Characterization, Antioxidant and Antibacterial Potentials of Tamarindus indica L. Fruit Pulp Extract Loaded O/W Nanoemulsions

Autores

  • Sarunyoo Songkro Department of Pharmaceutical Technology, Faculty of Pharmaceutical Sciences, Prince of Songkla University, Songkhla, Thailand; Drug Delivery System Excellence Center, Prince of Songkla University, Songkhla, Thailand https://orcid.org/0000-0001-5899-7411
  • Nadia Isnaini Department of Pharmaceutical Technology, Faculty of Pharmaceutical Sciences, Prince of Songkla University, Songkhla, Thailand
  • Supreedee Sungkarak Department of Pharmaceutical Technology, Faculty of Pharmaceutical Sciences, Prince of Songkla University, Songkhla, Thailand; Drug Delivery System Excellence Center, Prince of Songkla University, Songkhla, Thailand
  • Niwan Tanmanee Pharmaceutical Laboratory Service Center, Faculty of Pharmaceutical Sciences, Prince of Songkla University, Songkhla, Thailand; Drug Delivery System Excellence Center, Prince of Songkla University, Songkhla, Thailand
  • Duangkhae Maneenuan Department of Pharmaceutical Technology, Faculty of Pharmaceutical Sciences, Prince of Songkla University, Songkhla, Thailand; Drug Delivery System Excellence Center, Prince of Songkla University, Songkhla, Thailand
  • Nattha Kaewnopparat Department of Pharmaceutical Technology, Faculty of Pharmaceutical Sciences, Prince of Songkla University, Songkhla, Thailand; Drug Delivery System Excellence Center, Prince of Songkla University, Songkhla, Thailand

DOI:

https://doi.org/10.1590/s2175-97902022e19373%20

Palavras-chave:

Tamarindus indica (tamarind) fruit pulp extract, Nanoemulsions, Antioxidant, Antibacterial

Resumo

The main purposes of the current study were to formulate o/w nanoemulsions as a carrier for Tamarindus indica (tamarind) fruit pulp extract and to study the antioxidant and antibacterial potentials of nanoemulsions containing tamarind extract, focusing on cosmetic/hygiene applications. The o/w nanoemulsions using a mixture of Tween 80 and Span 80 as an emulsifier (5%w/w) were prepared by a high pressure homogenization process. Two concentrations of sweet tamarind extract, 3.3 and 6.6%w/w, based on the bioactivity study, were incorporated into the blank nanoemulsions to produce loaded nanoemulsions, F1-3.3TE (3.3%) and F1- 6.6TE (6.6%). As compared with the unloaded nanoemulsion, both tamarind extract loaded nanoemulsions showed reduced pH and significantly increased viscosity. Overall, the loaded nanoemulsions had droplet sizes of approximately 130 nm, zeta potential around -38 mV and polydispersity index (PDI) values less than 0.2. The nanoemulsion F1-3.3TE had better stability (e.g. significantly greater % tartaric acid content and lesser PDI value) than the nanoemulsion F1-6.6TE did. The antioxidant activity using 2,2-diphenyl-1-picrylhydrazyl assay revealed that the nanoemulsions F1-3.3TE and F1-6.6TE had scavenging activities of 81.66 ± 0.77% and 63.80 ± 0.79%, respectively. However, antioxidant activity of these two formulations decreased under stress conditions (heating-cooling cycles). Such incidence did not occur for their antibacterial properties investigated by agar well diffusion technique. The two formulations exhibited inhibition zones of approximately 24.0-27.7 mm against Staphylococcus aureus and Staphylococcus epidermidis, responsible for malodor of underarms. The results suggest the potential of using sweet tamarind pulp extract loaded nanoemulsions as hygiene products.

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Referências

Abukakar MG, Ukwuani AN, Shehu RA. Phytochemical screening and antibacterial activity of Tamarindus indica pulp extract. Asian J Biochem. 2008;3(2):134-138.

Akinyemi KO, Oluwa OK, Omomigbehin EO. Antimicrobial activity of crude extracts of three medicinal plants used in south-west Nigerian folk medicine on some food borne bacterial pathogens. Afr J Tradit, Complement Altern Med. 2006;3(4):13-22.

Asadinezhad S, Khodaiyan F, Salami M, Hosseini H, Ghanbarzadeh H. Effect of different parameters on orange oil nanoemulsion particle size: combination of low energy and high energy methods. J Food Meas Charact. 2019;8(12):1-9.

Atawodi SE, Liman ML, Ottu JO, Iliemene UD. Total polyphenols, flavonoids and antioxidant properties of different parts of Tamarindus indica Linn of Nigerian origin. Annu Res Rev Biol. 2014;4(24):4273-4283.

Balouiri M, Sadiki M, Ibnsouda SK. Methods for in vitro evaluating antimicrobial activity: a review. J Pharm Anal. 2016;6(2):71-79.

Baumann L, Castanedo-Tardan MP. 2009. Chapter 38. Bioengineering of the skin. In: Baumann L, Saghari S, Weisberg E, editors. Cosmetic dermatology: principle and practice. 2nd ed. New York: McGraw-Hill Companies Inc; 2009. p. 335-341.

Bhattacharjee S, Bhattacharyya S, Rai C. Evaluation of total antioxidant potential of tamarind (Tamarindus indica) of different ripening stages. Int J Biol Res. 2018;3(2):156-161.

Borgheti-Cardoso LN, Ângelo T, Gelfuso GM, Lopez RF, Gratieri T. Topical and transdermal delivery of drug-loaded nano/ microsystems with application of physical enhancement techniques. Curr Drug Targets. 2016;17(13):1545-1559.

Chien RC, Yen MT, Mau JL. Antimicrobial and antitumor activities of chitosan from shiitake stipes, compared to commercial chitosan from crab shells. Carbohyd Polym. 2016;138(2):259-264.

Costa ALO, Enéas PCR, Miranda TA, Mingoti SA, Soares CDV, Pianetti GA. In vitro dissolution kinetic for mycophenolic acid derivatives tablets. Braz J Pharm Sci. 2013;49(2):311-319.

Gaur N, Parvez N. Extraction and characterization of polysaccharide from tamarind seed for its pharmaceutical application. World J Pharm Res. 2019;8(7):1219-1230.

Gunes H, Gulen D, Mutlu R, Gumus A, Tas T, Topkaya AE. Antibacterial effects of curcumin: an in vitro minimum inhibitory concentration study. Toxicol Ind Health. 2016;32(2):246-250.

Gupta A, Eral HB, Hatton TA, Doyle PS. Nanoemulsions: formation, properties and applications. Soft Matter. 2016;12(11):2826-2841.

Gupta C, Prakash D, Gupta S. Studies on the antimicrobial activity of tamarind (Tamarindus indica) and its potential as food bio-preservative. Int Food Res J. 2014;21(6):2437-2441.

ICH. Guideline harmonised tripartite. International Conference on Harmonization, Geneva, Switzerland; 2005.

Khan BA, Akhtar N, Khan HMS, Waseem K, Mahmood T, Rasul A, et al. Basics of pharmaceutical emulsions: a review. Afr J Pharm Pharmacol. 2011;5(25):2715-2725.

Kordis-Krapez M, Abram V, Kac M, Ferjancic S. Determination of organic acids in white wines by RP-HPLC. Food Technol Biotech. 2001;39(2):93-100.

Liu Q, Tang GY, Zhao CN, Gan RY, Li HB. Antioxidant activities, phenolic profiles, and organic acid contents of fruit vinegars. Antioxidants. 2019;8(4):78.

Maenthaisong R, Chaiyakunapruk N, Warnnissorn P, Viyoch J. Cleansing lotion containing tamarind fruit pulp extract. III. Study of lightening efficacy and skin irritation on Asian skin type. ScienceAsia. 2009;35(1):24-30.

Mahdi ES, Noor AM, Sakeena MH, Abdullah GZ, Abdulkarim MF, Sattar MA. Formulation and in vitro release evaluation of newly synthesized palm kernel oil esters-based nanoemulsion delivery system for 30% ethanolic dried extract derived from local phyllanthus urinaria for skin antiaging. Int J Nanomed. 2011;6:2499-2512.

Marinova KG, Alargova RG, Denkov ND, Velev OD, Petsev DN, Ivanov IB, et al. Charging of oil-water interfaces due to spontaneous adsorption of hydroxyl ions. Langmuir. 1996;12(8):2045-2051.

Martinello F, Soares SM, Franco JJ, Santos AC, Sugohara A, Garcia SB, et al. Hypolipemic and antioxidant activities from Tamarindus indica L. pulp fruit extract in hypercholesterolemic hamsters. Food Chem Toxicol. 2006;44(6):810-818.

Maruno M, Rocha-Filho PA. O/W nanoemulsion after 15 years of preparation: a suitable vehicle for pharmaceutical and cosmetic applications. J Dispers Sci Technol. 2010;31:17-22.

Menezes APP, Trevisan SCC, Barbalho SM, Guiguer E.L. Tamarindus indica L. a plant with multiple medicinal purposes. J Pharmacogn Phytochem. 2016;5(3):50-54.

Nastiti C, Ponto T, Abd E, Grice J, Benson H, Roberts M. Topical nano and microemulsions for skin delivery. Pharmaceutics. 2017;9(4):1-25.

Nwodo UU, Obiiyeke GE, Chigor VN, Okoh AI. Assessment of Tamarindus indica extracts for antibacterial activity. Int J Mol Sci. 2011;12(10):6385-6396.

Özer Ö, Mutlu B, Kıvçak B. Antityrosinase activity of some plant extracts and formulations containing ellagic acid. Pharm Biol. 2007;45(6):519-524.

Rana M, Sharma P. Proximate and phytochemical screening of the seed and pulp of Tamarindus indica J Med Plants Stud. 2018;6(2):111-115.

Ribeiro RC, Barreto SM, Ostrosky EA, da Rocha-Filho PA, Veríssimo LM, Ferrari M. Production and characterization of cosmetic nanoemulsions containing Opuntia ficus- indica (L.) mill extract as moisturizing agent. Molecules. 2015;20(2):2492-2509.

Rocha-Filho PA, Ferrari M, Maruno M, Souza O, Gumiero V. In vitro and in vivo evaluation of nanoemulsion containing vegetable extracts. Cosmetics. 2017;4(3):32-45.

Saliou C, Weber SU, Lodge JK, Packer L. Antioxidants. In: Barel AO, Paye M, Maibach HI, editors. Handbook of cosmetic science and technology. 4th ed. New York: CRC Press, Taylor & Francis Group; 2014. p. 269-278.

Schreiber J. Deodorants. In: Barel AO, Paye M, Maibach HI, editors. Handbook of cosmetic science and technology. 4th ed. New York: CRC Press, Taylor & Francis Group; 2014. p. 513-518.

Songkro S, Pichayakorn W, Sungkarak S, and Wungsintaweekul J. Investigation of plaunoi-loaded micro/ nanoemulsions for the treatment of dermatitis: formulation, evaluation and skin irritation studies. J Drug Deliv Sci Technol. 2011;21(5):401-410.

Stout R, Birch-Machin M. Mitochondria’s role in skin ageing. Biology. 2019;8(2):29.

Sungkharak S, Supasit N, Choopan S, Ungphaiboon S. Antibacterial activity against acne involved bacteria of chitosan in a soluble state and as nanoparticles. Chiang Mai J Sci. 2016;43(5):1149-1158.

Van Tran V, Nguyen TL, Moon JY, Lee YC. Core-Shell materials, lipid particles and nanoemulsions, for delivery of active antioxidants in cosmetics applications: challenges and development strategies. Chem Eng J. 2019;8(368):88-114.

Viyoch J, Patcharaworakulchai P, Songmek R, Pimsan V, Wittaya-Areekul S. Formulation and development of patch containing tamarind fruit extract by using the blended chitosan-starch as a rate-controlling matrix. Int J Cosmet Sci. 2003;25:113-125.

Wyk V. A Review of commercially important African medicinal plants. J Ethnopharmacol. 2015;176(2):118-134.

Yuan E, Liu B, Li W, Li Q. Characterization and antioxidant activity of the complex of phloridzin and hydroxypropyl-β-cyclodextrin. Trop J Pharm Res. 2012;11(4):545-551.

Zorzi GK, Carvalho ELS, Poser VGL, Teixeira HF. On the use of nanotechnology-based strategies for association of complex matrices from plant extracts. Rev Bras Farmacogn. 2015;25(4):426-436.

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2022-12-19 — Atualizado em 2023-05-29

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Characterization, Antioxidant and Antibacterial Potentials of Tamarindus indica L. Fruit Pulp Extract Loaded O/W Nanoemulsions. (2023). Brazilian Journal of Pharmaceutical Sciences, 58. https://doi.org/10.1590/s2175-97902022e19373 (Original work published 2022)