Putative application of Najas marina L. extracts as a source of bioactive compounds and their antioxidant, antimicrobial, antibiofilm, and genotoxic properties

Author:

Radojević Ivana D1,Grujović Mirjana Ž2,Milošević-Djordjević Olivera13,Vukajlović Jovana Tubić1,Marković Aleksandra1,Grujičić Darko1,Ćirić Andrija4,Djelić Gorica1,Topuzović Marina1,Čomić Ljiljana R1

Affiliation:

1. University of Kragujevac, Faculty of Science, Department of Biology and Ecology , 34000 Kragujevac , Republic of Serbia

2. University of Kragujevac, Institute for Information Technologies, Department of Science , 34000 Kragujevac , Republic of Serbia

3. University of Kragujevac, Faculty of Medical Sciences, Department of Genetics , 34000 Kragujevac , Republic of Serbia

4. University of Kragujevac, Faculty of Science, Department of Chemistry , 34000 Kragujevac , Republic of Serbia

Abstract

Abstract In this research paper, the total phenols (TP), flavonoids (TF), and tannins (TT) content in the acetone and ethyl acetate extracts of Najas marina L. and the identification and quantification of phenolic acids and flavonoids from the ethyl acetate extract were performed. Antioxidant, antimicrobial, and antibiofilm properties of the mentioned extracts were investigated in vitro. The genotoxic potential was analyzed in cultured human peripheral blood lymphocytes (PBL). The TP and TF content was higher in the ethyl acetate extract, dominated by quercetin (172.4 µg mg−1) and ferulic acid (22.74 µg mg−1), while the TT content was slightly higher in the acetone extract. Both extracts tested showed limited antioxidant effects compared to ascorbic acid. The strongest antibacterial activity was observed with Gram-positive bacteria, particularly Staphylococcus aureus (MIC and MMC at 0.31 mg ml−1) and S. aureus ATCC 25923 (MIC at <0.02 mg ml−1), while antifungal activity was limited. Both extracts tested showed better activity on preformed biofilms. Acetone extract had no genotoxic activity but showed significant genoprotective activity against mitomycin C-induced DNA damage in cultured PBLs. Results of our research demonstrate the potential for the development of plant-based antibacterial and biofilm agents.

Funder

Ministry of Science, Technological Development, and Innovations

Publisher

Oxford University Press (OUP)

Subject

Applied Microbiology and Biotechnology

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