Employing Gamma-Ray-Modified Carbon Quantum Dots to Combat a Wide Range of Bacteria

Author:

Marković Zoran M.1ORCID,Mišović Aleksandra S.1,Zmejkoski Danica Z.1,Zdravković Nemanja M.2,Kovač Janez3ORCID,Bajuk-Bogdanović Danica V.4ORCID,Milivojević Dušan D.1ORCID,Mojsin Marija M.5ORCID,Stevanović Milena J.567ORCID,Pavlović Vladimir B.8,Marković Biljana M. Todorović1ORCID

Affiliation:

1. Vinča Institute of Nuclear Sciences, National Institute of the Republic of Serbia, University of Belgrade, Mike Alasa 12-14, 11001 Belgrade, Serbia

2. Scientific Veterinary Institute of Serbia, Janisa Janulisa 14, 11107 Belgrade, Serbia

3. Jozef Stefan Institute, Department of Surface Engineering—F4, Jamova cesta 39, 1000 Ljubljana, Slovenia

4. Faculty of Physical Chemistry, University of Belgrade, Studentski trg 12-16, 11158 Belgrade, Serbia

5. Institute of Molecular Genetics and Genetic Engineering, University of Belgrade, Vojvode Stepe 444a, 11042 Belgrade, Serbia

6. Faculty of Biology, University of Belgrade, Studentski trg 16, 11000 Belgrade, Serbia

7. Serbian Academy of Sciences and Arts, Knez Mihailova 35, 11000 Belgrade, Serbia

8. Faculty of Agriculture, University of Belgrade, Nemanjina 6, Zemun, 11080 Belgrade, Serbia

Abstract

Nowadays, it is a great challenge to develop new medicines for treating various infectious diseases. The treatment of these diseases is of utmost interest to further prevent the development of multi-drug resistance in different pathogens. Carbon quantum dots, as a new member of the carbon nanomaterials family, can potentially be used as a highly promising visible-light-triggered antibacterial agent. In this work, the results of antibacterial and cytotoxic activities of gamma-ray-irradiated carbon quantum dots are presented. Carbon quantum dots (CQDs) were synthesized from citric acid by a pyrolysis procedure and irradiated by gamma rays at different doses (25, 50, 100 and 200 kGy). Structure, chemical composition and optical properties were investigated by atomic force microscopy, transmission electron microscopy, X-ray photoelectron spectroscopy, Fourier transform infrared spectroscopy, Raman spectroscopy, UV-Vis spectrometry and photoluminescence. Structural analysis showed that CQDs have a spherical-like shape and dose-dependent average diameters and heights. Antibacterial tests showed that all irradiated dots had antibacterial activity but CQDs irradiated with dose of 100 kGy had antibacterial activity against all seven pathogen-reference bacterial strains. Gamma-ray-modified CQDs did not show any cytotoxicity toward human fetal-originated MRC-5 cells. Moreover, fluorescence microscopy showed excellent cellular uptake of CQDs irradiated with doses of 25 and 200 kGy into MRC-5 cells.

Funder

Science Fund of the Republic of Serbia

Ministry of Science, Technological Development and Innovation of the Republic of Serbia

Slovenian Research Agency

Slovenian-Serbian bilateral project

Publisher

MDPI AG

Subject

Pharmacology (medical),Infectious Diseases,Microbiology (medical),General Pharmacology, Toxicology and Pharmaceutics,Biochemistry,Microbiology

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