Therapeutic Potential of Kaempferia galanga L. Extract in Ameliorating Oxidative Stress and Metabolic Dysregulation in a Rat Model of Metabolic Syndrome
Abstrak
Metabolic syndrome is associated with an increased risk of hypertension, diabetes, and cardiovascular disease, which are often triggered by oxidative stress and inflammation. This study evaluated the effects of Kaempferia galanga L extract (ERK) on oxidative stress and metabolic dysfunction using a fructose-induced male Wistar rat model. A total of 25 rats were divided into five groups: normal control, positive control, allopurinol group, and two ERK treatment groups at doses of 50 and 100 mg/kg body weight. All groups, except the normal control, were given 25% fructose in the drinking water and an injection of potassium oxonate (4.5 mg/kg body weight) for 28 days. Evaluation was done by measurement of glucose, triglyceride, malondialdehyde (MDA) and nitric oxide (NO) and histological analysis of aortic tissue. The results showed that ERK, especially at a dose of 100 mg/kg, significantly reduced glucose, triglyceride and MDA levels and increased NO levels. ERK administration also reduced the body weight of mice and prevented the formation of foam and inflammatory cells in aortic tissue. The total flavonoid content of ERK also supports its biological activity. This study concludes that ERK has potential as a natural therapeutic agent to treat metabolic syndrome through antioxidant and anti-inflammatory mechanisms.
Kata Kunci
Teks Lengkap:
PDF (English)Referensi
Rodrigues, Mayzza Campina, Maciel, Erika da Silva, Quaresma, Fernando Rodrigues Peixoto, Sesti, Luis Fernando Castagnino, Paiva, Laércio da Silva, Macedo Junior, Hugo, Araújo, Francisco Albino de, Fonseca, Fernando Luiz Affonso, & Adami, Fernando. (2021). Prevalence and factors associated with metabolic syndrome in a vulnerable population in northern Brazil: a cross-sectional study. Journal of Human Growth and Development, 31(2), 291–301.
Ananthy, Vimala, Priyadharsini, Raman Palanyswamy, & Subramanian, Umamaheswari. (2021). Pathogenesis, Diagnosis, and Management of Metabolic Syndrome: A Comprehensive Review. J Basic Clin Appl Health Sci, 4(2), 39–45.
Ministry of Health Republic of Indonesia. (2018). Hasil Utama RISKESDAS 2018. Jakarta: Publishing Institution, Health Research and Development Agency, Ministry of Health of the Republic of Indonesia.
IDF (International Diabetes Federation). The IDF Consensus Worldwide Definition of The Metabolic Syndrome. 2018 [Diakses 02 Januari 2024]. Available from: http://www. idf .org.
Masenga, S.K., Kabwe, L.S., Chakulya, M. and Kirabo, A. (2023) Mechanisms of Oxidative Stress in Metabolic Syndrome. International Journal of Molecular Sciences, 24, Article No. 7898.
Cho, I. J., Oh, D. H., Ahn, K. J., Lee, S. H., & Jeong, I. K. (2021). Allopurinol Ameliorates High Fructose Diet-Induced Hepatic Steatosis in Diabetic Rats Through Modulation of Lipid Metabolism, Inflammation, and ER Stress Pathway. Scientific Reports, 11.
Dipiro, J. T., Wells, B. G., Schwinghammer, T. L., & DiPiro, C. V. (2020). Pharmacoterapy A Phatophysiologic Approach. 11th Edition. US: McGraw-Hill Education.
Jansen, C., Baker, J. D., Kodaira, E., Ang, L., Bacani, A. J., Aldan, J. T., Shimoda, L. M. N., Salameh, M., Small-Howard, A. L., Stokes, A. J., Turner, H., & Adra, C. N. (2021). Medicine in motion: Opportunities, Challenges and Data Analytics-based Solutions for Traditional Medicine Integration into Western Medical practice. Journal of ethnopharmacology, 267, 113477.
Adianingsih, O. R., Widaryanto, E., Saitama, A., & Zaini, A. H. (2021). Analysis of Bioactive Compounds Present in Kaempferia galanga Rhizome Collected from Different Regions of East Java, Indonesia. IOP Conference Series: Earth and Environmental Science, 913(1).
Vishaka, S., Sridevi, G., & Selvaraj, J. (2022). An invitro Analysis on the Antioxidant and Anti-diabetic Properties of Kaempferia galanga Rhizome Using Different Solvent Systems. Journal of advanced pharmaceutical technology & research, 13 (Suppl 2).
Samodra, G., & Febrina, D. (2020). Anti-Inflammatory Effects of Kaempferia galanga L. Rhizome Extract in Carrageenan-Induced Female Rats. 20 (Icch 2019), 13–17.
Jagadish, P.C., Latha, K.P., Mudgal, J., Nampurath, G.R., (2016). Extraction, Characterization and Evaluation of Kaempferia galanga L. (Zingiberaceae) Rhizome Extracts Against Acute and Chronic Inflammation in Rats. J. Ethnopharmacol. 194, 434–439.
Srivastava, N., Mishra, S., Iqbal, H., Chanda, D., & Shanker, K. (2021). Standardization of Kaempferia galanga L. Rhizome and Vasorelaxation Effect of its Key Metabolite Ethyl p-methoxycinnamate. Journal of ethnopharmacology, 271, 113911.
Tian Wang, Sheng-Li Wu, Pei Liu, Ji-Jun Chen, Xue-Mei Zhang, Chang-An Geng. (2023). Diarylheptanoids with Hypoglycemic Potency from the Rhizomes of Kaempferia galanga. Fitoterapia, Vol. 167, 105502, ISSN 0367-326X.
Yuk, H. J., Lee, Y. S., Kim, S. H., & Kim, D. S. (2018). Effects of Toona sinensis Leaf Extract and its chemical Constituents on Xanthine Oxidase Activity and Serum Uric Acid levels in Potassium Oxonate-induced Hyperuricemic rats. Molecules. 23(12).
Chen, D., Li, H., Li, W., Feng, S., & Deng, D. (2018). Kaempferia parviflora and Its Methoxyflavones : Chemistry and Biological Activities. Hindawi. Vol. 15.
Hasimun, P., Mulyani, Y., & Setiawan, A. R. (2021). Influences of Centella asiatica and Curcuma longa on Arterial Stiffness in a Hypertensive Animal Model. Indonesian Journal of Pharmacy, 32(4), 484–492.
Csonka, C., Páli, T., Bencsik, P., Görbe, A., Ferdinandy, P., & Csont, T. (2015). Measurement of NO in biological samples. British Journal of Pharmacology, 172(6), 1620–1632.
Tsikas D. (2017). Assessment of Lipid Peroxidation by Measuring malondialdehyde (MDA) and relatives in Biological Samples: Analytical and Biological Challenges. Analytical biochemistry, 524, 13–30.
Fauziah, P. N., Maskoen, A. M., Yuliati, T., & Widiarsih, E. (2018). Optimized Steps in Determination of Malondialdehyde (MDA) Standards on Diagnostic of Lipid Peroxidation. Padjadjaran Journal of Dentistry, 30(2), 136.
Julianti, T. B., Bakar, M. F. A., & Wikantyasning, E. R. (2022). Phytochemical, Antioxidant Analysis and In Vitro Xanthine Oxidase Inhibitory Activity of Kaempferia parviflora and Kaempferia galanga. Tropical Journal of Natural Product Research, 6(12), 1981–1985.
Kuate, D., Kengne, A.P.N., Biapa, C.P.N. (2015). Tetrapleura etraptera Spice Attenuates High-Carbohydrate, High-fat Diet-induced Obese and Type 2 Diabetic Rats with Metabolic Syndrome Features. Lipids Health Dis. 14, 50.
Hayati, Kamilah, E., & Ningsih, R. (2015). Antioxidant Activity of Flavonoid from Rhizome Kaempferia galanga L. Extract. In ALCHEMY: Journal of Chemistry (Vol. 4, Issue Oktober).
Masenga, S.K., Kabwe, L.S., Chakulya, M. and Kirabo, A. (2023) Mechanisms of Oxidative Stress in Metabolic Syndrome. International Journal of Molecular Sciences, 24, Article No. 7898.
Susilawati, E., Aligita, W., Muhsinin, S., Dahlia., Pratiwi, D.S., Aprilliani., Artarini, A., Adnyana, I.K. (2020). Antidiabetic Activity of Okra (Abelmoosschus esculentus L.) Fruit Extract. Rasayan J. Chem. Vol 12 (1). page 157-167.
Raya, M. K., Vegasari, N., Nuburi, D., Maryorita, B., & Rahayu, E. S. (2023). The Effect of Moringa Leaf Extract (Moringa oliefera) On Triglyceride Levels in Streptozotocin Induced Type 2 Diabetes White Wistar Rats. Poltekita: Jurnal Ilmu Kesehatan, 17(3), 1034–1045
Ryadinency, R., Hadisaputro, S., & Rachmawati, B. (2018). Effect of Zinc Supplementation on Triglyceride and Malondialdehyde Levels: Study on Diabetic Wistar Rats Induced with Streptozotocin. Medical Journal of Indonesia, 27(2), 14–18.
Zhang, Dong-Mei, Rui-Qing Jiao, Ling Dong Kong. (2017). High dietary fructose: direct or indirect dangerous factors disturbing tissue and organ functions. Nutrients, 9(4): 335.
Pereira, Tânia, Carlos Correia, and Joao Cardoso. (2015). Novel Methods for Pulse Wave Velocity measurement. Journal of medical and biological engineering, 35(5):555–65.
Yamazaki, K., Watanabe, K., Nakamura, K., & Matsuo, Y. (2020). Kaempferia galanga improves insulin sensitivity in diabetic mice through modulation of GLUT4 expression. Phytotherapy Research, 34(2), 271-278.
Li, X., Geng-Ji, J. J., Quan, Y. Y., Qi, L. M., Sun, Q., Huang, Q., Jiang, H. M., Sun, Z. J., Liu, H. M., & Xie, X. (2022). Role of potential bioactive metabolites from traditional Chinese medicine for type 2 diabetes mellitus: An overview. Frontiers in pharmacology, 13, 1023713.
Pan, M. H., Hsieh, M. C., Hsu, P. C., Ho, S. Y., Lai, C. S., Wu, H., & Ho, C. T. (2011). 6-Shogaol Induces Apoptosis in Human Colorectal Carcinoma Cells via ROS Production, Caspase Activation, and GADD 153 Expression. Molecular Nutrition & Food Research, 52(5), 527-537.
Liu J., Li Q., Liu X., Jiang X. (2018). Fructose and Potassium Oxonate Were Used to Establish The Rat Model of Hyperuricemia. Genomics Appl. Biol. 37 (02), 667–674.
Lonardo, A., Ballestri, S., Marchesini, & Loria, P. (2015). Nonalcoholic Fatty Liver Disease: A Precursor of the Metabolic Syndrome. Digestive and Liver Disease, 47,181-190.
Kim, S. (2018). Interrelationship of Uric Acid, Gout, and Metabolic Syndrome: Focus on Hypertension, Cardiovascular Disease, and Insulin Resistance. Journal of Rheumatic Disease, 25(1), 19–27.
Silva, J., Júnior, Aires, A. L., Cunha, R., Oliveira, R. N., Souza, T. G. D. S., Silva Neto, J. D. C., Araújo, H., & Lima, V. L. M. (2023). Anti-Hyperuricemic, Anti-Arthritic, Hemolytic Activity and Therapeutic Safety of Glycoconjugated Triazole Phthalimides. Biomedicines, 11(9),253.
Li, Y., Zhu, X., Liu, F., Peng, W., Zhang, L., & Li, J. (2022). Pharmacodynamic evaluation of the XOR inhibitor WN1703 in a model of chronic hyperuricemia in rats induced by yeast extract combined with potassium oxonate. Current Research in Pharmacology and Drug Discovery, 3 (December 2021), 100098.
Liu, H. B., Yang, M., Li, W., Luo, T., Wu, Y., Liu, T., Luo, Y., Huang, X. Y., & Zhang, Y. L. (2023). Dispelling Dampness, Relieving Turbidity and Dredging Collaterals Decoction, Attenuates Potassium Oxonate-Induced Hyperuricemia in Rat Models. Drug Design, Development and Therapy, 17(August), 2287–2301.
Afiah, Nurul., Santi, Irma., Putra, Bayu. (2023). Dose Optimization of Antihyperuricemia Effects of Matoa Leaf (Pometia pinnata J. R. Forst & G. Forst) in Rats. Pharmaceutical Report, 2(2): 10-13.
Podrug, M., Šunjić, B., Bekavac, A., Koren, P., Đogaš, V., Mudnić, I., Boban, M., & Jerončić, A. (2023). The Effects of Experimental, Meteorological, and Physiological Factors on Short-Term Repeated Pulse Wave Velocity Measurements, and Measurement Difficulties: A Randomized Crossover Study with Two Devices. Frontiers in Cardiovascular Medicine, 9;1–18.
Wang S-Y, Zhao H, Xu H-T, Han X-D, Wu Y-S, Xu F-F, Yang X-B, Göransson U and Liu B. (2021). Kaempferia galanga L.: Progresses in Phytochemistry, Pharmacology, Toxicology and Ethnomedicinal Uses. Front. Pharmacol. 12:675350.
Wang S-Y, Cai L, Yang N, Wu Y-S and Liu B. (2023). Chemical composition of the Kaempferia galanga L. essential oil and its in vitro and in vivo antioxidant activities. Front. Nutr. 10:1080487.
Kokila, S., & Ragavan, B. (2020). Effect of Kaempferia galanga Rhizome Extract on Haematological Parameters in Streptozotocin Induced Diabetic Wistar Rats. International Journal of Pharmaceutical Sciences and Drug Research, 12(3), 255–259.
Malik, V. S., Schulze, M. B., & Hu, F. B. (2006). Intake of sugar-sweetened beverages and weight gain: a systematic review. The American journal of clinical nutrition, 84(2), 274–288.
Johnson, R. J., Stenvinkel, P., Andrews, P., Sánchez-Lozada, L. G., Nakagawa, T., Gaucher, E., Andres-Hernando, A., Rodriguez-Iturbe, B., Jimenez, C. R., Garcia, G., Kang, D. H., Tolan, D. R., & Lanaspa, M. A. (2020). Fructose Metabolism as a Common Evolutionary Pathway of Survival Associated with Climate Change, Food Shortage and Droughts. Journal of Internal Medicine, 287(3), 252–262.
Sanders, F. W., & Griffin, J. L. (2016). De novo lipogenesis in the liver in health and disease: more than just a shunting yard for glucose. Biological reviews of the Cambridge Philosophical Society, 91(2), 452–468.
Susilawati, E., Aligita, W., Muhsinin, S., Dahlia., Pratiwi, D.S., Aprilliani., Artarini, A., Adnyana, I.K. (2020). Antidiabetic Activity of Okra (Abelmoosschus esculentus L.) Fruit Extract. Rasayan J. Chem. Vol 12 (1). page 157-167.
Susilawati, E., Aligita, Widhya., Kurnia, Ika., Holidayanti, Lusi., Riswanti, Jejen. (2018). Antidiabetic Activities of Muntingia calabura L. Leaves Water Extract in Type 2 Diabetes Mellitus Animal Models. The Indonesian Biomedical Journal. Vol. 10(2). 16-17.
Umar, M. I., Asmawi, M. Z., Sadikun, A., Majid, A. M., Al-Suede, F. S., Altaf, R., & Ahamed, M. B. (2014). Ethyl-p-methoxycinnamate Isolated from Kaempferia galanga Inhibits Inflammation by Suppressing Interleukin-1, Tumor Necrosis Factor-α, and Angiogenesis by Blocking Endothelial Functions. Clinics (Sao Paulo, Brazil), 69(2), 134–144.
Sagita, M. B., Turchan, A., Utomo, B., Fauzi, A. A., & Fauziah, D. (2022). Expression Malondialdehyde (MDA) of Brain After Injury with the Extract of Kencur (Kaempferia Galanga L): Experimental study wistar rats. International Journal of Health & Medical Sciences, 5(1), 114-121.
Zhang, Dong-Mei, Rui-Qing Jiao, Ling Dong Kong. (2017). High dietary fructose: direct or indirect dangerous factors disturbing tissue and organ functions. Nutrients, 9(4): 335.
Nurhaslina, C. R., Mustapa, A. N., & Mohd Azizi, C. Y. (2023). Kaempferia galanga Linn: A Systematic Review of Phytochemistry, Extraction Technique, and Pharmacological Activities. ASM Science Journal, 18, 1–12.
Riastri, A. (2024). Kaempferia galanga (L.): An Updated Overview of In Vitro and In Vivo Antioxidant Properties. Journal of Food and Pharmaceutical Sciences. 12(1), 67–79.
Yuan Li., Srivastava, Ashok., & Anand-Srivastava, Mandhu, B. (2023). Nitric Oxide and Cardiovascular Health. In book Nitric Oxide: from Research Terapeutics. Springer: Berlin.
DOI: https://doi.org/10.24198/ijpst.v12i0.60514
Refbacks
- Saat ini tidak ada refbacks.
Switch to English Back to Top |
View My Stats Penerbit Universitas PadjadjaranJurnal ini terindeks di :Creative Commons Attribution :
Based on a work at http://jurnal.unpad.ac.id/ijpst/ |