D-Optimal Mixture Design in Sonication-Maceration Solvent Extraction of Total Phenolic and Antibacterial Activity from Acanthus ilicifolius Leaves http://www.doi.org/10.26538/tjnpr/v7i12.19

Main Article Content

I M. Artika
Roni Kartiman
Djarot S. H. Seno
Laksmi Ambarsari
Raihan P. Putra
Waras Nurcholis

Abstract

Acanthus ilicifolius is a widely recognized traditional medical herb in Indonesia. The objective of this study is to determine the optimal combination of solvents (water, ethanol, and acetone) for the extraction yield, total phenolic content, and antibacterial activity from A. ilicifolius leaves. The sonication-maceration solvent extraction was employed to acquire Acanthus ilicifolius leaves extract yield, phenolic content and antibacterial activity. Total phenolic content (TPC) was calculated using the Folin–Ciocalteu colorimetric method. The agar disk diffusion method was used to test the extracts for antibacterial activity against Staphylococcus aureus. The extraction method was optimized, the experimental data was modeled, and the design of experiments were all carried out using a D-optimal mixture design. The maximum extraction yield (4.10%) was reached by water-acetone extract. The ethanol-acetone, water-ethanol, water-acetone, and water-ethanol-acetone (41.67-16.66-41.67%) extracts were the highest TPC with values of 10.09, 10.13, 10.42 and 10.42 mg GAE/g dry weight, respectively. Finally, the optimum zone inhibition against S. aureus (2.25 mm) was showed by water-ethanol-acetone (16.67-66.66-16.67%) extract. The ideal conditions based on D-optimal mixture design were highly accurate at 61% attractiveness with a mixed solvent of water (49.52%) and ethanol (50.48%), predicting extraction yield, TPC, and antibacterial activity of 2.67%, 7.86 mg GAE/g DW, and 1.49 mm, respectively. Results showed the water-ethanol mixture were the best solvent in the sonication-maceration extraction for antibacterial properties of phenolic compounds, and extraction yield from A. ilicifolius leaves.

Article Details

How to Cite
Artika, I. M., Kartiman, R., Seno, D. S. H., Ambarsari, L., Putra, R. P., & Nurcholis, W. (2023). D-Optimal Mixture Design in Sonication-Maceration Solvent Extraction of Total Phenolic and Antibacterial Activity from Acanthus ilicifolius Leaves: http://www.doi.org/10.26538/tjnpr/v7i12.19. Tropical Journal of Natural Product Research (TJNPR), 7(12), 5495-5500. https://tjnpr.org/index.php/home/article/view/3185
Section
Articles
Author Biography

Waras Nurcholis, Department of Biochemistry, Faculty of Mathematics and Natural Science, Bogor Agricultural University, Kampus IPB Dramaga, Bogor, 16680, Jawa Barat, Indonesia

Tropical Biopharmaca Research Center, Bogor Agricultural University, Kampus IPB Taman Kencana, Bogor, 16128, Jawa Barat, Indonesia

References

Ramadhan MH, Utami NH, Mahrudin. Ethnobotanical Study of Jeruju (Achantus ilicifolius) in the Banjar Community of Pagatan Besar Village, Tanah Laut Regency. J Pendidik Sains dan Biol. 2023;10(1):1–11.

Zhang T, Tian Y, Jiang B, Miao M, Mu W. Purification, preliminary structural characterization and in vitro antioxidant activity of polysaccharides from Acanthus ilicifolius. LWT - Food Sci Technol. 2014;56(1):9–14.

Naher K, Moniruzzaman M, Islam S, Hasan A, Paul GK, Jabin T, Biswas S, Zaman S, Saleh MA, Uddin MS. Evaluation of biological activity and in silico molecular docking studies of Acanthus ilicifolius leaf extract against four multidrug-resistant bacteria. Informatics Med Unlocked. 2022;33:101092.

Pothiraj C, Balaji P, Shanthi R, Gobinath M, Babu RS, Munirah AA, Ashraf AH, Kumar KR, Veeramanikandan V, Arumugam R. Evaluating antimicrobial activities of Acanthus ilicifolius L. and Heliotropium curassavicum L against bacterial pathogens: an in-vitro study. J Infect Public Health. 2021;14(12):1927–1934.

Govindasamy C, Arulpriya M. Antimicrobial activity of Acanthus ilicifolius: Skin infection pathogens. Asian Pacific J Trop Dis. 2013;3(3):180–183.

Zhang M-Q, Ren X, Zhao Q, Yue S-J, Fu X-M, Li X, Chen K-X, Guo Y-W, Shao C-L, Wang C-Y. Hepatoprotective effects of total phenylethanoid glycosides from Acanthus ilicifolius L. against carbon tetrachloride-induced hepatotoxicity. J Ethnopharmacol. 2020;256:112795.

Wei P-H, Wu S-Z, Mu X-M, Xu B, Su Q-J, Wei J-L, Yang Y, Qin B, Xie Z-C. Effect of alcohol extract of Acanthus ilicifolius L. on anti-duck hepatitis B virus and protection of liver. J Ethnopharmacol. 2015;160:1–5.

Firdaus M, Prihanto AA, Nurdiani R. Antioxidant and cytotoxic activity of Acanthus ilicifolius flower. Asian Pac J Trop Biomed. 2013;3(1):17–21.

Chen S, Liu Z, Li H, Xia G, Lu Y, He L, Huang S, She Z.. β-Resorcylic acid derivatives with α-glucosidase inhibitory activity from Lasiodiplodia sp. ZJ-HQ1, an endophytic fungus in the medicinal plant Acanthus ilicifolius. Phytochem Lett. 2015;13:141–146.

Cai Y-S, Sun J-Z, Tang Q-Q, Fan F, Guo Y-W. Acanthiline A, a pyrido[1,2-a]indole alkaloid from Chinese mangrove Acanthus ilicifolius. J Asian Nat Prod Res. 2018;20(11):1088–1092.

Singh D, Aeri V. Phytochemical and pharmacological potential of Acanthus ilicifolius. J Pharm Bioallied Sci. 2013;5(1):17–20.

Elagdi C, Bouaouda K, Rahhal R, Mohammed H, Wadi B, Hassan F, Houda H. Phenolic compounds, antioxidant and antibacterial activities of the methanolic extracts of Euphorbia resinifera and Euphorbia echinus. Sci African. 2023;21:e01779.

Maqsood S, Benjakul S, Shahidi F. Emerging role of phenolic compounds as natural food additives in fish and fish products. Crit Rev Food Sci Nutr. 2013;53(2):162–179.

Žugić A, Đorđević S, Arsić I, Marković G, Živković J, Jovanović S, Tadić V. Antioxidant activity and phenolic compounds in 10 selected herbs from Vrujci Spa, Serbia. Ind Crops Prod. 2014;52:519–527.

Makkiyah FA, Rahmi EP, Susantiningsih T, Marliani N, Arista RA, Nurcholis W. Optimization of Graptophyllum pictum leaves extraction using a simplex centroid design focused on extracting flavonoids with antioxidant activity. J Appl Pharm Sci. 2023;13(5):214–221.

Juliana D, Aisyah SI, Priosoeryanto BP, Nurcholis W. Optimization of cardamom (Amomum compactum) fruit extraction using the Box–Behnken design focused on polyphenol extraction with antioxidant activity. J Appl Pharm Sci. 2022;12(6):194–209.

Nurcholis W, Alfadzrin R, Izzati N, Arianti R, Vinnai B, Sabri F, Kristóf E, Artika IM. Effects of methods and durations of extraction on total flavonoid and phenolic contents and antioxidant activity of Java cardamom (Amomum compactum Soland Ex Maton) fruit. Plants. 2022;11(17):2221.

Meneses NGT, Martins S, Teixeira JA, Mussatto SI. Influence of extraction solvents on the recovery of antioxidant phenolic compounds from brewer’s spent grains. Sep Purif Technol. 2013;108:152–158.

Boeing JS, Barizão EO, E Silva BC, Montanher PF, Almeida VdC, Visentainer JV. Evaluation of solvent effect on the extraction of phenolic compounds and antioxidant capacities from the berries: application of principal component analysis. Chem Cent J. 2014;8(1):48.

Singh M, Jha A, Kumar A, Hettiarachchy N, Rai AK, Sharma D. Influence of the solvents on the extraction of major phenolic compounds (punicalagin, ellagic acid and gallic acid) and their antioxidant activities in pomegranate aril. J Food Sci Technol. 2014;51(9):2070–2077.

Ayandipe DO, Adebowale AA, Obadina O, Sanwo KM Kosoko SB, Omohimi CI. Optimization of high-quality cassava and coconut composite flour combination as filler in chicken sausages. J. Culi. Sci. Technol. 2020;20(1): 1–31.

Kahfi MA, Sutisna AN, Ainia H, Cecep AR. Using design expert d-optimal for formula optimization of functional drink that enriched with moringa leaf extract (Moringa oleifera). IOP Conf.Ser.Earth Environ.Sci. 2021; 759: 1–10.

Soui Z, Amri Z, Sharif H, Souiy A, Cheraief I, Hamden K, Hammami M. The use of d-optimal mixture design in optimizing formulation of a nutraceutical hard candy. Int J Food Sci. 2023; 2023:7510452.

Calvindi J, Syukur M, Nurcholis W. Investigation of biochemical characters and antioxidant properties of different winged bean (Psophocarpus tetragonolobus) genotypes grown in Indonesia. Biodiversitas. 2020;21(6):2420–2424.

Nurcholis W, Kurniatin N, Aska NSN. Antibacterial activity of essential oils from twenty Curcuma aeruginosa genotypes. IOP Conf Ser Earth Environ Sci. 2021;803(1):012026.

Araromi DO, Alade AO, Bello MO, Bakare T, Akinwande BA, Jameel AT, Adegbola SA. Optimization of oil extraction from Pitanga (Eugenia uniflora L.) leaves using simplex centroid design. Sep Sci Technol. 2017;52(8):1341–1349.

Jdaini K, Alla F, Mansouri F, Parmar A, Elhoumaizi MA. Optimizing the extraction of phenolic antioxidants from date palm fruit by simplex-centroid solvent mixture design. Heliyon. 2023;9(1):e12738.

Dos Santos C, Mizobucchi AL, Escaramboni B, Lopes BP, Angolini CFF, Eberlin MN, Toledo Kad, Núñez EGF. Optimization of Eugenia punicifolia (Kunth) D. C. leaf extraction using a simplex centroid design focused on extracting phenolics with antioxidant and antiproliferative activities. BMC Chem. 2020;14(1):34.

Aworanti OA, Agarry SE, Ajani AO. Statistical optimization of process variables for biodiesel production from waste cooking oil using heterogeneous base catalyst. Biotechnol J Int. 2013;3(2):116–132.

Nurcholis W, Ma’rifah K, Artika MI, Aisyah SI, Priosoeryanto BP. Optimization of total flavonoid content from cardamom fruits using a simplex-centroid design, along with the evaluation of the antioxidant properties. Trop J Nat Prod Res. 2021;5(8):1382–1388.

Nie J, Chen D, Ye J, Lu Y, Dai Z. Optimization and kinetic modeling of ultrasonic-assisted extraction of fucoxanthin from edible brown algae Sargassum fusiforme using green solvents. Ultrason Sonochem. 2021;77:105671.

Toprakçı İ, Kurtulbaş E, Pekel AG, Şahin S. Application of D-optimal design for automatic solvent extraction of carotenoid from orange peel. J Food Process Preserv. 2021;45(9):e15724.

Mohammedi Z, Atik F. Impact of solvent extraction type on total polyphenols content and biological activity from Tamarix aphylla (L.) Karst. Int J Pharma Bio Sci. 2011;2(1):609–615.

Bhebhe M, Füller TN, Chipurura B, Muchuweti M. Effect of solvent type on total phenolic content and free radical scavenging activity of black tea and herbal infusions. Food Anal Methods. 2016;9(4):1060–1067.

Bose S, Bose A. Antimicrobial activity of Acanthus ilicifolius (L.). Indian J Pharm Sci. 2008;70(6):821–823.

Khalafyan AA, Temerdashev ZA, Yakuba YF, Guguchkina TI. Computer analysis of the sensory qualities of red wines as a method to optimize their blend formulation. Heliyon. 2019;5(5):e01602.

Tomás-Menor L, Morales-Soto A, Barrajón-Catalán E, Roldán-Segura C, Segura-Carretero A, Micol V. Correlation between the antibacterial activity and the composition of extracts derived from various Spanish Cistus species. FCT. 2013; 55: 313–322.