Unlocking the Antibacterial Potential of Xanthone from Calophyllum Species: Inhibition of Nucleic Acid Synthesis

Plants are valuable resources for the development of novel pharmaceutical products. The increasing threat to global health caused by antibiotic resistance remains a serious concern, driven a need to discover and evaluate novel anti-bacterial agents. Calophyllum species are known for having excellent...

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Published in:ChemistrySelect
Main Author: Heilman D.N.A.A.; Hui A.Y.C.; Mian V.J.Y.; Ahmad F.B.; Cee L.P.; Stanslas J.; Zamakshshari N.H.
Format: Review
Language:English
Published: John Wiley and Sons Inc 2023
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85179316867&doi=10.1002%2fslct.202302737&partnerID=40&md5=356a1250d999bae0f80a2b7ec5906296
id 2-s2.0-85179316867
spelling 2-s2.0-85179316867
Heilman D.N.A.A.; Hui A.Y.C.; Mian V.J.Y.; Ahmad F.B.; Cee L.P.; Stanslas J.; Zamakshshari N.H.
Unlocking the Antibacterial Potential of Xanthone from Calophyllum Species: Inhibition of Nucleic Acid Synthesis
2023
ChemistrySelect
8
46
10.1002/slct.202302737
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85179316867&doi=10.1002%2fslct.202302737&partnerID=40&md5=356a1250d999bae0f80a2b7ec5906296
Plants are valuable resources for the development of novel pharmaceutical products. The increasing threat to global health caused by antibiotic resistance remains a serious concern, driven a need to discover and evaluate novel anti-bacterial agents. Calophyllum species are known for having excellent biological activity due to its secondary metabolites, such as xanthone. Numerous xanthones have been found to possess anti-bacterial properties that are effective against plant pathogens, hence can be applied to fight human pathogens. Topoisomerase enzymes (DNA gyrase and topoisomerase IV) are DNA metabolism enzymes that possess distinct roles as unlinking enzymes during DNA replication. Nucleic acid synthesis inhibition reduces bacteria proliferation through the inhibition of topoisomerase enzymes that are essential for bacterial growth. The xanthone isolated from Calophyllum and its anti-bacterial were discussed in this review. Besides, molecular docking simulations were applied to explore the potential binding mode of xanthones to DNA metabolism enzymes. The docking study displayed that biscaloxanthone is a good topoisomerase enzymes inhibitor compared to their co-cystalize ligand, novobiocin and BDBM50198240. The complied information and molecular docking simulations suggested that xanthone isolated possesses potential anti-bacterial agents inhibiting nucleic acid synthesis. Besides, it suggested that the anti-microbial activity of xanthone contributes from the topoisomerase enzyme‘s inhibition. © 2023 Wiley-VCH GmbH.
John Wiley and Sons Inc
23656549
English
Review
All Open Access; Green Open Access
author Heilman D.N.A.A.; Hui A.Y.C.; Mian V.J.Y.; Ahmad F.B.; Cee L.P.; Stanslas J.; Zamakshshari N.H.
spellingShingle Heilman D.N.A.A.; Hui A.Y.C.; Mian V.J.Y.; Ahmad F.B.; Cee L.P.; Stanslas J.; Zamakshshari N.H.
Unlocking the Antibacterial Potential of Xanthone from Calophyllum Species: Inhibition of Nucleic Acid Synthesis
author_facet Heilman D.N.A.A.; Hui A.Y.C.; Mian V.J.Y.; Ahmad F.B.; Cee L.P.; Stanslas J.; Zamakshshari N.H.
author_sort Heilman D.N.A.A.; Hui A.Y.C.; Mian V.J.Y.; Ahmad F.B.; Cee L.P.; Stanslas J.; Zamakshshari N.H.
title Unlocking the Antibacterial Potential of Xanthone from Calophyllum Species: Inhibition of Nucleic Acid Synthesis
title_short Unlocking the Antibacterial Potential of Xanthone from Calophyllum Species: Inhibition of Nucleic Acid Synthesis
title_full Unlocking the Antibacterial Potential of Xanthone from Calophyllum Species: Inhibition of Nucleic Acid Synthesis
title_fullStr Unlocking the Antibacterial Potential of Xanthone from Calophyllum Species: Inhibition of Nucleic Acid Synthesis
title_full_unstemmed Unlocking the Antibacterial Potential of Xanthone from Calophyllum Species: Inhibition of Nucleic Acid Synthesis
title_sort Unlocking the Antibacterial Potential of Xanthone from Calophyllum Species: Inhibition of Nucleic Acid Synthesis
publishDate 2023
container_title ChemistrySelect
container_volume 8
container_issue 46
doi_str_mv 10.1002/slct.202302737
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85179316867&doi=10.1002%2fslct.202302737&partnerID=40&md5=356a1250d999bae0f80a2b7ec5906296
description Plants are valuable resources for the development of novel pharmaceutical products. The increasing threat to global health caused by antibiotic resistance remains a serious concern, driven a need to discover and evaluate novel anti-bacterial agents. Calophyllum species are known for having excellent biological activity due to its secondary metabolites, such as xanthone. Numerous xanthones have been found to possess anti-bacterial properties that are effective against plant pathogens, hence can be applied to fight human pathogens. Topoisomerase enzymes (DNA gyrase and topoisomerase IV) are DNA metabolism enzymes that possess distinct roles as unlinking enzymes during DNA replication. Nucleic acid synthesis inhibition reduces bacteria proliferation through the inhibition of topoisomerase enzymes that are essential for bacterial growth. The xanthone isolated from Calophyllum and its anti-bacterial were discussed in this review. Besides, molecular docking simulations were applied to explore the potential binding mode of xanthones to DNA metabolism enzymes. The docking study displayed that biscaloxanthone is a good topoisomerase enzymes inhibitor compared to their co-cystalize ligand, novobiocin and BDBM50198240. The complied information and molecular docking simulations suggested that xanthone isolated possesses potential anti-bacterial agents inhibiting nucleic acid synthesis. Besides, it suggested that the anti-microbial activity of xanthone contributes from the topoisomerase enzyme‘s inhibition. © 2023 Wiley-VCH GmbH.
publisher John Wiley and Sons Inc
issn 23656549
language English
format Review
accesstype All Open Access; Green Open Access
record_format scopus
collection Scopus
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