Targeting the Antifungal Activity of Carbon Dots against Candida albicans Biofilm Formation by Tailoring Their Surface Functional Groups

Author:

Sturabotti Elisa1,Camilli Alessandro1,Moldoveanu Vyali Georgian1,Bonincontro Graziana2,Simonetti Giovanna2,Valletta Alessio2,Serangeli Ilaria3,Miranda Elena3,Amato Francesco1,Marrani Andrea Giacomo1,Migneco Luisa Maria1,Sennato Simona4,Simonis Beatrice5,Vetica Fabrizio6,Leonelli Francesca1

Affiliation:

1. University of Rome La Sapienza Department of Chemistry ITALY

2. University of Rome La Sapienza Department of Environmental Biology ITALY

3. University of Rome La Sapienza Department of Biology and Biotechnology Charles Darwin ITALY

4. Research Institute of Complex Systems National Research Council Sede Sapienza c/o Physics Department ITALY

5. Institute for Biological Systems National Council Research Rome Branch Sede secondaria di Roma - Meccanismi di Reazione, c/o Dipartimento di Chimica ITALY

6. Sapienza University of Rome Department of Chemistry piazzale Aldo Moro 5 00185 Roma ITALY

Abstract

Carbon dots (CDs) are an emerging class of carbon nanoparticles, which for their characteristics have found applications in many fields such as catalysis, materials and biomedicine. Within this context, the application of CDs as antibacterial agents has received much attention in very recent years, while their use as antifungal nanoparticles has been scarcely investigated. Here we report a systematic investigation of the surface functional groups of CDs to study their influence on these nanoparticles’ against Candida albicans. Three classes of CDs have been synthesised and fully characterized. A thorough in vitro and in vivo biological screening against C. albicans was performed to test their antifungal, antiadhesion and antibiofilm formation activities. Moreover, the interaction with C. albicans cells was investigated by microscopic analysis. Our results evidence how the presence of a positively polarised surface results crucial for the internalization into COS‐7 cells. Positively charged nanoparticles were also able to inhibit adhesion and biofilm formation, to interact with the cellular membrane of C. albicans, and to increase the survival of G. mellonella infected larvae after the injection with positive nanoparticles. The antifungal activity of CDs and their extremely low toxicity may represent a new strategy to combat infections sustained by C.albicans.

Publisher

Wiley

Subject

General Chemistry,Catalysis,Organic Chemistry

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