Bioactivity-guided Evaluation of Alligator pepper (Aframomum melegueta): Phytochemicals, Antioxidant, Anti-inflammatory, Anti-diabetic Potentials and Anti-obesity
DOI:
https://doi.org/10.24925/turjaf.v14i1.29-38.8067Keywords:
Phytochemicals , Antioxidant , Anti-inflammation, Anti-diabetic , Anti-obesityAbstract
This study presents a bioactivity-guided evaluation of Aframomum melegueta (Alligator pepper) aimed at elucidating its nutraceutical potential through comprehensive phytochemical profiling and in vitro assessment of antioxidant, anti-inflammatory, anti-diabetic, and anti-obesity properties. The alligator pepper extract was prepared using water as the sole extraction solvent. Quantitative phytochemical analysis revealed the presence of diverse bioactive constituents, with alkaloids (62.05 mg/g) being the most abundant, followed by phenolics (25.56 mg GAE/g), saponins (15.58 mg/g), flavonoids (9.29 mg QE/g), tannins (1.35 mg/g), and steroids (0.06 mg/g). Antioxidant activity was confirmed through multiple assays: DPPH radical scavenging (83.4%), lipid peroxidation inhibition (45.07%), and ferric reducing antioxidant power (5.90 mg vitamin C equivalents/g). The seed powder also contained 1.22 mg/g of vitamin C. The anti-diabetic evaluation demonstrated moderate inhibition of key carbohydrate-hydrolysing enzymes, with 44.27% and 41.03% inhibition of α-glucosidase and α-amylase, respectively. Anti-inflammatory activity was evidenced by 85.56% antiproteinase inhibition and 50.31% inhibition of protein denaturation. In addition, the seed extract displayed appreciable anti-obesity potential, as shown by 40.18% inhibition of pancreatic lipase activity. Overall, A. melegueta demonstrates multifunctional bioactivities that support its potential application in nutraceutical formulations and complementary therapies in human and veterinary health. In conclusion, Aframomum melegueta exhibits significant antioxidant, anti-inflammatory, anti-diabetic, and anti-obesity activities, confirming its potential as a functional nutraceutical. Further in vivo investigations and mechanistic studies are recommended to substantiate these bioactivities and assess the safety and efficacy of its phytoconstituents in clinical and animal models.
References
Abubakar IB, Kankara SS, Malami I, Danjuma JB, Muhammad YZ, Yahaya H, Singh D, Usman UJ, Ukwuani-Kwaja AN, Muhammad A, Ahmed SJ, Folami SO, Falana MB, Nurudeen QO. 2022. Traditional medicinal plants used for treating emerging and re-emerging viral diseases in northern Nigeria. European Journal of Integrative Medicine, 49: 102094.https://doi.org/10.1016/j.eujim.2021.102094
Adefegha SA, Oboh G, Adefegha OM, Henle T. 2016. Alligator pepper/Grain of Paradise (Aframomum melegueta) modulates Angiotensin-I converting enzyme activity, lipid profile and oxidative imbalances in a rat model of hypercholesterolemia. Pathophysiology, 23(3): 191–202. https://doi.org/10.1016/j.pathophys.2016.05.005
Afzal S, Abdul Manap AS, Attiq A, Albokhadaim I, Kandeel M, Alhojaily SM. 2023. From imbalance to impairment: the central role of reactive oxygen species in oxidative stress-induced disorders and therapeutic exploration. Frontiers in Pharmacology, 14: 1269581.https://doi.org/10.3389/fphar.2023.1269581
Akinsanya B, Utoh OU, Ukwa UD. 2016. Toxicological, phytochemical and anthelminthic properties of rich plant extracts on Clarias gariepinus. The Journal of Basic & Applied Zoology, 74: 75–86.https://doi.org/10.1016/j.jobaz.2016.09.003
Alberts A, Moldoveanu, ET, Niculescu AG, Grumezescu AM. 2025. Vitamin C: A Comprehensive Review of Its Role in Health, Disease Prevention, and Therapeutic Potential. Molecules, 30(3), 748. https://doi.org/10.3390/molecules30030748
Almoraie NM, Shatwan IM. 2024. The Potential Effects of Dietary Antioxidants in Obesity: A Comprehensive Review of the Literature. Healthcare, 12(4): 416.https://doi.org/10.3390/healthcare12040416
Alolga RN, Wang F, Zhang X, Li J, Tran L-SP, Yin X. 2022. Bioactive Compounds from the Zingiberaceae Family with Known Antioxidant Activities for Possible Therapeutic Uses. Antioxidants, 11(7): 1281. https://doi.org/10.3390/antiox11071281
Alqahtani AS, Hidayathulla S, Rehman MT, ElGamal AA, Al-Massarani S, Razmovski-Naumovski V, Alqahtani MS, El Dib RA, AlAjmi MF. 2019. Alpha-Amylase and Alpha-Glucosidase Enzyme Inhibition and Antioxidant Potential of 3-Oxolupenal and Katononic Acid Isolated from Nuxia oppositifolia. Biomolecules, 10(1): 61. https://doi.org/10.3390/biom10010061
Assiry AA, Bhavikatti SK, Althobaiti FA, Mohamed RN, Karobari MI. 2022. Evaluation of In Vitro Antiprotease Activity of Selected Traditional Medicinal Herbs in Dentistry and Its In Silico PASS Prediction. Biomed Res Int, 2022: 5870443. https://doi.org/10.1155/2022/5870443
Bajpai VK, Park Y, Agrawal P. 2015. Studies on phytochemical analysis, antioxidant and lipid peroxidation inhibitory effects of a medicinal plant, Coleus forskohlii. Frontiers in Life Science, 8(2): 139–147. https://doi.org/10.1080/21553769.2014.998777
Bandara S, Devereaux S, Weerasooriya A. Methods to Evaluate the Antiobesity Effects of Medicinal Plants Using Enzyme Assays. Obesities. 2023; 3(1):13-35. https://doi.org/10.3390/obesities3010003
Biswas A, Dey S, Li D, Liu Y, Zhang J, Huang S, Pan G, Deng Y. 2020. Comparison of phytochemical profile, mineral content, and in vitro antioxidant activities of Corchorus capsularis and Corchorus olitorius leaf extracts from different populations. Journal of Chemistry, 2020, Article 293109. https://doi.org/10.1155/2020/293109
Dama A, Shpati K, Daliu P, Dumur S, Gorica E, Santini A. 2024. Targeting Metabolic Diseases: The Role of Nutraceuticals in Modulating Oxidative Stress and Inflammation. Nutrients, 16(4): 507. https://doi.org/10.3390/nu16040507
Dej-adisai S, Pitakbut T. 2015. Determination of α-glucosidase inhibitory activity from selected Fabaceae plants. Pakistan Journal of Pharmacological Science, 28(5): 1679–1683. https://pubmed.ncbi.nlm.nih.gov/26408887
Dey P, Kundu A, Kumar A, Gupta M, Lee BM, Bhakta T, Dash S, Kim HS. 2020. Analysis of alkaloids (indole alkaloids, isoquinoline alkaloids, tropane alkaloids). Recent Advances in Natural Products Analysis, 505–567. https://doi.org/10.1016/B978-0-12-816455-6.00015-9
Ding Y, Lu Q, Liu T, Yang Q. 2023. Exploiting natural products to discover multitarget inhibitors of insect chitinolytic enzymes. Advanced Agrochem, 2(4): 306–312. https://doi.org/10.1016/j.aac.2023.07.007
Fernando IT, Perera KI, Athauda SBP, Sivakanesan R, Kumar NS, Jayasinghe L. 2019. Heat stability of the in vitro inhibitory effect of spices on lipase, amylase, and glucosidase enzymes. Food Science & Nutrition, 7(2): 425–432. https://doi.org/10.1002/fsn3.797
Gong L, Feng D, Wang T, Ren Y, Liu Y, Wang J. 2020. Inhibitors of α-amylase and α-glucosidase: Potential linkage for whole cereal foods on prevention of hyperglycemia. Food Science & Nutrition, 8(12): 6320–6337. https://doi.org/10.1002/fsn3.1987
Gowshall M, Taylor-Robinson SD. 2018. The increasing prevalence of non-communicable diseases in low-middle income countries: the view from Malawi. International Journal of General Medicine, 11: 255–264. https://doi.org/10.2147/IJGM.S157987
Hasan MM, Islam ME, Hossain MS, Akter M, Rahman MAA, Kazi M, Khan S, Parvin MS. 2023. Unveiling the therapeutic potential: Evaluation of anti-inflammatory and antineoplastic activity of Magnolia champaca Linn's stem bark isolate through molecular docking insights. Heliyon, 10(1): e22972. https://doi.org/10.1016/j.heliyon.2023.e22972
He J, Wu ZY, Zhang S, Zhou Y, Zhao F, Peng ZQ, Hu ZW. 2014. Optimisation of microwave‐assisted extraction of tea saponin and its application on cleaning of historic silks. Journal of Surfactants and Detergents, 17(5): 919–928.https://doi.org/10.1007/s11743-013-1523-8
Hossain MJ, Al-Mamun M, Islam MR. 2024. Diabetes mellitus, the fastest growing global public health concern: Early detection should be focused. Health Science Reports, 7(3): e2004. https://doi.org/10.1002/hsr2.2004
Kashtoh H, Baek KH. 2022. Recent Updates on Phytoconstituent Alpha-Glucosidase Inhibitors: An Approach towards the Treatment of Type Two Diabetes. Plants (Basel), 11(20): 2722. https://doi.org/10.3390/plants11202722
Kumar M, Tomar M, Amarowicz R, Saurabh V, Nair MS, Maheshwari C, Sasi M, Prajapati U, Hasan M, Singh S, Changan S, Prajapat RK, Berwal MK, Satankar V. 2021. Guava (Psidium guajava L.) Leaves: Nutritional Composition, Phytochemical Profile, and Health-Promoting Bioactivities. Foods (Basel), 10(4): 752. https://doi.org/10.3390/foods10040752
Lam TP, Tran NN, Pham LD, Lai NV, Dang BN, Truong NN, Nguyen-Vo SK, Hoang TL, Mai TT, Tran TD. 2024. Flavonoids as dual-target inhibitors against α-glucosidase and α-amylase: a systematic review of in vitro studies. Natural Products and Bioprospecting, 14(1): 4. https://doi.org/10.1007/s13659-023-00424-w
Madhu M, Sailaja V, Satyadev TNVSS, Satyanarayana MV. 2016. Quantitative phytochemical analysis of selected medicinal plant species by using various organic solvent. Journal of Pharmacognosy and Phytochemistry, 5(2): 25–29.
Martinez-Gonzalez AI, Díaz-Sánchez ÁG, Rosa LA, Vargas-Requena CL, Bustos-Jaimes I, Alvarez-Parrilla AE. 2017. Polyphenolic Compounds and Digestive Enzymes: In Vitro Non-Covalent Interactions. Molecules (Basel), 22(4): 669. https://doi.org/10.3390/molecules22040669
Metkin G, Süntar İ, Şenol Deniz FS, Tugay O, Demiralp M, Pittalà V. 2025. Investigating COX-2 and 5-LOX Enzyme-Related Anti-Inflammatory and Antioxidant Activities and Phytochemical Features of Scutellaria salviifolia Benth. Int J Mol Sci, 26(12): 5608. https://doi.org/10.3390/ijms26125608
Masenga SK, Kabwe LS, Chakulya M, Kirabo A. 2023. Mechanisms of Oxidative Stress in Metabolic Syndrome. International Journal of Molecular Sciences, 24(9), 7898. https://doi.org/10.3390/ijms24097898
Mayele BM, Mbadiko CM, Mubwele A, Nyamangombe GI, Kabamba NN, Ngbolua KTN, Mbemba TF. 2025. Antioxidant, anti-inflammatory and antidiabetic activities of the combination of Curcuma longa (Zingiberaceae), Aframomum melegueta (Zingiberaceae) and Piper guineensis (Piperaceae) compared to plants alone. Orapuh Journal, 6(5): e1246. https://doi.org/10.4314/orapj.v6i5.46
Mekonnen AB, Mohammed AS, Tefera AK. 2022. Ethnobotanical Study of Traditional Medicinal Plants Used to Treat Human and Animal Diseases in Sedie Muja District, South Gondar, Ethiopia. Evidence-Based Complementary and Alternative Medicine, 2022: 7328613. https://doi.org/10.1155/2022/7328613
Mekonnen AB, Mohammed AS, Tefera AK. 2022. Ethnobotanical Study of Traditional Medicinal Plants Used to Treat Human and Animal Diseases in Sedie Muja District, South Gondar, Ethiopia. Evidence-Based Complementary and Alternative Medicine: eCAM, 2022, 7328613. https://doi.org/10.1155/2022/7328613
Mohammed A, Gbonjubola VA, Koorbanally NA, Islam MS. 2017. Inhibition of key enzymes linked to type 2 diabetes by compounds isolated from Aframomum melegueta fruit. Pharmaceutical Biology, 55(1): 1010–1016. https://doi.org/10.1080/13880209.2017.1286358
Mohan PBN, Jayaram S, Kuriachan S. 2021. Study of anti-inflammatory activity of Ficus racemosa Linn stem bark extract in albino rats. International Journal of Basic & Clinical Pharmacology, 10(3): 231–237. https://doi.org/10.18203/2319-2003.ijbcp20210552
Niu X, Ding Y, Chen S, Gooneratne R, Ju X. 2022. Effect of Immune Stress on Growth Performance and Immune Functions of Livestock: Mechanisms and Prevention. Animals, 12(7): 909. https://doi.org/10.3390/ani12070909
Nwarienne CM, Igbokwe GE, Ikwuka DC, Ezugwu UM, Ngobidi KC. 2023. Effects of Zingiber officinale and seeds of Aframomum melegueta extract on some biochemical and immunological indices of electric foot shock stress-induced Wistar rats. J Adv Med Pharm Sci, 25(8): 25–37. https://doi.org/10.9734/jamps/2023/v25i8634
Obianwuna UE, Chang X, Oleforuh-Okoleh VU, Onu PN, Zhang H, Qiu K, Wu S. 2024. Phytobiotics in poultry: revolutionizing broiler chicken nutrition with plant-derived gut health enhancers. Journal of Animal Science and Biotechnology, 15(1): 169. https://doi.org/10.1186/s40104-024-01101-9
Ogwu MC, Dunkwu-Okafor A, Omakor IA, Izah SC. 2024. Medicinal Spice, Aframomum melegueta: An Overview of the Phytochemical Constituents, Nutritional Characteristics, and Ethnomedicinal Values for Sustainability. In: Izah SC, Ogwu MC, Akram M (eds) Herbal Medicine Phytochemistry. Springer, Cham. https://doi.org/10.1007/978-3-031-21973-3_72-1
Oloruntola OD, Ayodele SO. 2022. Phytochemical, proximate and mineral composition, antioxidant and antidiabetic properties evaluation and comparison of Mistletoe leaves from Moringa and Kolanut trees. Turkish Journal of Agriculture-Food Science and Technology, 10(8): 1524–1531. https://doi.org/10.24925/turjaf.v10i8.1524-1531.5134
Oloruntola OD. 2022. Juglans regia kernel meal; A prospective nutraceutical feed supplement. Biotech Studies, 31(2): 87–94. http://doi.org/10.38042/biotechstudies.1222785
Oloruntola OD. 2024. Juglans kernel powder and Jacobinia leaf powder supplementation influenced growth, meat, brain, immune system and DNA biomarker of broiler chickens fed aflatoxin-B1 contaminated diets. Biotech Studies, 33(1): 33–42. https://doi.org/10.38042/biotechstudies.1442037
Onoja SO, Omeh YN, Ezeja MI, Chukwu MN. 2014. Evaluation of the In Vitro and In Vivo Antioxidant Potentials of Aframomum melegueta Methanolic Seed Extract. Journal of Tropical Medicine, 2014: 159343. https://doi.org/10.1155/2014/159343
Osman NI, Sidik NJ, Awal A, Adam NA, Rezali NI. 2016. In vitro xanthine oxidase and albumin denaturation inhibition assay of Barringtonia racemosa L. and total phenolic content analysis for potential anti-inflammatory use in gouty arthritis. Journal of Intercultural Ethnopharmacology, 5(4): 343–349. https://doi.org/10.5455/jice.20160731025522
Otles S, Yalcin B. 2012. Phenolic compounds analysis of root, stalk, and leaves of nettle. Scientific World Journal, 2012: 564367. https://doi.org/10.1100/2012/564367
Ponnampalam EN, Kiani A, Santhiravel S, Holman BWB, Lauridsen C, Dunshea FR. 2022. The Importance of Dietary Antioxidants on Oxidative Stress, Meat and Milk Production, and Their Preservative Aspects in Farm Animals: Antioxidant Action, Animal Health, and Product Quality – Invited Review. Animals, 12(23): 3279. https://doi.org/10.3390/ani12233279
Pulido R, Bravo L, Saura-Calixto F. 2000. Antioxidant activity of dietary polyphenols as determined by a modified ferric reducing/antioxidant power assay. Journal of Agricultural and Food Chemistry, 48(8):3396–3402. https://doi.org/10.1021/jf9913458
Rahman MM, Rahaman MS, Islam MR, Rahman F, Mithi FM, Alqahtani T, Almikhlafi MA, Alghamdi SQ, Alruwaili AS, Hossain MS, Ahmed M, Das R, Emran TB, Uddin MS. 2021. Role of Phenolic Compounds in Human Disease: Current Knowledge and Future Prospects. Molecules, 27(1): 233. https://doi.org/10.3390/molecules27010233
Rajesh A, Dossa A, Tresina PS, Mohan VR. 2019. Anti-inflammatory activity of methanol extract of Niebuhria apetala (Roth) Dunn – in vitro models. Asian Journal of Pharmaceutical and Clinical Research, 12(5): 278–281. https://doi.org/10.22159/ajpcr.2019.v12i5.32512
Sokamte TA, Mbougueng PD, Ntsamo BTM, Noumo NT, Tatsadjieu NL. 2018. Antioxidant and antimicrobial activities of two edible spices from Cameroon and quantification of their major phenolic compounds. International Food Research Journal, 25(6): 2352–2361.
Subramaniyan V, Hanim YU. 2025. Role of pancreatic lipase inhibition in obesity treatment: mechanisms and challenges towards current insights and future directions. International Journal of Obesity, 49(3): 492–506. https://doi.org/10.1038/s41366-025-01729-1
Surana AR, Kumbhare MR, Wagh RD. 2016. Estimation of total phenolic and total flavonoid content and assessment of in vitro antioxidant activity of extracts of Hamelia patens Jacq. stems. Research Journal of Phytochemistry, 10(2): 67–74.
Tiji S, Bouhrim M, Addi M, Drouet S, Lorenzo JM, Hano C, Bnouham M, Mimouni M. 2021. Linking the phytochemicals and the α-glucosidase and α-amylase enzyme inhibitory effects of Nigella sativa seed extracts. Foods, 10(8): 1818. https://doi.org/10.3390/foods10081818
Wang J, Deng L, Chen M, Che Y, Li L, Zhu L, Chen G, Feng T. 2024. Phytogenic feed additives as natural antibiotic alternatives in animal health and production: A review of the literature of the last decade. Animal Nutrition, 17: 244–264. https://doi.org/10.1016/j.aninu.2024.01.012
Wickramaratne MN, Punchihewa JC, Wickramaratne DB. 2016. In-vitro alpha-amylase inhibitory activity of the leaf extracts of Adenanthera pavonina. BMC Complementary and Alternative Medicine, 16(1): 466. https://doi.org/10.1186/s12906-016-1452-y
Zhu J, Yu C, Zhou H, Wei X, Wang Y. 2021. Comparative evaluation for phytochemical composition and regulation of blood glucose, hepatic oxidative stress and insulin resistance in mice and HepG2 models of four typical Chinese dark teas. Journal of the Science of Food and Agriculture, 101(15): 6563–6577. https://doi.org/10.1002/jsfa.11328
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