Pengaruh Pemberian Ekstrak Buah Mengkudu (Morinda citrifolia Linn) terhadap Respon Inflamasi Tikus yang diinduksi Kolitis

Tri Fitri Yana Utami, Muhammad Novrizal Abdi Sahid, Ediati Ediati, Ika Puspita Sari

Abstract

Kolitis Ulseratif (KU) merupakan penyakit peradangan usus yang dapat berkembang menjadi kanker usus dan akan meningkatkan kematian jika tidak tertangani dengan baik. Pengobatan KU dilakukan dengan pemberian kortikosteroid, imunosupresan dan agen biologis, namun hal itu dapat menyebabkan munculnya penyakit lainnya. Mengkudu (Morinda citrifolia Linn) mengandung senyawa flavonoid yang mampu memberikan efek preventif dan terapeutik dengan menurunkan sitokin proinflamasi sehingga diperkirakan dapat memperbaiki kondisi KU. Penelitian ini bertujuan untuk mengetahui efek pemberian Ekstrak Buah Mengkudu (EBM) terhadap KU pada tikus yang diinduksi asam asetat. EBM diperoleh dari ekstraksi metode maserasi menggunakan pelarut etanol 70%. Induksi KU dilakukan pada tikus Sprague Dawley menggunakan 2% asam asetat. Tikus dibagi menjadi 6 kelompok, yaitu:  K1 (kontrol normal); K2 (kontrol negatif); K3 (Kontrol positif); K4, K5 dan K6 yaitu perlakuan berturut-turut diberi EBM dosis 100 mg/kgBB, 200 mg/kgBB dan 400 mg/kgBB. Kemudian dilakukan pengamatan respon inflamasi dengan paramater skoring penilaian indeks aktivitas penyakit (IAP) kolitis (berat badan, konsistensi feses, dan keberadaan darah pada feses), makrokopi lesi kolon serta rasio berat kolon/panjang kolon. Hasil penelitian ini menunjukkan bahwa EBM berpengaruh pada penurunan skor IAP KU, makroskopi lesi kolon dan rasio berat kolon/ panjang kolon pada dosis 100 mg/kgBB, 200 mg/kgBB, dan 400 mg/kgBB dimana dosis 400 mg/kgBB menunjukkan aktivitas yang lebih baik dan menunjukkan perbedaan siginifikan (p<0,05) dibandingkan kontrol negatif. EBM memberikan respon yang baik pada kondisi KU jika dinilai dengan parameter tersebut. Perbaikan respon inflamasi pada KU oleh EBM, menjadikan EBM sebagai kandidat pengobatan KU yang potensial.

Keywords

Kolitis; Ekstrak buah mengkudu; Terapi alternative; Indeks aktivitas penyakit; Inflamasi

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References

Akiho, H. (2015). Promising biological therapies for ulcerative colitis: A review of the literature. World Journal of Gastrointestinal Pathophysiology, 6(4), 219. https://doi.org/10.4291/wjgp.v6.i4.219

Alatab, S. (2020). The global, regional, and national burden of inflammatory bowel disease in 195 countries and territories, 1990-2017: a systematic analysis for the Global Burden of Disease Study 2017. The Lancet. Gastroenterology and Hepatology, 5(1), 17–30. https://doi.org/10.1016/S2468-1253(19)30333-4

Ali, A. A., Abd Al Haleem, E. N., Khaleel, S. A. H., and Sallam, A. S. (2017). Protective effect of cardamonin against acetic acid-induced ulcerative colitis in rats. Pharmacological Reports, 69(2), 268–275. https://doi.org/10.1016/j.pharep.2016.11.002

Antika, L. D., Tasfiyati, A. N., Hikmat, H., and Septama, A. W. (2022). Scopoletin: A review of its source, biosynthesis, methods of extraction, and pharmacological activities. In Zeitschrift fur Naturforschung - Section C Journal of Biosciences (Vol. 77, Issues 7–8, pp. 303–316). De Gruyter Open Ltd. https://doi.org/10.1515/znc-2021-0193

Arafat, E. A., Marzouk, R. E., Mostafa, S. A., and Hamed, W. H. E. (2021). Identification of the Molecular Basis of Nanocurcumin-Induced Telocyte Preservation within the Colon of Ulcerative Colitis Rat Model. Mediators of Inflammation, 2021. https://doi.org/10.1155/2021/7534601

Bang, B., and Lichtenberger, L. M. (2016). Methods of inducing inflammatory bowel disease in mice. Current Protocols in Pharmacology, 2016, 5.58.1-5.58.42. https://doi.org/10.1002/0471141755.ph0558s47

Batista, J. A., Magalhães, D. de A., Sousa, S. G., Ferreira, J. dos S., Pereira, C. M. C., Lima, J. V. do N., de Albuquerque, I. F., Bezerra, N. L. S. D., de Brito, T. V., Monteiro, C. E. da S., Franco, A. X., Di Lenardo, D., Oliveira, L. A., Feitosa, J. P. de A., de Paula, R. C. M., Barros, F. C. N., Freitas, A. L. P., de Oliveira, J. S., Vasconcelos, D. F. P., … Barbosa, A. L. dos R. (2020). Polysaccharides derived from Morinda citrifolia Linn reduce inflammatory markers during experimental colitis. Journal of Ethnopharmacology, 248(May 2019). https://doi.org/10.1016/j.jep.2019.112303

Chen, X., Zhao, X., Wang, H., Yang, Z., Li, J., and Suo, H. (2017). Prevent effects of lactobacillus fermentum HY01 on dextran sulfate sodium‐induced colitis in mice. Nutrients, 9(6). https://doi.org/10.3390/nu9060545

da Silva, P. R., do Carmo Alves de Lima, M., Souza, T. P., Sandes, J. M., da Conceição Alves de Lima, A., Neto, P. J. R., dos Santos, F. A. B., Alves, L. C., da Silva, R. M. F., de Moraes Rocha, G. J., and da Cruz Filho, I. J. (2021). Lignin from Morinda citrifolia leaves: Physical and chemical characterization, in vitro evaluation of antioxidant, cytotoxic, antiparasitic and ultrastructural activities. International Journal of Biological Macromolecules, 193(September), 1799–1812. https://doi.org/10.1016/j.ijbiomac.2021.11.013

Dewangga, A., Saputra, C., Sahid, M. N. A., and Gani, A. P. (2022). Ekstrak Etanolik Seledri (Apium graveolens L.) Memperbaiki Indeks Aktivitas Penyakit Kolitis Ulseratif dan Makroskopik Panjang Kolon Pada Tikus Yang di Induksi Asam Asetat. JPSCR: Journal of Pharmaceutical Science and Clinical Research, 7(1), 71. https://doi.org/10.20961/jpscr.v7i1.55884

Dussossoy, E., Brat, P., Bony, E., Boudard, F., Poucheret, P., Mertz, C., Giaimis, J., and Michel, A. (2011). Characterization, anti-oxidative and anti-inflammatory effects of Costa Rican noni juice (Morinda citrifolia L.). Journal of Ethnopharmacology, 133(1), 108–115. https://doi.org/10.1016/j.jep.2010.08.063

Ercan, G., Yigitturk, G., and Erbas, O. (2019). Therapeutic effect of adenosine on experimentally induced acute ulcerative colitis model in rats. Acta Cirurgica Brasileira, 34(12). https://doi.org/10.1590/s0102-865020190120000004

Hagar, H. H., el Medany, A., el Eter, E., and Arafa, M. (2007). Ameliorative effect of pyrrolidinedithiocarbamate on acetic acid-induced colitis in rats. European Journal of Pharmacology, 554(1), 69–77. https://doi.org/10.1016/j.ejphar.2006.09.066

Harborne, J. B. (1987). Metode Fitokima Penuntun Cara Modern Menganalisis Tumbuhan: Vol. Terbitan Kedua. Penerbit ITB Bandung.

Jeengar, M. K., Thummuri, D., Magnusson, M., Naidu, V. G. M., and Uppugunduri, S. (2017). Uridine Ameliorates Dextran Sulfate Sodium (DSS)-Induced Colitis in Mice. Scientific Reports, 7(1), 1–10. https://doi.org/10.1038/s41598-017-04041-9

Jeon, Y. D., Lee, J. H., Lee, Y. M., and Kim, D. K. (2020). Puerarin inhibits inflammation and oxidative stress in dextran sulfate sodium-induced colitis mice model. Biomedicine and Pharmacotherapy, 124(November 2019), 109847. https://doi.org/10.1016/j.biopha.2020.109847

Kobayashi, T., Siegmund, B., le Berre, C., Wei, S. C., Ferrante, M., Shen, B., Bernstein, C. N., Danese, S., Peyrin-Biroulet, L., and Hibi, T. (2020). Ulcerative colitis. Nature Reviews Disease Primers, 6(1), 74. https://doi.org/10.1038/s41572-020-0205-x

Kwon, S. H., Kothari, D., Jung, H. I., Lim, J. M., Kim, W. L., Kwon, H. C., Han, S. G., Seo, S. M., Choi, Y. K., and Kim, S. K. (2021). Noni juice-fortified yogurt mitigates dextran sodium sulfate-induced colitis in mice through the modulation of inflammatory cytokines. Journal of Functional Foods, 86, 104652. https://doi.org/10.1016/j.jff.2021.104652

Lee, D., Yu, J. S., Huang, P., Qader, M., Manavalan, A., Wu, X., Kim, J., Pang, C., Cao, S., Kang, K. S., and Kim, K. H. (2020). Identification of Anti-Inflammatory Compounds from. Molecules, 25(4968), 1–12.

Liu, K., Li, G., Guo, W., and Zhang, J. (2020). The protective effect and mechanism of pedunculoside on DSS (dextran sulfate sodium) induced ulcerative colitis in mice. International Immunopharmacology, 88. https://doi.org/10.1016/j.intimp.2020.107017

Mahfuz, M. (2013). Inflammatory bowel disease: Foiling inflammatory bowel disease. Science Translational Medicine, 5(209), 1–29. https://doi.org/10.1126/scitranslmed.3007773

Mayangsari, Y., and Suzuki, T. (2018). Resveratrol enhances intestinal barrier function by ameliorating barrier disruption in Caco-2 cell monolayers. Journal of Functional Foods, 51, 39–46. https://doi.org/10.1016/j.jff.2018.10.009

Meilawati, L., Ernawati, T., Triana Dewi, R., and Lia Meilawati, S. (2021). Study of Total Phenolic, Total Flavonoid, Scopoletin Contents and Antioxidant Activity of Extract of Ripened Noni Juice.

Michielan, A., and D’Incà, R. (2015). Intestinal Permeability in Inflammatory Bowel Disease: Pathogenesis, Clinical Evaluation, and Therapy of Leaky Gut. In Mediators of Inflammation (Vol. 2015). Hindawi Publishing Corporation. https://doi.org/10.1155/2015/628157

Minaiyan, M., Asghari, G., Taheri, D., Saeidi, M., and Nasr-Esfahani, S. (2014). Anti-inflammatory effect of Moringa oleifera Lam. seeds on acetic acid-induced acute colitis in rats. Avicenna Journal of Phytomedicine, 4(2), 127–136.

Owusu, G., Obiri, D. D., Ainooson, G. K., Osafo, N., Antwi, A. O., Duduyemi, B. M., and Ansah, C. (2020). Acetic Acid-Induced Ulcerative Colitis in Sprague Dawley Rats Is Suppressed by Hydroethanolic Extract of Cordia vignei Leaves through Reduced Serum Levels of TNF- α and IL-6 . International Journal of Chronic Diseases, 2020, 1–11. https://doi.org/10.1155/2020/8785497

Pastrelo, M. M., Dias Ribeiro, C. C., Duarte, J. W., Pitelli, A., Gollücke, B., Artigiani-Neto, R., Ribeiro, D. A., Miszputen, S. J., Tizuko, C., Oshima, F., Paula, A., and Paiotti, R. (n.d.). I IJ JM MC CM M Effect of Concentrated Apple Extract on Experimental Colitis Induced by Acetic Acid.

Purwanto, P., and Martono, S. (2020). Activity of Noni Fruit (Morinda citrifolia L.) Ethanolic Extract on Class mu Glutation S-Transferase of Lung Rat. In Indones. J. Cancer Chemoprevent (Vol. 11, Issue 1).

Randhawa, P. K., Singh, K., Singh, N., and Jaggi, A. S. (2014). A review on chemical-induced inflammatory bowel disease models in rodents. In Korean Journal of Physiology and Pharmacology (Vol. 18, Issue 4, pp. 279–288). Korean Physiological Soc. and Korean Soc. of Pharmacology. https://doi.org/10.4196/kjpp.2014.18.4.279

Rezeki, S. R. I., and Vidirachmilla, N. (2017). The Effect of Noni Leaves Extract ( Morinda citrifolia L ) on Wound Healing Percentage of Traumatic Ulcer In Oral Mucosa of Wistar Rats ( Rattus norvegicus ) by In Vivo. 10(4), 1735–1740.

Rubin, D. C., Shaker, A., and Levin, M. S. (2012). Chronic intestinal inflammation: inflammatory bowel disease and colitis-associated colon cancer. Frontiers in Immunology, 3, 107. https://doi.org/10.3389/fimmu.2012.00107

Saputra, C., Dewangga, A., Sahid, M. N. A., dan Nugroho, A. K. (2022). Pengaruh Pemberian Suspensi Serbuk dan Nanopartikel Seledri (Apium graveolens) Terhadap Kondisi Kolitis Pada Mencit yang Diinduksi DSS (Dextran Sodium Sulphate). JPSCR: Journal of Pharmaceutical Science and Clinical Research, 7(3), 257. https://doi.org/10.20961/jpscr.v7i3.55947

Sayuti, M. (2019). Kanker Kolorektal. In Jurnal Averrous (Vol. 5, Issue 2).

Senol, A., Isler, M., Sutcu, R., Akin, M., Cakir, E., Ceyhan, B. M., and Kockar, M. C. (2015). Kefir treatment ameliorates dextran sulfate sodium-induced colitis in rats. World Journal of Gastroenterology, 21(46), 13020–13029. https://doi.org/10.3748/wjg.v21.i46.13020

Shin, M. R., Seo, B. il, Roh, S. S., and Park, H. J. (2020). New approach of medicinal herbs and sulfasalazine mixture on ulcerative colitis induced by dextran sodium sulfate. World Journal of Gastroenterology, 26(35), 5272–5286. https://doi.org/10.3748/WJG.V26.I35.5272

Singh, B., and Sharma, R. A. (2020). Indian Morinda species: A review. Phytotherapy Research, 34(5), 924–1007. https://doi.org/10.1002/ptr.6579

Sousa, S. G., Oliveira, L. A., de Aguiar Magalhães, D., de Brito, T. V., Batista, J. A., Pereira, C. M. C., de Souza Costa, M., Mazulo, J. C. R., de Carvalho Filgueiras, M., Vasconselos, D. F. P., da Silva, D. A., Barros, F. C. N., Sombra, V. G., Freitas, A. L. P., de Paula, R. C. M., de Andrade Feitosa, J. P., and dos Reis Barbosa, A. L. (2018). Chemical structure and anti-inflammatory effect of polysaccharide extracted from Morinda citrifolia Linn (Noni). Carbohydrate Polymers, 197(2819), 515–523. https://doi.org/10.1016/j.carbpol.2018.06.042

Su, B. N., Pawlus, A. D., Jung, H. A., Keller, W. J., McLaughlin, J. L., and Kinghorn, A. D. (2005). Chemical constituents of the fruits of Morinda citrifolia (Noni) and their antioxidant activity. Journal of Natural Products, 68(4), 592–595. https://doi.org/10.1021/np0495985

Suzuki, T. (2013). Regulation of intestinal epithelial permeability by tight junctions. In Cellular and Molecular Life Sciences (Vol. 70, Issue 4, pp. 631–659). https://doi.org/10.1007/s00018-012-1070-x

Tinh, N. T. T., Sitolo, G. C., Yamamoto, Y., and Suzuki, T. (2021). Citrus limon peel powder reduces intestinal barrier defects and inflammation in a colitic murine experimental model. Foods, 10(2). https://doi.org/10.3390/foods10020240

Vainer, N., Dehlendorff, C., and Johansen, J. S. (2018). Systematic literature review of IL-6 as a biomarker or treatment target in patients with gastric, bile duct, pancreatic and colorectal cancer. In Oncotarget (Vol. 9, Issue 51). www.oncotarget.com

Wu, M., Li, P., An, Y., Ren, J., Yan, D., Cui, J., Li, D., Li, M., Wang, M., and Zhong, G. (2019). Phloretin ameliorates dextran sulfate sodium-induced ulcerative colitis in mice by regulating the gut microbiota. Pharmacological Research, 150. https://doi.org/10.1016/j.phrs.2019.104489

Yamaguchi, S., Sasaki, K., Kato, H., Fukudo, S., Iwakiri, R., Kamiya, T., Motoya, S., Murakami, K., Nagahara, A., Suzuki, H., Watanabe, T., Takahashi, S., Chan, F. K. L., Hahm, K. B., Kachintorn, U., Ming, F. K., Rani, A. A., Sollano, J. D., and Zhu, Q. (2018). Questionnaire-based survey on management of ulcerative colitis-associated cancer in east asian countries. Digestion, 99(1), 86–94. https://doi.org/10.1159/000494419

Zheng, J., Li, H., Zhang, P., Yue, S., Zhai, B., Zou, J., Cheng, J., Zhao, C., Guo, D., and Wang, J. (2022). Paeonol Ameliorates Ulcerative Colitis in Mice by Modulating the Gut Microbiota and Metabolites. Metabolites, 12(10). https://doi.org/10.3390/metabo12100956

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