GC/MS Profiling, In Vitro Antidiabetic Efficacy of Origanum compactum Benth. Essential Oil and In Silico Molecular Docking of Its Major Bioactive Compounds

Author:

Assaggaf Hamza1ORCID,El Hachlafi Naoufal2ORCID,El fadili Mohamed3ORCID,Elbouzidi Amine4ORCID,Ouassou Hayat5,Jeddi Mohamed2ORCID,Alnasser Sulaiman Mohammed6,Qasem Ahmed1ORCID,Attar Ammar1,AL-Farga Ammar7ORCID,Alghamdi Othman A.7,Mehana Elsayed Eldeeb8ORCID,Mrabti Hanae Naceiri9ORCID

Affiliation:

1. Department of Laboratory Medicine, Faculty of Applied Medical Sciences, Umm Al-Qura University, Makkah 21955, Saudi Arabia

2. Laboratory of Microbial Biotechnology and Bioactive Molecules, Faculty of Sciences and Technologies, Sidi Mohamed Ben Abdellah University, Imouzzer Road, Fez 30000, Morocco

3. LIMAS Laboratory, Faculty of Sciences Dhar El Mehraz, Sidi Mohammed Ben Abdellah University, BP 1796 Atlas, Fez 30000, Morocco

4. Laboratoire d’Amélioration des Productions Agricoles, Biotechnologie et Environnement (LA-PABE), Faculté des Sciences, Université Mohammed Premier, Oujda 60000, Morocco

5. Higher Institute of Nursing Professions and Health Techniques, Oujda 60000, Morocco

6. Department of Pharmacology and Toxicology, Unaizah College of Pharmacy, Qassim University, Buraidah 51452, Saudi Arabia

7. Department Biological Sciences, College of Science, University of Jeddah, Jeddah 80203, Saudi Arabia

8. Department of Pathology, Faculty of Veterinary Medicine, Alexandria University, Alexandria 5424041, Egypt

9. Center of Data Science and Sustainable Technologies, INTI International University, Nilai 71800, Malaysia

Abstract

Diabetes is a global health concern with significant implications for individuals and healthcare systems. Finding effective and safe antidiabetic agents is crucial for the management of this chronic disease. Natural products have emerged as potential alternatives to allopathic drugs, offering a vast source of bioactive compounds. In this study, we conducted an assessment of the antidiabetic potential of Origanum compactum essential oil, employing a two-pronged approach, i.e., experimental investigation and computational docking analysis. The results of gas chromatography–mass spectrometry (GC-MS) showed that thymol (54.6%), carvacrol (23.18%), and p-cymene (7.12%) were the major compounds. Experimental assessments revealed higher IC50 values (150 µg/mL for α-amylase; 120 µg/mL for α-glucosidase) of O. compactum oil, compared to the control drug acarbose. In silico analysis revealed the best binding affinity of the oil components (carvacrol and thymol) with human NADPH oxidase, while the lysosomal acid-α-glucosidase and salivary amylase also demonstrated good binding affinity towards carvacrol and thymol. Our findings highlight the translational potential of O. compactum oil-based treatment for diabetes mellitus and provide a basis for further studies on the modulation of NADPH oxidase, amylase inhibition, and α-glucosidase by antidiabetic natural products. However, further in vivo investigations are strongly required to confirm the results of in vitro antidiabetic effect of O. compactum EO.

Funder

Deanship for Research & Innovation, Ministry of Edu-cation in Saudi Arabia

Publisher

MDPI AG

Subject

Physical and Theoretical Chemistry,Catalysis,General Environmental Science

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