid, and sensitive point-of-care (POC) device for the on-site detection of doxorubicin was developed. The proposed method relies on the naked-eye detection of the intrinsic fluorescence of the drug in a lateral flow device (LFD) configura
Externí odkaz:
https://doaj.org/article/8af6f244280e4f95943ec8c40e04c3e9
Autor:
Anissa Pisani, Roberto Donno, Giulio Valenti, Pier Paolo Pompa, Nicola Tirelli, Giuseppe Bardi
Publikováno v:
Nanomaterials, Vol 12, Iss 20, p 3560 (2022)
Specific cell targeting to deliver nanoparticles can be achieved by tailored modifications of the material surface with chemical moieties. The selection of the cell targets can be optimized by covering the nanoparticle with molecules, the receptor ex
Externí odkaz:
https://doaj.org/article/bb8721f734214c39ade09aacf2a8a7f1
Autor:
Giulia Tarricone, Valentina Castagnola, Valentina Mastronardi, Lorenzo Cursi, Doriana Debellis, Dinu Zinovie Ciobanu, Andrea Armirotti, Fabio Benfenati, Luca Boselli, Pier Paolo Pompa
Publikováno v:
Nano Letters. 23:4660-4668
Publikováno v:
Biosensors, Vol 12, Iss 6, p 375 (2022)
A rapid point-of-care method for the colorimetric detection of cisplatin was developed, exploiting the efficient conversion of the chemotherapeutic drug into a high-performance nanocatalyst with peroxidase enzyme mimics. This assay provides high spec
Externí odkaz:
https://doaj.org/article/e5968a2f30be4753816142c062d99a0e
Autor:
Diana Nelli, Valentina Mastronardi, Rosaria Brescia, Pier Paolo Pompa, Mauro Moglianetti, Riccardo Ferrando
Publikováno v:
Nano Letters. 23:2644-2650
Publikováno v:
Frontiers in Bioengineering and Biotechnology, Vol 8 (2020)
Externí odkaz:
https://doaj.org/article/5850c546097c498082072341f82dddc7