The Combination of Phyllanthus niruri, Euphorbia hirta, and Loranthus sp. as a Source of Antioxidant Agents

Elizabeth Betty Elok Kristiani(1), Sri Kasmiyati(2),


(1) Faculty of Biology, Universitas Kristen Satya Wacana, Indonesia
(2) Faculty of Biology, Universitas Kristen Satya Wacana, Indonesia

Abstract

Meniran (Phyllanthus niruri), patikan kebo (Euphorbia hirta), and benalu (Loranthus sp.) have often been used by people as medicinal plants. This research aimed to measure the levels of flavonoids, phenolics, and ascorbic acid compounds, as well as the Free Radical Scavenging (FRS) activity of ethyl acetate extract from the mixture of P. niruri, E. hirta, and Loranthus sp. The FRS activity was measured with the 2,2-diphenyl-1-picrylhydrazyl (DPPH) method. The level of compounds was measured by using the spectrophotometry method with specific reagents. The result of the FRS activity in ethyl acetate extract from the mixture of P. niruri, E. hirta, and Loranthus sp. varied depending on its dose. The measure of FRS in the P. niruri: E. hirta: Loranthus sp 0:0:1 (K-OOL) composition showed a strong result with a value of IC50 97.2 ± 2.1 ppm, while in the 0:0.5:0.5 (K-OEL) composition it was moderate with a value of IC50 147.6 ± 6.5 ppm. The other compositions showed weak and inactive results. The K-OOL composition had the highest flavonoid and phenolic content that were 298.8±0.00 mg QE/g extract and 141.5±2.85 mg GAE/g extract respectively. The composition with the highest ascorbic acid content (298.8±0.00 mg/g extract) was K-OEO composition. So far, research on medicinal plants is still limited to one type of plant. The combination of several types of plants in several formulations allows obtaining a composition that can produce maximum antioxidant capacity. Therefore, this research is expected to produce a combination formulation of various types of medicinal plants that have the K-OOL composition very strong antioxidant activity and can be used as herbal medicines.

Keywords

antioxidant, secondary metabolites, Phyllanthus niruri, Euphorbia hirta, Loranthus sp.

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References

Abbasi, M. A., Saleem, H., Aziz-ur-Rehman, & Riaz, T., (2013). Determination of antioxidant activity and phytoconstituent screening of Euphorbia heterophylla Linn., Br. J. Pharm. Res, 3(2), 202-216.

Aminudin, Andarwulan, N., Palupi, N. S., & Arifiantini, I. (2020). Characteristics and antioxidant activity of kebar grass (Biophytum petersianum) extract. Biosaintifika, 12(2), 178-185.

Asha, S., Thirunavukkarasu, P., Mani, M., & Sadiq, A. M. (2016). Antioxidant activity of Euphorbia hirta Linn leaves extracts. European J Med Plants, 14(1), 1-14.

Bag, A., & Chattopadhyay, R. R. (2015). Evaluation of synergistic antibacterial and antioxidant efficacy of essential oils of spices and herbs in combination. PLoS One, 10(7), e0131321-37.

Bahmani, F., Kazemeini H., Hoseinzadeh-Chahkandak, F., Farkhondeh, T., & Sedaghat, M. (2019). Sedation with medicinal plants: A review of medicinal plants with sedative properties in Iranian ethnoblotanical documents. Plant Biotechnology Persa, 1(1), 13-24.

Balogh, T., & Szarka, A. (2016). A comparative study: methods for the determination of ascorbic acid in small and middle sized food analytic laboratories. Acta Aliment, 45(3), 354–362.

Bandoniene, D. & Murkovic, M. (2002). The detection of radical scavenging compounds in crude extract of borage (Borago officinalis L.) by using an on-line HPLC-DPPH method. J Biochem Biophys Methods, 53(1-3), 45-49.

Blokhina, O., Virolainen, E., & Fagerstedt, K. V. (2003). Antioxidants, oxidative damage and oxygen deprivation stress: a review. Ann Bot, 91(2), 179-94.

Baiano, A., & Nobile M. A. D. (2015). Antioxidant compounds from vegetable matrices: Biosynthesis, occurrence, and extraction systems. Crit. Rev. Food Sci. Nutr, 56(12), 2053-2068.

Burda, S. & Oleszek, W. (2001). Antioxidant and antiradical activities of flavonoids. J Agric Food Chem, 49(6), 2274-2279.

Caroline, J. R., Ilakiya, A., Deepika, R., Sujatha, M., & Sivaraji, C. (2018). Antipsoriasis, antioxidant, and antimicrobial activities of aerial parts of Euphorbia hirta. Asian J Pharm Clin Res, 11 (9), 513-517.

Chekroun-Bechlaghem, N., Belyagoubi-Benhammou N., Belyagoubi, L., Gismondi, A., Nanni, V., Di Marco, G., Canuti, L., Canini, A., El Haci, I., & Atik, B. F. (2019). Phytochemical analysis and antioxidant activity of Tamarix africana, Arthrocnemum macrostachyum and Suaeda fruticosa, three halophyte species from Algeria. Plant Biosyst, 153(6), 843–852.

Dabeek, W. M. & Marra, M.V. (2019). Dietary quercetin and kaempferol: bioavailability and potential cardiovascular-related bioactivity in humans. Nutrients, 11, 2288-2306.

Da’i, M., Wahyuni, A. S., Ika T. D. K., Azizah, T., Suhendi, A., & Saifudin, A. (2016). Antioxidant activity of Phyllanthus niruri L. herbs: in vitro and in vivo models and isolation of active compound. Natl J Physiol Pharm Pharmacol, 6(1), 32-37.

Deng, G. F., Shen, C., Xu, X. R., Kuang, R. D., Guo, Y. J., Zeng, L. S., Gao, L. L., Lin, X., Xie, J. F., & Xia, E. Q. (2012). Potential of fruit wastes as natural resources of bioactive compounds. Int. J. Mol. Sci, 13(7), 8308-8323.

Dontha, S. (2016). A review on antioxidant methods. Asian J Pharm Clin Res, 9(2), 14-32.

Duthie, G. G., Duthie, S. J., & Kyle, J. A. (2000). Plant polyphenols in cancer 54. and heart disease: implications as nutritional antioxidants. Nutr. Res. Rev, 13(1), 79-106.

Eloziia, N., Kumar, N., Kothiyal, P., Deka, P., & Nayak, B. K. (2017). A review on antidepressant plants. Journal of Pharmacy Research, 11(5), 382-396.

Figueirode, A. C., Barroso, J. G., Pedro, L. G., & Scheffer, J. J., (2008). Factors affecting secondary metabolite production in plants: volatile components and essential oils. Flavour Fragr. J, 23(4), 213-226.

Giribabu, N., Rao, P. V., Kumar, K. P., Muniandy, S., Rekha, S. S., & Salleh, N. (2014). Aqueous extract of Phyllanthus niruri leaves displays in vitro antioxidant activity and prevents the elevation of oxidative stress in the kidney of streptozotocin-induced diabetic male rats. Evid. Based Complementary Altern. Med, 2014, 1-10.

Gulçin, I. (2012). Antioxidant activity of food constituents: an overview. Arch. Toxicol, 86, 345–391.

Haddad-Kashani, H., Seyed-Hosseini, E., Nikzad, H., & Aarabi, M.H. (2012). Pharmacological properties of medicinal herbs by focus on secondary metabolites. Life Science Journal, 9(1), 509-520.

Haidara, M., Dénou, A., Haddad, M., Camara, A., Traoré, K., Aubouy, A., Bourdy, G., & Sanogo, R. (2020). Evaluation of anti-inflammatory, anti-pyretic, analgesic, and hepatoprotective properties of Terminalia macroptera. Planta Med. Int. Open, 7, e58–e67.

Haminiuk, C. W. I., Plata-Oviedo, M. S. V., de Mattos, G., Carpes, S. T., & Branco, I. G. (2014). Extraction and quantification of phenolic acids and flavonols from Eugenia pyriformis using different solvents. J. Food Sci. Technol, 51(10), 2862–2866.

Hardiana, R., Rudiyansyah, & Zaharah, T. A. (2012). Aktivitas antioksidan senyawa golongan fenol dari beberapa jenis tumbuhan famili Malvaceae. JKK, 1(1), 8-13.

Ibrahim, D., Hong, L. S., & Kuppan, N. (2013). Antimicrobial activity of crude methanolic extract from Phyllanthus niruri. Nat. Prod. Commun, 8(4), 493-496.

Iswari, R. S. & Susanti, R. (2016). Antioxidant activity from various tomato processing. Biosaintifika, 8(1), 129-134.

Jain, D. P., Pancholi, S. S., & Patel, R. (2011). Synergistic antioxidant activity of green tea with some herbs. J Adv Pharm Technol Res., 2(3), 177-83.

Jun, M., Fu, H.-Y., Hong, J., Wan, X., Yang, C. S., & Ho, C.-T. (2003). Comparison of antioxidant activities of isoflavones from kudzu root (Pueraria lobata Ohwi). J. Food Sci, 69, 2112-2127.

John, B., Sulaiman, C. T., George, S., & Reddy, V. R. K. (2014). Total phenolics and flavonoids in selected medicinal plants from Kerala. Int. J. Pharm. Pharm. Sci, 6(1), 406–408.

Karakaya, S., Koca, M., Sytar, O., & Duman, H. (2019). The natural phenolic compounds and their antioxidant and anticholinesterase potential of herb Leiotulus dasyanthus (K. Koch) Pimenov & Ostr. Nat. Prod. Res, 18, 1–3.

Kasmiyati, S., Kristiani, E. B. E., Herawati, M. M. & Sukmana, A. B. A. (2021). Antibacterial activity and flavonoids content of Artemisia cina Berg. ex Poljakov ethyl acetate extracts. Biosaintifika, 13(1), 106-112.

Kasote, D. M., Katyare, S. S., Hegde M. V., & Bae, H. (2015). Significance of antioxidant potential of plants and its relevance to therapeutic applications. Int. J. Biol. Sci., 11(8), 982-991.

Khanum, H., Ramalakshmi, K., Srinivas, P., & Borse, B. B., (2011). Synergistic antioxidant action of oregano, ajowan and borage extracts. Food Nutr. Sci., 2, 387-392.

Krishnaiah, D., Sarbatly, R., & Nithyanandam, R. (2011). A review of the antioxidant potential of medicinal plant species. Food Bioprod Process, 89, 217–33.

Kristiani, E. B. E., Nugroho, L. H., Moeljopawiro, S. & Widyarini, S. (2016). Characterization of volatile compounds of Albertisia papuana Becc root extracts and cytotoxic activity in breast cancer cell line T47D. TJPR, 15(5), 959-964

Kristiani, E. B. E., Kasmiyati, S., & Herawati, M. M. (2021). The cytotoxic and apoptotic effects of wild and polyploidy genotype of Artemisia cina extracts on the WiDr colon and HTB-183 lung cancer cell lines. Biodiversitas, 22(7), 2844-2852.

Kumar, S. & Pandey, A. K. (2015) Free Radicals: health implications and their mitigation by herbals. BJMMR, 7(6), 438-457.

Lalee, A., Pal, P., Bhattacharaya, B., & Samanta, A. (2012). Evaluation of anticancer activity of Aevera sanguinolenta (L.) (Amaranthaceae) on ehrlich cell induced Swiss Mice. Int. J. Drug Dev. Res, 4(1), 203-209.

Mahmood A., Mahmood A., & Tabassum A. (2011). Ethnomedicinal survey of plants from District Sialkot, Pakistan. J App Pharm, 02(03), 212-220.

Manach, C., Scalbert, A., Morand, C., Remesy, C., & Jimenez, (2004). Polyphenols: food sources and bioavailability. Am. J. Clin. Nutr, 79(5), 727–747.

Maity, S., Chatterjee, S., Variyar, P. S., Sharma, A., Adhikari, S., & Mazumder, S. (2013). Evaluation of antioxidant activity and characterization of phenolic constituents of Phyllanthus amarus root. J. Agric. Food Chem, 61(14), 3443–3450.

Majid, M., Khan, M. R., Shah, N. A., Ul Haq, I., Farooq, M. A., Ullah, S., Sharif, A., Zahra, Z. Younis, T., & Sajid, M. (2015). Studies on phytochemical, antioxidant, anti-inflammatory and analgesic activities of Euphorbia dracunculoides. BMC Complement Altern Med, 15, 349-363.

Masruro, E. & Tukiran. (2017). Aktivitas antioksidan dan identifikasi senyawa hasil isolasi dari ekstrak methanol tanaman Euphorbia hirta. UNESA Journal of Chemistry, 6(1), 1-5.

Maya, D., Balé, B., Samson, G., Basile, T., & Raymond, B. (2018). Phytochemical composition, toxicity, antioxidant and lactogenic activities of euphorbia hirta (L.). Int. J. Adv. Res, 6(8), 322-335.

Middleton E. Jr., Kandaswami, C., Theoharides, T. C. 2000. The effects of plant flavonoids on mammalian cells: implications for inflammation, heart disease, and cancer. Pharmacol Rev, 52(4), 673-751.

Myburgh KH. (2014). Polyphenol supplementation: benefits for exercise performance or oxidative stress? Sports Med, 44(Supll 1), S57-S70.

Ngamsuk, S., Huang, T-C., & Hsu, J-L. (2019). Determination of phenolic compounds, procyanidins, and antioxidant activity in processed Coffea arabica L. leaves. Foods, 8, 389-401.

Nurcholis, W., Priosoeryanto, B. P., Purwakusumah, E. D. Katayama, T., & Suzuki, T. (2012). Antioxidant, cytotoxic activities and total phenolic content of four Indonesian medicinal plants. Valensi, 2(4), 501-510.

Ozgen, S., Kilinc, O. K., & Selamoglu, Z. (2016). Antioxidant activity of quercetin: a mechanistic review. Turkish. J. Agric. Sci. Technol, 4(12), 1134-1138.

Petrovska B. B. (2012). Historical review of medicinal plants' usage. Pharmacogn Rev, 6(11), 1-5.

Petry, R. D., Ortega, R. D., & Silva, W. B. (2001). Flavonoid content assay: influence of the reagent concentration and reaction time on the spectrophotometric behavior of the aluminium chloride - flavonoid complex. Pharmazie, 56(6), 465-70.

Prakash, E & Gupta D. K. (2013). In vitro study of extracts of Ricinus communis Linn on human cancer cell lines. Journal of Medical Sciences and Public Health, 2 (1), 15-20.

Rafińska, K., Pomastowski, P., Rudnicka, J., Krakowska, A., Maruśka, A., Narkute, M., & Buszewski, B. (2019). Effect of solvent and extraction technique on composition and biological activity of Lepidium sativum extracts. Food Chem, 289, 16–25.

Rahim, N. F. A., Muhammad, N., Abdullah, N., Talip, B. H. A., & Dusuki, N. J. S. (2018) Polyherbal formulations with optimum antioxidant properties. AIP Conference Proceedings 2016, 020007.

Rahman, Md. R., Ali, M., Sharif, M., & Tajmim, A. (2017). A review study on the traditional plants has potential antidepressant property. MOJ Cell Sci Rep, 4(5), 138‒145.

Raza, M. A., Kausar, R., Rana, F. A., Danish, M., Shahwar, D., & Anwar, F. (2013). Loranthus pulverulentus: a potent source of natural antioxidants and alternative medicine. J. Chem., 2013(5), 1-7.

Safriani, N., Rungkat, F. Z., Yuliana, N. D., & Prangdimurti, E. (2021). Immunomodulatory and antioxidant activities of select Indonesian vegetables, herbs, and spices on human lymphocytes. Int. J. Food Sci, 2021, 1-12.

Senguttuvan, J., Paulsamy, S., & Karthika, K. (2014). Phytochemical analysis and evaluation of leaf and root parts of the medicinal herb, Hypochaeris radicata L. for in vitro antioxidant activities. Asian Pac. J. Trop. Biomed, 4(1), S359-67.

Sharma, N. K., Dey, S., & Prasad, R. (2007). In vitro antioxidant potential evaluation of Euphorbia hirta L. Pharmacologyonline, 1, 91-98.

Sofowora, A., Ogunbodede, E., & Onayade, A. (2013). The role and place of medicinal plants in the strategies for disease prevention. Afr. J. Tradit. Complement. Altern. Med, 10(5), 210-229.

Sulmartiwi, L., Pujiastuti, D. Y., Tjahjaningsih W., Jariyah. (2018). Potential of mangrove Avicennia rumphiana extract as an antioxidant agent using multilevel extraction. In: IOP Conf. Series: Earth and Environmental Science, 137, 012075.

Xu, D-P., Li Y., Meng X., Zhou T., Zhou Y., Zheng J., Zhang J-J., & Li H-B. (2017). Natural antioxidants in foods and medicinal plants: extraction, assessment and resources. Int. J. Mol. Sci, 18(1), 96-127.

Venkatachalam, D., Samuel, S.T., Muddukrishniah, K., & Vijayan, S. (2018). Screening of Euphorbia hirta extracts for antioxidant activity. Indian. J. Med. Res. Pharm. Sci, 5(6), 1-15.

Visht, S. & Chaturvedi, S. (2012). Isolation of natural products. Current Pharma Research, 2(3), 584-599.

Wafaa, N., Sofiane, G., & Mouhamed, K. (2016). The antioxidant and antimicrobial activities of flavonoids and tannins extracted from Phlomis bovei De Noé. Eur. J. Exp. Biol, 6(3), 55-61.

Wang, S., Wang, D., & Liu, Z. (2015). Synergistic, additive and antagonistic effects of Potentilla fruticosa combined with EGb761 on antioxidant capacities and the possible mechanism. Ind. Crop Pro, 67, 227-238.

Wu, Q., Wang, Y., Guo, M. (2011). Triterpenoid saponin from the seeds of Celosia Argentea and antitumor activity. Chem. Pharm. Bull, 59(5), 666-671.

Yusufoglu, H. S. (2014). Analgesic, antipyretic, anti-inflammatory, hepatoprotective and nephritic effects of the aerial parts of Pulicaria arabica (Family: Compositae) on rats. Asian Pac. J. Trop. Med, 7(Suppl 1), S583-S590.

Zainol, M. K., Abd-Hamid, A., Yusof, S., & Muse, R. (2003). Antioxidative activity and total phenolic compounds of leaf, root and petiole of four accessions of Centella asiatica (L.) Urban. Food Chem, 81(44), 575–581.

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