Plant Extract Loaded Nanoparticles
Abstract
Plant extract, a natural source containing complex mixture of compounds, offers many properties such as antiparasitic, antibiotic, antioxidant, anti-hypertensive, antiviral, insecticide, anticancer, antifungal, hypoglycemic properties. Recent research has been focused on developing formulation the plant extracts not only to deliver them safely but also to enhance its therapeutic efficacy. Nanotechnology-based strategies have been proposed as a system that can be used to formulate plant extracts. Plant extract loaded nanoparticles (NPs) is aimed to facilitate in crossing the biological barriers, to increase bioavailability of poorly water-soluble phytochemicals, to encapsulate mixture compounds of different phytochemicals, to provide targeted delivery of phytochemicals to specific organs resulting in low toxicity, to get effective purification process, to mask unpleasant taste and odor, to protect sensitive phytochemicals from biological (e.g. enzyme, pH) and environmental (e.g. light, temperature, humidity) degradation, to control release of encapsulated phytochemicals, and to provide a more flexible control over the size and shape of the NPs. This review is focused on plant extract loaded NPs including its advantages, stages for developing formulation of plant extract loaded NPs, and nanosystem used to loading plant extract. In addition, this review also depicts studies which have been conducted by many researchers in developing plant extract loaded NPs. The data were collected from published journals with 21 and 39 journals as primary and supporting literatures, respectively. Plant extracts loaded NPs could be a promising delivery system for active phytochemical contained in the plant extract which is not only to deliver them safely but also to enhance its therapeutic efficacy.
Keywords: plant, extract, nanoparticle
References
Armendariz-Barragan B, Zafar N, Badri W, Galindo-Rodriguez SA, Kabbaj D, Fessi H, et al. Plant extracts: from encapsulation to application. Expert Opin Drug Deliv. 2016;13(8):1165-75.
Zorzi GK, Carvalho ELS, von Poser GL, Teixeira HF. On the use of nanotechnology-based strategies for association of complex matrices from plant extracts. Rev Bras Farmacogn. 2015;25(4):426-36.
Khan I, Saeed K, Khan I. Nanoparticles: Properties, applications and toxicities. Arab J Chem. 2019;12(7):908-31.
Jeevanandam J, Barhoum A, Chan YS, Dufresne A, Danquah MK. Review on nanoparticles and nanostructured materials: history, sources, toxicity and regulations. Beilstein J Nanotechnol. 2018;9:1050-74.
Bobo D, Robinson KJ, Islam J, Thurecht KJ, Corrie SR. Nanoparticle-Based Medicines: A Review of FDA-Approved Materials and Clinical Trials to Date. Pharm Res. 2016;33(10):2373-87.
Heera P, Shanmugam S. Nanoparticle characterization and application: an overview. Int J Curr Microbiol App Sci. 2015;4(8):379-86.
Shakeri A, Sahebkar A. Opinion Paper: Nanotechnology: A Successful Approach to Improve Oral Bioavailability of Phytochemicals. Recent Pat Drug Deliv Formul. 2016;10(1):4-6.
Brambilla D, Luciani P, Leroux JC. Breakthrough discoveries in drug delivery technologies: the next 30 years. J Control Release. 2014;190:9-14.
Makarov VV, Love AJ, Sinitsyna OV, Makarova SS, Yaminsky IV, Taliansky ME, et al. "Green" Nanotechnologies: Synthesis of Metal Nanoparticles Using Plants. Acta Naturae. 2014;6(1):35-44.
Kamel KM, Khalil IA, Rateb ME, Elgendy H, Elhawary S. Chitosan-Coated Cinnamon/Oregano-Loaded Solid Lipid Nanoparticles to Augment 5-Fluorouracil Cytotoxicity for Colorectal Cancer: Extract Standardization, Nanoparticle Optimization, and Cytotoxicity Evaluation. J Agric Food Chem. 2017;65(36):7966-81.
Bhattacharyya SS, Paul S, Khuda-Bukhsh AR. Encapsulated plant extract (Gelsemium sempervirens) poly (lactide-co-glycolide) nanoparticles enhance cellular uptake and increase bioactivity in vitro. Exp Biol Med. 2010;235(6):678-88.
Paul S, Bhattacharyya SS, Boujedaini N, Khuda-Bukhsh AR. Anticancer Potentials of Root Extract of Polygala senega and Its PLGA Nanoparticles-Encapsulated Form. Evid Based Complement Alternat Med. 2011;2011.
Narayanan S, Binulal NS, Mony U, Manzoor K, Nair S, Menon D. Folate targeted polymeric 'green' nanotherapy for cancer. Nanotechnology. 2010;21(28):285107.
Fernandez K, Aburto J, von Plessing C, Rockel M, Aspe E. Factorial design optimization and characterization of poly-lactic acid (PLA) nanoparticle formation for the delivery of grape extracts. Food Chem. 2016;207:75-85.
Simonetti G, Palocci C, Valletta A, Kolesova O, Chronopoulou L, Donati L, et al. Anti-Candida Biofilm Activity of Pterostilbene or Crude Extract from Non-Fermented Grape Pomace Entrapped in Biopolymeric Nanoparticles. Molecules. 2019;24(11).
Das J, Das S, Samadder A, Bhadra K, Khuda-Bukhsh AR. Poly (lactide-co-glycolide) encapsulated extract of Phytolacca decandra demonstrates better intervention against induced lung adenocarcinoma in mice and on A549 cells. Eur J Pharm Sci. 2012;47(2):313-24.
Samadder A, Das S, Das J, Paul A, Khuda-Bukhsh AR. Ameliorative effects of Syzygium jambolanum extract and its poly (lactic-co-glycolic) acid nano-encapsulated form on arsenic-induced hyperglycemic stress: a multi-parametric evaluation. J Acupunct Meridian Stud. 2012;5(6):310-8.
Hill LE, Taylor TM, Gomes C. Antimicrobial efficacy of poly (DL-lactide-co-glycolide) (PLGA) nanoparticles with entrapped cinnamon bark extract against Listeria monocytogenes and Salmonella typhimurium. J Food Sci. 2013;78(4):N626-32.
Muhammad DRA, Doost AS, Gupta V, bin Sintang MD, Van de Walle D, Van der Meeren P, et al. Stability and functionality of xanthan gum-shellac nanoparticles for the encapsulation of cinnamon bark extract. Food Hydrocolloid. 2020;100.
Renuka R, Sandhya P, Hari BV, Devi DR. Design of polymeric nanoparticles of emblica officinalis extracts and study of in vitro therapeutic effects. Current Trends in Biotechnology and Pharmacy. 2013;7(3):716-24.
Pan-In P, Wanichwecharungruang S, Hanes J, Kim AJ. Cellular trafficking and anticancer activity of Garcinia mangostana extract-encapsulated polymeric nanoparticles. Int J Nanomedicine. 2014;9:3677-86.
Tachaprutinun A, Meinke MC, Richter H, Pan-In P, Wanichwecharungruang S, Knorr F, et al. Comparison of the skin penetration of Garcinia mangostana extract in particulate and non-particulate form. Eur J Pharm Biopharm. 2014;86(2):307-13.
Strasser M, Noriega P, Lobenberg R, Bou-Chacra N, Bacchi EM. Antiulcerogenic potential activity of free and nanoencapsulated Passiflora serratodigitata L. extracts. Biomed Res Int. 2014;2014:434067.
Pereira F, Baptista R, Ladeiras D, Madureira AM, Teixeira G, Rosado C, et al. Production and characterization of nanoparticles containing methanol extracts of Portuguese Lavenders. Measurement. 2015;74:170-7.
Jia DW, Barwal I, Thakur S, Yadav SC. Methodology to nanoencapsulate hepatoprotective components from Picrorhiza kurroa as food supplement. Food Biosci. 2015;9:28-35.
Ribeiro AF, Ferreira CTG, dos Santos JF, Cabral LM, de Sousa VP. Design of experiments for the development of poly(D,L-lactide-co-glycolide) nanoparticles loaded with Uncaria tomentosa. J Nanopart Res. 2015;17(2).
Esmaeili A, Ghobadianpour S. Antibacterial activity of Carum copticum extract loaded MnFe2O4 nanoparticles coated with PEGylated chitosan. Ind Crop Prod. 2016;91:44-8.
Nagaich U, Gulati N, Chauhan S. Antioxidant and Antibacterial Potential of Silver Nanoparticles: Biogenic Synthesis Utilizing Apple Extract. J Pharm (Cairo). 2016;2016:7141523.
Nejat H, Rabiee M, Varshochian R, Tahriri M, Jazayeri HE, Rajadas J, et al. Preparation and characterization of cardamom extract-loaded gelatin nanoparticles as effective targeted drug delivery system to treat glioblastoma. React Funct Polym. 2017;120:46-56.
Wrona M, Cran MJ, Nerin C, Bigger SW. Development and characterisation of HPMC films containing PLA nanoparticles loaded with green tea extract for food packaging applications. Carbohyd Polym. 2017;156:108-17.
Kim JH, Baek JS, Park JK, Lee BJ, Kim MS, Hwang SJ, et al. Development of Houttuynia cordata Extract-Loaded Solid Lipid Nanoparticles for Oral Delivery: High Drug Loading Efficiency and Controlled Release. Molecules. 2017;22(12).
dos Santos LP, Caon T, Battisti MA, da Silva CHB, Simoes CMO, Reginatto FH, et al. Antioxidant polymeric nanoparticles containing standardized extract of Ilex paraguariensis A. St.-Hil. for topical use. Ind Crop Prod. 2017;108:738-47.
Fadholly A, Proboningrat A, Iskandar RPD, Rantam FA, Sudjarwo SA. In vitro anticancer activity Annona squamosa extract nanoparticle on WiDr cells. J Adv Pharm Technol. 2019;10(4):149-54.
Amjadi S, Hamishehkar H, Ghorbani M. A novel smart PEGylated gelatin nanoparticle for co-delivery of doxorubicin and betanin: A strategy for enhancing the therapeutic efficacy of chemotherapy. Mat Sci Eng C-Mater. 2019;97:833-41.
da Rocha PBR, Souza BD, Andrade LM, dos Anjos JLV, Mendanha SA, Alonso A, et al. Enhanced asiaticoside skin permeation by Centella asiatica-loaded lipid nanoparticles: Effects of extract type and study of stratum corneum lipid dynamics. J Drug Deliv Sci Tec. 2019;50:305-12.
Karimi N, Ghanbarzadeh B, Hajibonabi F, Hojabri Z, Ganbarov K, Kafil HS, et al. Turmeric extract loaded nanoliposome as a potential antioxidant and antimicrobial nanocarrier for food applications. Food Biosci. 2019;29:110-7.
Erwin F, Novita BD, Prawesti GN. Analysis Of Antibacterial Effect Of Curcuminoid With Mesoporous Silica Nanoparticles On Staphylococcus Epidermidis. JOURNAL OF WIDYA MEDIKA JUNIOR. 2019;1(2):71-9.
Liu M, Teng CP, Win KY, Chen Y, Zhang X, Yang DP, et al. Polymeric Encapsulation of Turmeric Extract for Bioimaging and Antimicrobial Applications. Macromol Rapid Commun. 2019;40(5):e1800216.
Markus J, Mathiyalagan R, Kim YJ, Han Y, Jimenez-Perez ZE, Veronika S, et al. Synthesis of hyaluronic acid or O-carboxymethyl chitosan-stabilized ZnO-ginsenoside Rh2 nanocomposites incorporated with aqueous leaf extract of Dendropanax morbifera Leveille: in vitro studies as potential sunscreen agents. New J Chem. 2019;43(23):9188-200.
Girish VM, Liang H, Aguilan JT, Nosanchuk JD, Friedman JM, Nacharaju P. Anti-biofilm activity of garlic extract loaded nanoparticles. Nanomedicine. 2019;20:102009.
Viswanathan V, Pharande R, Bannalikar A, Gupta P, Gupta U, Mukne A. Inhalable liposomes of Glycyrrhiza glabra extract for use in tuberculosis: formulation, in vitro characterization, in vivo lung deposition, and in vivo pharmacodynamic studies. Drug Dev Ind Pharm. 2019;45(1):11-20.
Pimentel-Moral S, Teixeira C, Fernandes R, Borras-Linares I, Arraez-Roman D, Martinez-Ferez A, et al. Polyphenols-enriched Hibiscus sabdariffa extract-loaded nanostructured lipid carriers (NLC): Optimization by multi-response surface methodology. J Drug Deliv Sci Tec. 2019;49:660-7.
Amjadi I, Mohajeri M, Borisov A, Hosseini MS. Antiproliferative Effects of Free and Encapsulated Hypericum Perforatum L. Extract and Its Potential Interaction with Doxorubicin for Esophageal Squamous Cell Carcinoma. J Pharmacopuncture. 2019;22(2):102-8.
Esmaeili A, Pourkhodabakhshi F. Loading Metformin/Nettle Extract Lamium album L. subsp. Crinitum in Porous Hollow Silica Nanoparticle Coated by the Layer-by-Layer Method. Silicon-Neth. 2020;12(3):521-34.
Carvalho IPS, Miranda MA, Silva LB, Chrysostomo-Massaro TN, Paschoal JAR, Bastos JK, et al. IN VITRO Anticancer Activity and Physicochemical Properties of SOLANUM LYCOCARPUM Alkaloidic Extract Loaded in Natural Lipid-Based Nanoparticles. Colloid Interfac Sci. 2019;28:5-14.
Sanna V, Lubinu G, Madau P, Pala N, Nurra S, Mariani A, et al. Polymeric nanoparticles encapsulating white tea extract for nutraceutical application. J Agric Food Chem. 2015;63(7):2026-32.
Badawi N, El-Say K, Attia D, El-Nabarawi M, Elmazar M, Teaima M. Development of Pomegranate Extract-Loaded Solid Lipid Nanoparticles: Quality by Design Approach to Screen the Variables Affecting the Quality Attributes and Characterization. ACS Omega. 2020;5(34):21712-21.
Park JK, Rupa EJ, Arif MH, Li JF, Anandapadmanaban G, Kang JP, et al. Synthesis of zinc oxide nanoparticles from Gynostemma pentaphyllum extracts and assessment of photocatalytic properties through malachite green dye decolorization under UV illumination-A green approach. Optik. 2021;239:166249.
Rupa EJ, Li JF, Arif MH, Yaxi H, Puja AM, Chan AJ, et al. Cordyceps militaris Fungus Extracts-Mediated Nanoemulsion for Improvement Antioxidant, Antimicrobial, and Anti-Inflammatory Activities. Molecules. 2020;25(23).
Li JF, Rupa EJ, Hurh J, Huo Y, Chen L, Han Y, et al. Cordyceps militaris fungus mediated Zinc Oxide nanoparticles for the photocatalytic degradation of Methylene blue dye. Optik. 2019;183:691-7.
Liu YC, Li JF, Ahn J, Pu J, Rupa EJ, Huo Y, et al. Biosynthesis of zinc oxide nanoparticles by one-pot green synthesis using fruit extract of Amomum longiligulare and its activity as a photocatalyst. Optik. 2020;218.
Chen L, Huo Y, Han YX, Li JF, Ali H, Batjikh I, et al. Biosynthesis of gold and silver nanoparticles from Scutellaria baicalensis roots and in vitro applications. Appl Phys a-Mater. 2020;126(6).
Rupa EJ, Kaliraj L, Abid S, Yang DC, Jung SK. Synthesis of a Zinc Oxide Nanoflower Photocatalyst from Sea Buckthorn Fruit for Degradation of Industrial Dyes in Wastewater Treatment. Nanomaterials (Basel). 2019;9(12).
Seo KH, Markus J, Soshnikova V, Oh KH, Anandapadmanaban G, Perez ZEJ, et al. Facile and green synthesis of zinc oxide particles by Stevia Rebaudiana and its in vitro photocatalytic activity. Inorg Nano-Met Chem. 2019;49(1):1-6.
Shim YJ, Soshnikova V, Anandapadmanaban G, Mathiyalagan R, Perez ZEJ, Markus J, et al. Zinc oxide nanoparticles synthesized by Suaeda japonica Makino and their photocatalytic degradation of methylene blue. Optik. 2019;182:1015-20.
Kang JP, Kim YJ, Singh P, Huo Y, Soshnikova V, Markus J, et al. Biosynthesis of gold and silver chloride nanoparticles mediated by Crataegus pinnatifida fruit extract: in vitro study of anti-inflammatory activities. Artif Cells Nanomed Biotechnol. 2018;46(8):1530-40.
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