OPTIMIZATION ULTRASOUND-ASSISTED EXTRACTION USING CHOLINE CHLORIDE-BASED NATURAL DEEP EUTECTIC SOLVENT TO INCREASE PHENOLIC COMPOUNDS AND ANTIOXIDANTS FROM RHODOMYRTUS TOMENTOSA LEAVES

Authors

  • NINA D. OKTAVIYANTI Department of Pharmaceutical Biology, Faculty of Pharmacy, Universitas Surabaya, Surabaya-60293, East Java, Indonesia https://orcid.org/0000-0003-0134-0544
  • RYANTO BUDIONO Department of Pharmaceutical Chemistry, Faculty of Pharmacy, Universitas Surabaya, Surabaya-60293, East Java, Indonesia
  • ENDANG W. FITRIANI Department of Pharmaceutical, Faculty of Pharmacy, Universitas Surabaya, Surabaya-60293, East Java, Indonesia
  • CHRISTINA AVANTI Department of Pharmaceutical, Faculty of Pharmacy, Universitas Surabaya, Surabaya-60293, East Java, Indonesia

DOI:

https://doi.org/10.22159/ijap.2024v16s5.52479

Keywords:

Rhodomyrtus tomentosa leaves, Natural deep eutectic solvent, Response surface Methodology, Phenolic, Antioxidant

Abstract

Objective: The main purpose of this study is to give recommendations for the ideal extraction conditions for improving the extraction yield and antioxidant activity of R. tomentosa leaves.

Methods: First, the extraction total phenolic yields of five choline chloride-based Natural Deep Eutectic Solvents (NADES) were evaluated. Then, Box Behnken designs of Response Surface Methodology (RSM) were conducted in order to optimize the extraction condition. The extraction variables investigated were extraction time, water content in NADES, and solid-to-liquid ratio. Meanwhile total phenolic and 2,2′-azinbis (3-ethylbenzothiazoline-6-sulphonic acid) (ABTS) free radicals scavenging activity were used as responses.

Results: NADES with combination of choline chloride and propylene glycol with a molar ratio of 1:1 was found to be the best solvent for extracting phenolic compound. The total phenolic compound obtained was 29.6351 mg GAE/ g dried leaves with ABTS scavenging activity about 96.84% under the optimum extraction condition (extraction time of 60 min, 25% water content in NADES, and solid-to-liquid ratio of 0.02 g/ml). Better results were shown compared to extracts with conventional solvents.

Conclusion: In sum, the use of choline chloride-based NADES as extraction solvent under optimum condition was proven to be effective in increasing the extraction efficiency of phenolic compounds and antioxidant activity from R. tomentosa leaves

Downloads

Download data is not yet available.

References

. Lai TNH, Herent MF, Quetin-Leclerq J, Nguyen TBT, Rogez H, Larondelle Y, Andre CM. Piceatannol, a potent bioactive stilbene, as major phenolic component in Rhodomyrtus tomentosa. Food Chem. 2013;138(2-3):1421-1430.

. Oktaviyanti ND, Kartini, Mun’im A. Application and optimization of ultrasound-assisted deep eutectic solvent for the extraction of new skin-lightening cosmetic materials from Ixora javanica flower. Heliyon. 2019;5(11):e02950.

. Apridamayanti P, Sari R, Pratiwi L. Development validation of quercetin compounds using RP-HPLC and in vitro activity studies on Melastoma malabathricum leaf nanocream foundation preparations. Int J App Pharm. 2023;5(5):317-24.

. Koraqi H, Petkoska AT, Khalid W, Sehrish A, Ambreen S, Lorenzo JM. Optimization of the Extraction Conditions of Antioxidant Phenolic Compounds from Strawberry Fruits (Fragaria x ananassa Duch.) Using Response Surface Methodology. Food Anal. Methods. 2023;16:1030–1042.

. Fierascu RC, Temocico G, Fierascu I, Ortan A, Babeanu NE. Fragaria Genus: Chemical Composition and Biological Activities. Molecules. 2020;25:498.

. Ridlo M, Kumalaningsih S, Pranowo D. Optimization of microwave assisted from Rhodomyrtus tomentosa fruits using response surface methodology. IOP Conf Ser: Earth Environ Sci. 2019;230:012041

. Ismandari T, Kumalaningsih S, Wijana S, Mustaniroh SA. Optimization of Bioactive Compound Extraction from Rose Myrtle Fruit (Rhodomyrtus tomentosa, (W.Ait), Myrtaceae) as the Antioxidant Source. The Scientific World Journal. 2020; 9105847.

. De Carvalho CCCR, Da Fonseca MM. Solvent toxicity in organic-aqueous systems analysed by multivariate analysis. Bioproc Biosyst Eng. 2004;26(6),361–375.

. Levet A, Bordes C, Clément Y, Mignon P, Morell C, Chermette H, Marote P, Lantéri P. Acute aquatic toxicity of organic solvents modeled by QSARs. J Mol Model. 2016;22(12):1-4.

. Lin C, Lai C, Peng YP, Wu PC, Chuang KY, Yen TY, Xiang YK. Comparative health risk of inhaled exposure to organic solvents, toxic metals, and hexavalent chromium from the use of spray paints in Taiwan. Environ Sci Pollut Res. 2018.26(33):33906-33916.

. Seo S, Kim, J. An aggravated return-to-work case of organic solvent induced chronic toxic encephalopathy. Annals Occup Environ Med. 2018;30(1):1–6.

. Oktaviyanti ND, Kartini K, Hadiyat MA, Rachmawati E, Wijaya AC, Hayun H, Mun’im A. A green extraction design for enhancing flavonoid compounds from Ixora javanica flowers using a deep eutectic solvent. R Soc Open Sci. 2020;7:201116.

. Oktaviyanti ND, Setiawan F, Kartini K, Azminah A, Avanti C, Hayun H, Mun’im A. Development of a Simple and Rapid HPLC-UV Method for Ultrasound-assisted Deep Eutectic Solvent Extraction optimization of Ferulic Acid and Antioxidant Activity from Ixora javanica Flowers. S Afr J Chem Eng. 2022;40:165-175.

. Jeong KM, Ko J, Zhao J, Jin Y, Yoo DE, Han SY, Lee J. Multi-functioning deep eutectic solvents as extraction and storage media for bioactive natural products that are readily applicable to cosmetic products. Journal Clean Prod. 2017;151:87-95.

. Rizikiyan Y, Suharyani I, Falya Y, Amelia R, Nuh M, Sulastri L, Indawati I. Nades extract of Gedong Mango leaves and Mulberry leaves in spray gel as a sunscreen. Int J App Pharm. 2022;14(4):121-125

. Pena-Pereira F, Tobiszewski M, editors. The Application of Green Solvent in Separation Process. Amsterdam: Elsevier; 2017.

. Jing C, Dong X, Tong J. Optimization of ultrasonic-assisted extraction of flavonoid compounds and antioxidants from alfalfa using response surface method. Molecules. 2015; 29, 15 550–15 571.

. Aleixandre-Tudo JL, Buica A, Nieuwodt HH, Aleixandre JL, and Johannes Du Toit W. Spectophotometric Analysis of Phenolic Compounds in Grapes and Wines. J Agric Food Chem. 2017;65(20):4009-4026

. Jacob J, Lakshmanapermalsamy P, Illuri R , Bhosle D, Sangli GK, Mundkinajeddu D. In vitro Evaluation of Antioxidant Potential of Isolated Compounds and Various Extracts of Peel of Punica granatum L. Pharmacognosy Res. 2018;10(1):44-48.

. Zainal-abidin MH, Hayyan M, Hayyan A. New horizons in the extraction of bioactive compounds using deep eutectic solvents: a review. Anal Chim Acta. 2017;979:1–23.

. Dai Y, Rozema E, Verpoorte R, Choi YH. Application of natural deep eutectic solvents to the extraction of anthocyanins from Catharanthus roseus with high extractability and stability replacing conventional organic solvents. J Chromatogr A. 2016;1434:50–56.

. Li Z, Lee PI. Investigation on drug solubility enhancement using deep eutectic solvents and their derivatives. Int J Pharm. 2016; 505:283–288.

. Sang J, Li B, Huang Y, Ma Q, Liu K, Li C Deep eutectic solvent-based extraction coupled with green two-dimensional HPLC- DAD-ESI-MS/MS for the determination of anthocyanins from Lycium ruthenicum Murr fruit. Anal Methods. 2018; 10:1247–1257.

. Selahvarzi A, Ramezan Y, Sanjabi MR, Namdar B, Akbarmivehie M, Mirsaeedghazi H, Azarikia F. Optimization of ultrasonic-assisted extraction of phenolic compounds from pomegranate and orange peels and their antioxidant activity in a functional drink, Food Biosci. 2022;49:101918.

. Cao J, Wang H, Zhang W, Cao F, Ma G, Su E. Tailor-made deep eutectic solvents for simultaneous extraction of five aromatic acids from Ginkgo biloba leaves. Molecules. 2018;23:3214.

. Makoś P, Słupek E, Gębicki J. Hydrophobic deep eutectic solvents in microextraction techniques–a review. Microchem J. 2020;152:104384.

. Bosiljkov T, Dujmić F, Cvjetko Bubalo M, Hribar J, Vidrih R, Brnčić M, Zlatic E, Radojcic Redovnikovic I, Jokić S. Natural deep eutectic solvents and ultrasound-assisted extraction: green approaches for extraction of wine lees anthocyanins. Food Bioprod Process. 2017;102:195–203.

. Hammond OS, Bowron DT, Edler KJ. The effect of water upon deep eutectic solvent nanostructure: an unusual transition from ionic mixture to aqueous Solution. Angew Chem Int Ed. 2017;56:9782–9785.

. Jing C, Dong X, Tong J. Optimization of ultrasonic-assisted extraction of flavonoid compounds and antioxidants from alfalfa using response surface method. Molecules. 2015;29(15):550–15 571.

. Liang CP, Chang CH, Liang CC, Hung KY, Hsieh CW. In vitro antioxidant activities, free radical scavenging capacity, and tyrosinase inhibitor of flavonoid compounds and ferulic acid from Spiranthes sinensis (Pers.) Ames. Molecules. 2014;19,4681–4694.

. Lestari U, Muhaimin M, Chaerunisaa AY, Sujarwo W. Antioxidant activities and phytochemical screening of ethanol extract from Surian leaves (Toona sinensis). Int J App Pharm. 2023;15:37-43.

Published

30-08-2024

How to Cite

OKTAVIYANTI, N. D., BUDIONO, R., FITRIANI, E. W., & AVANTI, C. (2024). OPTIMIZATION ULTRASOUND-ASSISTED EXTRACTION USING CHOLINE CHLORIDE-BASED NATURAL DEEP EUTECTIC SOLVENT TO INCREASE PHENOLIC COMPOUNDS AND ANTIOXIDANTS FROM RHODOMYRTUS TOMENTOSA LEAVES. International Journal of Applied Pharmaceutics, 16(5). https://doi.org/10.22159/ijap.2024v16s5.52479

Issue

Section

Original Article(s)