In silico-based Exploration of Moringa oleifera Phytochemicals as Potential Inhibitors of the Hepatitis B Virus X Protein

Nanikaly Moyen

Faculty of Health Sciences, Marien Ngouabi University, Brazzaville, Republic of the Congo and Department of Infectious Diseases, University Hospital Center of Brazzaville, Brazzaville, Republic of the Congo.

Joël Bidounga *

Faculty of Science and Technology, Marien Ngouabi University, Brazzaville, Republic of the Congo.

Dogfounianalo Somda

Department of Biochemistry, Joseph Ki-Zerbo University, Ouagadougou, Burkina Faso.

Maanicus Rodolpher Bez-Bang Kotangou

Department of Life Sciences, University of Bangui, Bangui, Central African Republic.

Azuka Ogechi Mgbemene

Department of Biological Sciences, Godfrey Okoye University, Enugu, Nigeria.

Titilayo Kemi Sophia Nelly Adedjobi

National University of Sciences, Technologies, Engineering and Mathematics of Abomey, Abomey, Benin.

Lucie Aba Toumnou

Department of Life Sciences, University of Bangui, Bangui, Central African Republic.

Rachel Moyen

Faculty of Science and Technology, Marien Ngouabi University, Brazzaville, Republic of the Congo.

*Author to whom correspondence should be addressed.


Abstract

Background: Hepatitis B virus (HBV) infection remains a major global health concern. The HBV X protein (HBx) plays an important role in viral gene regulation and replication and represents a potential molecular target for antiviral compound screening.

Aim: This study evaluated the predicted interactions of selected Moringa oleifera phytochemicals with HBx using in silico approaches.

Materials and Methods: Five M. oleifera phytochemicals (quercetin, rutin, chlorogenic acid, gallic acid, and moringin) and gambogic acid, used as a reference compound, were evaluated against HBx. Toxicity profiles were predicted using ProTox-II, while molecular docking was performed using PyRx. Protein–ligand interactions were subsequently analyzed using BIOVIA Discovery Studio.

Results: All six compounds were predicted to be inactive for hepatotoxicity. Rutin, chlorogenic acid, moringin and gambogic acid were predicted to be inactive across all assessed toxicity endpoints. These compounds also showed favourable predicted binding affinities in PyRx, with interactions involving key HBx residues, including Leu93, Pro90 and Thr97. Rutin, chlorogenic acid, and quercetin exhibited particularly favourable predicted interactions with the HBx binding site.

Conclusion: The in silico analysis identified several M. oleifera phytochemicals with favourable predicted toxicity profiles and interactions with HBx, particularly rutin, chlorogenic acid, and quercetin. These findings suggest that these compounds may interact with HBx and potentially modulate HBx-associated molecular processes. However, experimental studies are required to validate these computational predictions and determine their biological relevance.

Keywords: Hepatitis B, HBx protein, Moringa oleifera phytochemicals, molecular docking, toxicity prediction


How to Cite

Moyen, Nanikaly, Joël Bidounga, Dogfounianalo Somda, Maanicus Rodolpher Bez-Bang Kotangou, Azuka Ogechi Mgbemene, Titilayo Kemi Sophia Nelly Adedjobi, Lucie Aba Toumnou, and Rachel Moyen. 2026. “In Silico-Based Exploration of Moringa Oleifera Phytochemicals As Potential Inhibitors of the Hepatitis B Virus X Protein”. International Journal of Biochemistry Research & Review 35 (5):240-47. https://doi.org/10.9734/ijbcrr/2026/v35i51170.

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