Torna ai risultati
Scheda bibliografica · Consultazione e accesso
Artículo

Advances in antimicrobial photodynamic inactivation at the nanoscale

Kashef Nasim et al · Wiley · 2017

Accesso aperto disponibile
Lettura rapida. Controlla i dati essenziali della risorsa e accedi al contenuto con il pulsante principale. La scheda mostra solo le informazioni necessarie per identificare, citare e aprire l’opera.
Pubblicazione seriale

3-D near-field imaging of guided modes in nanophotonic waveguides

Questa pubblicazione seriale contiene 146 contenuti correlati.

Accesso alla risorsa

Apri il contenuto dall’opzione principale o scegli un’altra fonte disponibile.

DOAJ DOAJ Articles
Entrar por DOAJ
Accesso principale

Accesso aperto disponibile

Recurso identificado como acceso abierto, sin confirmar automáticamente si es texto completo directo.
Apri risorsa

Riepilogo

Descripción general del contenido del recurso.

The alarming worldwide increase in antibiotic resistance amongst microbial pathogens necessitates a search for new antimicrobial techniques, which will not be affected by, or indeed cause resistance themselves. Light-mediated photoinactivation is one such technique that takes advantage of the whole spectrum of light to destroy a broad spectrum of pathogens. Many of these photoinactivation techniques rely on the participation of a diverse range of nanoparticles and nanostructures that have dimensions very similar to the wavelength of light. Photodynamic inactivation relies on the photochemical production of singlet oxygen from photosensitizing dyes (type II pathway) that can benefit remarkably from formulation in nanoparticle-based drug delivery vehicles. Fullerenes are a closed-cage carbon allotrope nanoparticle with a high absorption coefficient and triplet yield. Their photochemistry is highly dependent on microenvironment, and can be type II in organic solvents and type I (hydroxyl radicals) in a biological milieu. Titanium dioxide nanoparticles act as a large band-gap semiconductor that can carry out photo-induced electron transfer under ultraviolet A light and can also produce reactive oxygen species that kill microbial cells. We discuss some recent studies in which quite remarkable potentiation of microbial killing (up to six logs) can be obtained by the addition of simple inorganic salts such as the non-toxic sodium/potassium iodide, bromide, nitrite, and even the toxic sodium azide. Interesting mechanistic insights were obtained to explain this increased killing.

Come citare

Elegí el formato que necesitás y copiá la referencia al portapapeles.

APA 7

al, K. N. E. (2017). Advances in antimicrobial photodynamic inactivation at the nanoscale. https://doi.org/10.1515/nanoph-2016-0189

MLA

al, Kashef Nasim et. "Advances in antimicrobial photodynamic inactivation at the nanoscale." 2017. https://doi.org/10.1515/nanoph-2016-0189.

Chicago

al, Kashef Nasim et. 2017. "Advances in antimicrobial photodynamic inactivation at the nanoscale.". https://doi.org/10.1515/nanoph-2016-0189.

Harvard

al, K. N. E. 2017, Advances in antimicrobial photodynamic inactivation at the nanoscale, Wiley, available at: https://doi.org/10.1515/nanoph-2016-0189 [Accessed 5 Aug. 2026].

Condividi e stampa

Salva la scheda, copia il link permanente o stampala in PDF.

Esporta riferimento

Esporta il record nei formati più comuni per usarlo con un gestore bibliografico.

Dettagli della risorsa

Informazioni bibliografiche utili per verificare che sia il materiale corretto.

Titolo
Advances in antimicrobial photodynamic inactivation at the nanoscale
Autore / collaboratori
Kashef Nasim et al
Editore
Wiley
Anno di pubblicazione
2017
ISSN
2192-8614
ISSN
2192-8614
Lingua
Inglés

Soggetti

Esplora risorse correlate a partire da questi soggetti.

Copiato