For the first time, we exploited the antiviral and antibacterial properties of Ag NPs stabilised by quaternized hydroxyethyl cellulose (Ag-HEC) against SARS-CoV-2 and Escherichia coli through an eco-friendly process at room temperature in three different environments: 1) water, where Ag was dispersed as a nanosol, 2) textiles, where Ag was applied as a coating, and 3) hydrogel where Ag is embedded. The antiviral performance of Ag-HEC nanosols was quantified through the selectivity index (SI), defined as the ratio between 50% cytotoxic and inhibitory concentration, in order to evaluate the ability to be active in a concentration range below the cytotoxicity value. The collected results pointed out an actual enhanced risk/benefit profile of Ag-HEC NPs with respect to chloroquine, with an SI of 22.2 and 8.4, respectively. Antibacterial and antiviral activities of Ag-HEC NPs immobilized on textiles or mucosa-like hydrogels were also assessed and their efficacy in potential application as protective clothing or nasal molecular masks was verified. This work demonstrated that a modern, safe and sustainable design allows traditional colloidal silver-based technologies to be efficiently exploited for a broad spectrum of antimicrobial solutions against bacterial and viral infections.

Eco design for Ag-based solutions against SARS-CoV-2 and E. coli / Costa, A. L.; Blosi, M.; Brigliadori, A.; Zanoni, I.; Ortelli, S.; Simeone, F. C.; Delbue, S.; D'Alessandro, S.; Parapini, S.; Vineis, C.; Varesano, A.; Toprak, M. S.; Hamawandi, B.; Gardini, D.. - In: ENVIRONMENTAL SCIENCE. NANO. - ISSN 2051-8153. - 9:11(2022), pp. 4295-4304. [10.1039/d2en00178k]

Eco design for Ag-based solutions against SARS-CoV-2 and E. coli

Brigliadori A.;
2022-01-01

Abstract

For the first time, we exploited the antiviral and antibacterial properties of Ag NPs stabilised by quaternized hydroxyethyl cellulose (Ag-HEC) against SARS-CoV-2 and Escherichia coli through an eco-friendly process at room temperature in three different environments: 1) water, where Ag was dispersed as a nanosol, 2) textiles, where Ag was applied as a coating, and 3) hydrogel where Ag is embedded. The antiviral performance of Ag-HEC nanosols was quantified through the selectivity index (SI), defined as the ratio between 50% cytotoxic and inhibitory concentration, in order to evaluate the ability to be active in a concentration range below the cytotoxicity value. The collected results pointed out an actual enhanced risk/benefit profile of Ag-HEC NPs with respect to chloroquine, with an SI of 22.2 and 8.4, respectively. Antibacterial and antiviral activities of Ag-HEC NPs immobilized on textiles or mucosa-like hydrogels were also assessed and their efficacy in potential application as protective clothing or nasal molecular masks was verified. This work demonstrated that a modern, safe and sustainable design allows traditional colloidal silver-based technologies to be efficiently exploited for a broad spectrum of antimicrobial solutions against bacterial and viral infections.
2022
Eco design for Ag-based solutions against SARS-CoV-2 and E. coli / Costa, A. L.; Blosi, M.; Brigliadori, A.; Zanoni, I.; Ortelli, S.; Simeone, F. C.; Delbue, S.; D'Alessandro, S.; Parapini, S.; Vineis, C.; Varesano, A.; Toprak, M. S.; Hamawandi, B.; Gardini, D.. - In: ENVIRONMENTAL SCIENCE. NANO. - ISSN 2051-8153. - 9:11(2022), pp. 4295-4304. [10.1039/d2en00178k]
File in questo prodotto:
Non ci sono file associati a questo prodotto.

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11381/2973357
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 9
  • ???jsp.display-item.citation.isi??? 9
social impact