Evaluation and inhibitory mechanism analysis of natural compounds againts dihydroorotate dehydrogenase as anti-cancer agents

Cancer remains one of the deadliest diseases worldwide, and currently cancer treatment is facing several problems related to adverse effects and drug resistance. To address these problems, new prospective anticancer medications are required. Natural compounds, which have been extensively used in the...

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Main Authors: Wibowo, Aji, Waluyo, Danang, Ario Tejo, Bimo, Komariyah, Tinta, Yandwiputra Besari, Ariza, Endang Prabandari, Erwahyuni
Format: Article
Published: Agency for the Assessment and Application of Technology (BPPT), Indonesia 2023
Online Access:http://psasir.upm.edu.my/id/eprint/107764/
https://ejournal.brin.go.id/JBBI/article/view/2842
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Institution: Universiti Putra Malaysia
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spelling my.upm.eprints.1077642024-10-28T06:10:14Z http://psasir.upm.edu.my/id/eprint/107764/ Evaluation and inhibitory mechanism analysis of natural compounds againts dihydroorotate dehydrogenase as anti-cancer agents Wibowo, Aji Waluyo, Danang Ario Tejo, Bimo Komariyah, Tinta Yandwiputra Besari, Ariza Endang Prabandari, Erwahyuni Cancer remains one of the deadliest diseases worldwide, and currently cancer treatment is facing several problems related to adverse effects and drug resistance. To address these problems, new prospective anticancer medications are required. Natural compounds, which have been extensively used in the drug research, including for the treatment of cancer, are emerging as viable candidates. This study aimed to evaluate 33 in-house natural compounds against dihydroorotate dehydrogenase (DHODH) enzyme, a viable target to develop anticancer agent, and to analyze the hit inhibitory mechanism against protein target. In the activity assay, atovaquone was the sole substance to have activity against DHODH, with an inhibition rate of 47.44 at 10 µM. However, discrepancies were shown in the molecular docking result, where atovaquone were identified as hits. Molecular dynamic analysis revealed that atovaquone initially bound to the active site before being forced to the outside due to cleavage of hydrogen bond between the ligand and responsible residue. This study clearly demonstrated the importance of molecular dynamic analysis to study inhibitory mechanism of compound against target protein that may be useful for further development. Agency for the Assessment and Application of Technology (BPPT), Indonesia 2023-12-07 Article PeerReviewed Wibowo, Aji and Waluyo, Danang and Ario Tejo, Bimo and Komariyah, Tinta and Yandwiputra Besari, Ariza and Endang Prabandari, Erwahyuni (2023) Evaluation and inhibitory mechanism analysis of natural compounds againts dihydroorotate dehydrogenase as anti-cancer agents. Jurnal Bioteknologi & Biosains Indonesia, 10 (2). pp. 174-202. ISSN 2548 –611X https://ejournal.brin.go.id/JBBI/article/view/2842
institution Universiti Putra Malaysia
building UPM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Putra Malaysia
content_source UPM Institutional Repository
url_provider http://psasir.upm.edu.my/
description Cancer remains one of the deadliest diseases worldwide, and currently cancer treatment is facing several problems related to adverse effects and drug resistance. To address these problems, new prospective anticancer medications are required. Natural compounds, which have been extensively used in the drug research, including for the treatment of cancer, are emerging as viable candidates. This study aimed to evaluate 33 in-house natural compounds against dihydroorotate dehydrogenase (DHODH) enzyme, a viable target to develop anticancer agent, and to analyze the hit inhibitory mechanism against protein target. In the activity assay, atovaquone was the sole substance to have activity against DHODH, with an inhibition rate of 47.44 at 10 µM. However, discrepancies were shown in the molecular docking result, where atovaquone were identified as hits. Molecular dynamic analysis revealed that atovaquone initially bound to the active site before being forced to the outside due to cleavage of hydrogen bond between the ligand and responsible residue. This study clearly demonstrated the importance of molecular dynamic analysis to study inhibitory mechanism of compound against target protein that may be useful for further development.
format Article
author Wibowo, Aji
Waluyo, Danang
Ario Tejo, Bimo
Komariyah, Tinta
Yandwiputra Besari, Ariza
Endang Prabandari, Erwahyuni
spellingShingle Wibowo, Aji
Waluyo, Danang
Ario Tejo, Bimo
Komariyah, Tinta
Yandwiputra Besari, Ariza
Endang Prabandari, Erwahyuni
Evaluation and inhibitory mechanism analysis of natural compounds againts dihydroorotate dehydrogenase as anti-cancer agents
author_facet Wibowo, Aji
Waluyo, Danang
Ario Tejo, Bimo
Komariyah, Tinta
Yandwiputra Besari, Ariza
Endang Prabandari, Erwahyuni
author_sort Wibowo, Aji
title Evaluation and inhibitory mechanism analysis of natural compounds againts dihydroorotate dehydrogenase as anti-cancer agents
title_short Evaluation and inhibitory mechanism analysis of natural compounds againts dihydroorotate dehydrogenase as anti-cancer agents
title_full Evaluation and inhibitory mechanism analysis of natural compounds againts dihydroorotate dehydrogenase as anti-cancer agents
title_fullStr Evaluation and inhibitory mechanism analysis of natural compounds againts dihydroorotate dehydrogenase as anti-cancer agents
title_full_unstemmed Evaluation and inhibitory mechanism analysis of natural compounds againts dihydroorotate dehydrogenase as anti-cancer agents
title_sort evaluation and inhibitory mechanism analysis of natural compounds againts dihydroorotate dehydrogenase as anti-cancer agents
publisher Agency for the Assessment and Application of Technology (BPPT), Indonesia
publishDate 2023
url http://psasir.upm.edu.my/id/eprint/107764/
https://ejournal.brin.go.id/JBBI/article/view/2842
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