Anti-Oxidative Stress and Immunosuppressive Effects of Ethanol Extract from Sacha Inchi Leaves in Mice with CFA-induced Rheumatoid Arthrit

Main Article Content

Tran T. P. Nhung
Le P. T. Quoc

Abstract

Sacha inchi (Plukenetia volubilis L.) is recognized for its antioxidative properties, making it a valuable herbal source for immune modulation and treating joint and muscle pain. This study investigated the antioxidative and immunosuppressive effects of the ethanol extract of Sacha inchi leaves (EESI) in a CFA-induced rheumatoid arthritis (RA) mouse model. Swiss albino mice were assigned to experimental groups receiving EESI at 100, 200, and 300 mg/kg doses, with mobic (0.2 mg/kg) serving as the standard drug. Key parameters assessed included malondialdehyde (MDA), hydroperoxide (H2O2), total glutathione (GSH), total antioxidant capacity (TAC), superoxide dismutase (SOD), catalase (CAT), glutathione peroxidase (GPx), white blood cell (WBC) count, phagocytic activity (PA), nitroblue tetrazolium (NBT) reduction, and total immunoglobulin (TI). Results indicated a significant increase in MDA and H2O2 levels in the CFA group (p < 0.05), reflecting oxidative stress due to RA. EESI treatment significantly reduced MDA and H2O2 levels in a dose-dependent manner (p < 0.05), with the 300 mg/kg dose achieving effects comparable to mobic (p > 0.05). EESI also prevented the depletion of GSH and TAC observed in CFA-induced mice (p < 0.05) and enhanced CAT, SOD, and GPx activities, suggesting improved antioxidant defenses (p < 0.05). Additionally, EESI normalized WBC count, PA, NBT reduction, and TI levels altered by CFA, particularly at the 300 mg/kg dose (p > 0.05). These findings demonstrate the potential of EESI as an effective antioxidative and immunosuppressive agent for RA management, supporting its use as an alternative therapeutic option.

Article Details

How to Cite
Nhung, T. T. P., & Quoc, L. P. T. (2024). Anti-Oxidative Stress and Immunosuppressive Effects of Ethanol Extract from Sacha Inchi Leaves in Mice with CFA-induced Rheumatoid Arthrit. Tropical Journal of Natural Product Research (TJNPR), 8(9). https://doi.org/10.26538/tjnpr/v8i9.48
Section
Articles

References

Ushio-Fukai M, Ash D, Nagarkoti S, Belin de Chantemele EJ, Fulton DJR, Fukai T. Interplay between reactive oxygen/reactive nitrogen species and metabolism in vascular biology and disease. Antioxid Redox Signal. 2021; 34(16): 1319-1354. Doi: 10.1089/ars.2020.8161

Jayawardena TU, Wang L, Sanjeewa KKA, Kang SI, Lee JS, Jeon YJ. Antioxidant potential of sulfated polysaccharides from Padina boryana; Protective effect against oxidative stress in in vitro and in vivo zebrafish model. Mar Drugs. 2020; 18(4): 212. Doi: 10.3390/md18040212

Nhung TTP, Quoc LPT. Potential anti-inflammatory effects of ethanol extract of Caryota urens Lour fruits on Freund's complete adjuvant-induced rheumatoid arthritis in mice. Trop J Nat Prod Res. 2024; 8(4): 6924-6931. Doi: 10.26538/tjnpr/v8i4.25

Nhung TTP, Quoc LPT. Ethanol extract of Caryota urens Lour fruits alleviates oxidative stress in a murine model of rheumatoid arthritis induced by freund's complete adjuvant. Trop J Nat Prod Res. 2024; 8(4): 6948-6956. Doi: 10.26538/tjnpr/v8i4.28%20

Chainy GBN, Sahoo DK. Hormones and oxidative stress: An overview. Free Radic Res. 2020; 54: 1-26. Doi: 10.1080/10715762.2019.1702656

Nguyen NH, Tran GB, Nguyen CT. Anti-oxidative effects of superoxide dismutase 3 on inflammatory diseases. J Mol Med. 2020; 98(1): 59-69. Doi: 10.1007/s00109-019-01845-2

Blasi-Brugué C, Martínez-Flórez I, Baxarias M, Rio-Velasco JD, Solano-Gallego L. Exploring the relationship between neutrophil activation and different states of Canine L. infantum infection: Nitroblue tetrazolium test and IFN-γ. Vet Sci. 2023; 10(9): 572. Doi: 10.3390/vetsci10090572

Toledano JM, Puche-Juarez M, Moreno-Fernandez J, Ochoa JJ, Diaz-Castro J. Antioxidant and immune-related implications of minerals in Covid-19: A possibility for disease prevention and management. Antioxidants. 2023; 12(5): 1104. Doi: 10.3390/antiox12051104

Zhang X, Wang A, Chang E, Han B, Xu J, Fu Y, Dong X, Miao S. Effects of dietary tryptophan on the antioxidant capacity and immune response associated with TOR and TLRs/MyD88/NF-κB signaling pathways in northern snakehead, Channa argus (Cantor, 1842). Front Immunol. 2023; 14: 1149151. Doi: 10.3389/fimmu.2023.1149151

Zhang MJ, Sun WW, Yang J, Shi DD, Dai XF, Li XM. The effect of preventing oxidative stress and its mechanisms in the extract from Sonchus brachyotus DC. based on the Nrf2-Keap1-ARE signaling pathway. Antioxidants. 2023; 12: 1677. Doi: 10.3390/antiox12091677

Tran PNT, Tran TTN. Evaluation of acute and subchronic toxicity induced by the crude ethanol extract of Plukenetia volubilis Linneo leaves in swiss albino mice. BioMed Res Int. 2021; 2021: 6524658. Doi: 10.1155/2021/6524658

Tran TPN, Nguyen TT, Tran GB. Anti-arthritis effect of ethanol extract of Sacha inchi (Plukenetia volubilis L.) leaves against complete Freund’s adjuvant-induced arthritis model in mice. Trop Life Sci Res. 2023; 34(3): 237-257. Doi: 10.21315/tlsr2023.34.3.13

Rodzi NARM, Lee LK. Sacha Inchi (Plukenetia volubilis L.): Recent insight on phytochemistry, pharmacology, organoleptic, safety, and toxicity perspectives. Heliyon. 2022; 8(9): 10572. Doi: 10.1016/j.heliyon.2022.e10572

Goyal A, Tanwar B, Sihag MK, Sharma V. Sacha inchi (Plukenetia volubilis L.): An emerging source of nutrients, omega-3 fatty acid and phytochemicals. Food Chem. 2022; 373: 131459. Doi: 10.1016/j.foodchem.2021.131459

Thuanthong A, Patchimpet J, Visessanguan W, Panyo J, Benjakul S, Zhang Y, Klomklao S. Antioxidant properties of sacha inchi (Plukenetia volubilis) shell extracts as affected by solvents used for prior decolorization. ASEAN J Sci Tech Rep. 2021; 24(3): 1-8. Doi: 10.55164/ajstr.v24i3.243570

Peñaloza EMC, Costa SS, Herrera-Calderon O. Medicinal plants in Peru as a source of immunomodulatory drugs potentially useful against Covid-19. Rev Bras Farmacogn. 2023; 33(2): 237-258. Doi: 10.1007/s43450-023-00367-w

Nhung TTP, Quoc LPT. Counteracting paracetamol-induced hepatotoxicity with black shallot extract: An animal model investigation. Trop J Nat Prod Res. 2024; 8(1): 5875-5880. Doi: 10.26538/tjnpr/v8i1.24

Nhung TTP, Quoc LPT. Investigation of the inflammatory, antipyretic, and analgesic potential of ethanol extract from Hedyotis capitellata Wall. ex G. Don leaves in mice. Trop J Nat Prod Res. 2023; 7(11): 5501-5508. Doi: 10.26538/tjnpr/v7i12.20

Nhung TTP, Quoc LPT. Analgesic and antipyretic activities of ethanol extract of Gardenia jasminoides Ellis fruits in mice. Trop J Nat Prod Res. 2023; 7(10): 4902-4907. Doi: 10.26538/tjnpr/v7i10.27

Nhung TTP, Quoc LPT. Efficacy of black shallot extract in analgesic and antipyretic activities in experimental mice. Trop J Nat Prod Res. 2024; 8(3): 6609-6616. Doi: 10.26538/tjnpr/v8i3.20

Alison A. Basel declaration defends animal research. Nature. 2010; 468: 742. Doi: 10.1038/468742a

Cordeiro MLDS, Aquino-Martins VGDQ, Silva APD, Naliato GFS, Silveira ER, Theodoro RC, Santos DYACD, Rocha HAO, Scortecci KC. Exploring the antioxidant potential of Talisia esculenta using in vitro and in vivo approaches. Nutrients. 2023; 15(17): 3855. Doi: 10.3390/nu15173855

Yonar ME, Yonar SM, Silici S. Protective effect of propolis against oxidative stress and immunosuppression induced by oxytetracycline in rainbow trout (Oncorhynchus mykiss, W.). Fish Shellfish Immunol. 2021; 31(2): 318-325. Doi: 10.1016/j.fsi.2011.05.019

Muscolo A, Mariateresa O, Giulio T, Mariateresa R. Oxidative Stress: The role of antioxidant phytochemicals in the prevention and treatment of diseases. Int J Mol Sci. 2024; 25(6): 3264. Doi: 10.3390/ijms25063264

Gutiérrez-del-Río I, López-Ibáñez S, Magadán-Corpas P, Fernández-Calleja L, Pérez-Valero A, Tuñón-Granda M, Miguélez EM, Villar CJ, Lombó F.

Terpenoids and polyphenols as natural antioxidant agents in food preservation. Antioxidants. 2021; 10(8): 1264. Doi: 10.3390/antiox10081264

Fu YS, Kang N, Yu Y, Mi Y, Guo J, J Wu J, Weng CF. Polyphenols, flavonoids and inflammasomes: the role of cigarette smoke in COPD. Eur Respir Rev. 2022; 31: 220028. Doi: 10.1183/16000617.0028-2022

Paudel S, Mishra N, Agarwal R. Phytochemicals as immunomodulatory molecules in cancer therapeutics. Pharmaceuticals. 2023; 16(12): 1652. Doi: 10.3390/ph16121652

Mamun MAA, Rakib A, Mandal M, Kumar S, Singla B, Singh UP. Polyphenols: Role in modulating immune function and obesity. Biomolecules. 2024; 14(2): 221. Doi: 10.3390/biom14020221

Tang KT, Lin CC, Lin SC, Wang JH, Tsai SW. Kurarinone attenuates collagen-induced arthritis in mice by inhibiting Th1/Th17 cell responses and oxidative stress. Int J Mol Sci. 2021; 22(8): 4002. Doi: 10.3390/ijms22084002

Alsaffar RM, Ali A, Rashid SM, Ahmad SB, Alkholifi FK, Kawoosa MS, Ahmad SP, Rehman MU. Zerumbone protects rats from collagen-induced arthritis by inhibiting oxidative outbursts and inflammatory cytokine levels. ACS Omega. 2023; 8(3): 2982-2991. Doi: 10.1021/acsomega.2c05749

Albano GD, Gagliardo RP, Montalbano AM, Profita M. Overview of the mechanisms of oxidative stress: impact in inflammation of the airway diseases. Antioxidants. 2022; 11(11): 2237. Doi: 10.3390/antiox11112237

Xiao HH. The role of oxidative stress and natural products in maintaining human health. Nutrients. 2024; 16(9): 1268. Doi: 10.3390/nu16091268

Benjamaa R, Elbouny H, Errati H, Moujanni A, Kaushik N, Gupta R, Ennibi O, Nasser B, Choi EH, Kaushik NK, Essamadi A. Comparative evaluation of antioxidant activity, total phenolic content, anti-inflammatory, and antibacterial potential of Euphorbia-derived functional products. Front Pharmacol. 2024; 15: 1345340. Doi: 10.3389/fphar.2024.1345340

Jomova K, Raptova R, Alomar SY, Alwasel SH, Nepovimova E, Kuca K, Valko M. Reactive oxygen species, toxicity, oxidative stress, and antioxidants: chronic diseases and aging. Arch Toxicol. 2023; 97(10): 2499-2574. Doi: 10.1007/s00204-023-03562-9

Kondo N, Kanai T, Okada M. Rheumatoid arthritis and reactive oxygen species: A review. Curr Issues Mol Biol. 2023; 45(4): 3000-3015. Doi: 10.3390/cimb45040197

Wang X, Fan D, Cao X, Ye Q, Wang Q, Zhang M, Xiao C. The role of reactive oxygen species in the rheumatoid arthritis-associated synovial microenvironment. Antioxidants. 2022; 11(6): 1153. Doi: 10.3390/antiox11061153

Mucha P, Skoczyńska A, Małecka M, Hikisz P, Budzisz E. Overview of the antioxidant and anti-inflammatory activities of selected plant compounds and their metal ions complexes. Molecules. 2021; 26(16): 4886. Doi: 10.3390/molecules26164886

Abeyrathne EDNS, Nam K, Huang X, Ahn DU. Plant- and animal-based antioxidants’ structure, efficacy, mechanisms, and applications: A review. Antioxidants. 2022; 11(5): 1025. Doi: 10.3390/antiox11051025

Pei J, Pan X, Wei G, Hua Y. Research progress of glutathione peroxidase family (GPX) in redoxidation. Front Pharmacol. 2023; 14: 1147414. Doi: 10.3389/fphar.2023.1147414

Bhattacharyya A, Chattopadhyay R, Mitra S, Crowe SE. Oxidative stress: An essential factor in the pathogenesis of gastrointestinal mucosal diseases. Physiol Rev. 2014; 94(2): 329–354. Doi: 10.1152/physrev.00040.2012

Giacomo CD, Malfa GA, Tomasello B, Bianchi S, Acquaviva R. Natural compounds and glutathione: Beyond mere antioxidants. Antioxidants. 2023; 12(7): 1445. Doi: 10.3390/antiox12071445

Rasheed Z. Therapeutic potentials of catalase: Mechanisms, applications, and future perspectives. Int J Health Sci (Qassim). 2024; 18(2): 1-6.

Anwar S, Alrumaihi F, Sarwar T, Babiker AY, Khan AA, Prabhu SV, Rahmani AH. Exploring therapeutic potential of catalase: Strategies in disease prevention and management. Biomolecules. 2024; 14(6): 697. Doi: 10.3390/biom14060697

Salazar-García M, Corona JC. The use of natural compounds as a strategy to counteract oxidative stress in animal models of diabetes mellitus. Int J Mol Sci. 2021; 22(13): 7009. Doi: 10.3390/ijms22137009

Zheng M, Liu Y, Zhang G, Yang Z, Xu W, Chen Q. The applications and mechanisms of superoxide dismutase in medicine, food, and cosmetics. Antioxidants. 2023; 12(9): 1675. Doi: 10.3390/antiox12091675

Petrovicova OD, Stankovic I, Ðordevic B, Dopsaj V, Milinkovic N, Dopsaj M. How supplementation with SOD-Rich plant extract, combined with gliadin, can affect oxidative stress markers and zonulin levels in exercise-induced oxidative stress. Metabolites. 2023; 13(12): 1200. Doi: 10.3390/metabo13121200

Yin X, Zhang Y, Zou J, Yang J. Association of the systemic immune-inflammation index with all-cause and cardiovascular mortality in individuals with rheumatoid arthritis. Sci Rep. 2024; 14: 15129. Doi: 10.1038/s41598-024-66152-4

Oleinika K, Slisere B, Catalán D, Rosser EC. B cell contribution to immunometabolic dysfunction and impaired immune responses in obesity. Clin Exp Immunol. 2022; 210(3): 263-272. Doi: 10.1093/cei/uxac079

Jahid M, Khan KU, Rehan-Ul-Haq, Ahmed RS. Overview of rheumatoid arthritis and scientific understanding of the disease. Mediterr J Rheumatol. 2023; 34(3): 284-291. Doi: 10.31138/mjr.20230801.oo

Andersen L, Corazon SS, Stigsdotter UK. Nature exposure and its effects on immune system functioning: A systematic review. Int J Environ Res Public Health. 2021; 18(4): 1416. Doi: 10.3390/ijerph18041416

Rodríguez-Mesa XM, Bolaños LAC, Mejía A, Pombo LM, Costa GM, González SPS. Immunomodulatory properties of natural extracts and compounds derived from Bidens pilosa L.: Literature review. Pharmaceutics. 2023; 15(5): 1491. Doi: 10.3390/pharmaceutics15051491