Bioorthogonal transformations are chemical reactions that use pathways which biological processes do not access. Bioorthogonal chemistry provides new approaches for imaging and therapeutic strategies, as well as tools for fundamental biology. Bioorthogonal catalysis enables the development of bioorthogonal "factories"for on-demand and in situ generation of drugs and imaging tools. Transition metal catalysts (TMCs) are widely employed as bioorthogonal catalysts due to their high efficiency and versatility. The direct application of TMCs in living systems is challenging, however, due to their limited solubility, instability in biological media and toxicity. Incorporation of TMCs into nanomaterial scaffolds can be used to enhance aqueous solubility, improve long-term stability in biological environment and minimize cytotoxicity. These nanomaterial platforms can be engineered for biomedical applications, increasing cellular uptake, directing biodistribution, and enabling active targeting. This review summarizes strategies for incorporating TMCs into nanomaterial scaffolds, demonstrating the potential and challenges of moving bioorthogonal nanocatalysts and nanozymes toward the clinic.

Nanomaterial-based bioorthogonal nanozymes for biological applications / S. Fedeli, I. Jungkyun, G. Sanjana, L.E. James, G. Aarohi, K. Dongkap, M.R. Vincent. - In: CHEMICAL SOCIETY REVIEWS. - ISSN 1460-4744. - 50:24(2021 Dec 13), pp. 13467-13480. [10.1039/D0CS00659A]

Nanomaterial-based bioorthogonal nanozymes for biological applications

S. Fedeli
Primo
;
2021

Abstract

Bioorthogonal transformations are chemical reactions that use pathways which biological processes do not access. Bioorthogonal chemistry provides new approaches for imaging and therapeutic strategies, as well as tools for fundamental biology. Bioorthogonal catalysis enables the development of bioorthogonal "factories"for on-demand and in situ generation of drugs and imaging tools. Transition metal catalysts (TMCs) are widely employed as bioorthogonal catalysts due to their high efficiency and versatility. The direct application of TMCs in living systems is challenging, however, due to their limited solubility, instability in biological media and toxicity. Incorporation of TMCs into nanomaterial scaffolds can be used to enhance aqueous solubility, improve long-term stability in biological environment and minimize cytotoxicity. These nanomaterial platforms can be engineered for biomedical applications, increasing cellular uptake, directing biodistribution, and enabling active targeting. This review summarizes strategies for incorporating TMCs into nanomaterial scaffolds, demonstrating the potential and challenges of moving bioorthogonal nanocatalysts and nanozymes toward the clinic.
Settore CHEM-05/A - Chimica organica
13-dic-2021
nov-2021
Article (author)
File in questo prodotto:
File Dimensione Formato  
Nanomaterial-basedbioorthogonalnanozymesfor biologicalapplications_Chem Soc Rev 2021.pdf

accesso riservato

Tipologia: Publisher's version/PDF
Dimensione 8.82 MB
Formato Adobe PDF
8.82 MB Adobe PDF   Visualizza/Apri   Richiedi una copia
Print_Nanomaterial based bioorthogonal nanozymes for biological applications_Revised MS.pdf

accesso aperto

Tipologia: Post-print, accepted manuscript ecc. (versione accettata dall'editore)
Dimensione 7.86 MB
Formato Adobe PDF
7.86 MB Adobe PDF Visualizza/Apri
Pubblicazioni consigliate

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/2434/1102269
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 108
  • ???jsp.display-item.citation.isi??? 105
  • OpenAlex ND
social impact