Publication Cover
Materials Technology
Advanced Performance Materials
Volume 37, 2022 - Issue 14
729
Views
0
CrossRef citations to date
0
Altmetric
Research Article

Ultrasonic Nano emulsification of Apricot Kernel Oil and Its Therapeutics Effects on Suppression of Human Lung Cancer Cells (A549)

, , &
Pages 3231-3240 | Received 17 Feb 2022, Accepted 23 Oct 2022, Published online: 07 Nov 2022

References

  • Balabhaskar R, Kumar A R, S S, et al. Potential natural products with anticancer properties and their applications. Asian J Pharm Clin Res. 2019:27–33. doi:10.22159/ajpcr.2019.v12i5.32817
  • Teleanu RI, Chircov C, Grumezescu AM, et al. Tumor angiogenesis and anti-angiogenic strategies for cancer treatment. J Clin Med. 2020;9(1):84.
  • Lugano R, Ramachandran M, Dimberg A. Tumor angiogenesis: causes, consequences, challenges and opportunities. Cell Mol Life Sci. 2020;77(9):1745–1770.
  • Baban DF, Seymour LW. Control of tumour vascular permeability. Adv Drug Deliv Rev. 1998;34(1):109–119.
  • Hobbs SK, Monsky WL, Yuan F, et al. Regulation of transport pathways in tumor vessels: role of tumor type and microenvironment. Proc Nat Acad Sci. 1998;95(8):4607–4612.
  • Maeda H. The enhanced permeability and retention (EPR) effect in tumor vasculature: the key role of tumor-selective macromolecular drug targeting. Adv Enzyme Regul. 2001;41(1):189–207.
  • Seca AM, Pinto DC. Plant secondary metabolites as anticancer agents: successes in clinical trials and therapeutic application. Int J Mol Sci. 2018;19(1):263.
  • Seelinger M, Popescu R, Giessrigl B, et al. Methanol extract of the ethnopharmaceutical remedy Smilax spinosa exhibits anti-neoplastic activity. Int J Oncol. 2012;41(3):1164–1172.
  • Hrichi S, Rigano F, Chaabane-Banaoues R, et al. Identification of fatty acid, lipid and polyphenol compounds from Prunus armeniaca L. Kernel Extracts. Foods. 2020;9(7): 896.
  • Gomaa EZ. In vitro antioxidant, antimicrobial, and antitumor activities of bitter almond and sweet apricot (Prunus armeniaca L.) kernels. Food Sci Biotechnol. 2013;22(2):455–463.
  • Cassiem W, de Kock M. The anti-proliferative effect of apricot and peach kernel extracts on human colon cancer cells in vitro. BMC Complement Altern Med. 2019;19(1):1–12.
  • Yiğit D, Yiğit N, Mavi A. Antioxidant and antimicrobial activities of bitter and sweet apricot (Prunus armeniaca L.) kernels. Braz J Med Biol Res. 2009;42(4):346–352.
  • Yurt B, Celik I. Hepatoprotective effect and antioxidant role of sun, sulphited-dried apricot (Prunus armeniaca L.) and its kernel against ethanol-induced oxidative stress in rats. Food Chem Toxicol. 2011;49(2):508–513.
  • Erdogan-Orhan I, Kartal M. Insights into research on phytochemistry and biological activities of Prunus armeniaca L. (apricot). Food Res Int. 2011;44(5):1238–1243.
  • Ganta S, Talekar M, Singh A, et al. Nanoemulsions in translational research—opportunities and challenges in targeted cancer therapy. Aaps Pharmscitech. 2014;15(3):694–708.
  • Sánchez-López E, Guerra M, Dias-Ferreira J, et al. Current applications of nanoemulsions in cancer therapeutics. Nanomaterials. 2019;9(6):821.
  • Tiwari S, Tan Y-M, Amiji M. Preparation and in vitro characterization of multifunctional nanoemulsions for simultaneous MR imaging and targeted drug delivery. J Biomed Nanotechnol. 2006;2(3–4):217–224.
  • Qian C, McClements DJ. Formation of nanoemulsions stabilized by model food-grade emulsifiers using high-pressure homogenization: factors affecting particle size. Food Hydrocoll. 2011;25(5):1000–1008.
  • Fazelifar P, Tabrizi MH, Rafiee A. The Arachis hypogaea essential oil nanoemulsion as an efficient safe apoptosis inducer in human lung cancer cells (A549). Nutr Cancer. 2021;73(6):1059–1067.
  • Khatamian N, Soltani M, Shadan B, et al. Pinus morrisonicola needles essential oil nanoemulsions as a novel strong antioxidant and anticancer agent. United Kingdom: Inorganic and Nano-Metal Chemistry; 2021. p. 1–9.
  • Soltani M, Parivar K, Baharara J, et al. Putative mechanism for apoptosis-inducing properties of crude saponin isolated from sea cucumber (Holothuria leucospilota) as an antioxidant compound. Iran J Basic Med Sci. 2015;18(2):180.
  • Alhajamee M, Marai K, Al Abbas S.M.N, et al. Co-encapsulation of curcumin and tamoxifen in lipid-chitosan hybrid nanoparticles for cancer therapy. United Kingdom: Materials Technology; 2021. p. 1–12.
  • Tavakkol Afshari HS, Homayouni Tabrizi M, Ardalan T, et al. Anethum Graveolens Essential Oil Nanoemulsions (AGEO-NE) as an exclusive apoptotic inducer in human lung adenocarcinoma (A549) Cells. Nutr Cancer. 2022; 74(4):1411–1419.
  • Javanshir A, et al. The antioxidant and anticancer potential of Ricinus communis L. essential oil nanoemulsions. J Food Meas Charact. 2020;14:1356–1365.
  • Keykhasalar R, et al. The apoptotic, cytotoxic, and antiangiogenic impact of Linum usitatissimum seed essential oil nanoemulsions on the human ovarian cancer cell line A2780. Nutr Cancer. 2021;73:2388–2396.
  • Baboota S, Shakeel F, Ahuja A, et al. Design, development and evaluation of novel nanoemulsion formulations for transdermal potential of celecoxib. Acta Pharm. 2007;57(3):315–332.
  • Che Marzuki NH, Wahab RA, Abdul Hamid M. An overview of nanoemulsion: concepts of development and cosmeceutical applications. Biotechnol Biotechnol Equip. 2019;33(1):779–797.
  • Kralova I, Sjöblom J. Surfactants used in food industry: a review. J Dispers Sci Technol. 2009;30(9):1363–1383.
  • Pavoni L, Perinelli DR, Bonacucina G, et al. An overview of micro-and nanoemulsions as vehicles for essential oils: formulation, preparation and stability. Nanomaterials. 2020;10(1):135.
  • Choudhury H, et al. Nanoemulsions as effective carriers for the treatment of lung cancer, in Nanotechnology-Based Targeted Drug Delivery Systems for Lung Cancer. Elsevier. 2019;217–247.
  • Choudhury H, Gorain B, Chatterjee B, et al. Pharmacokinetic and pharmacodynamic features of nanoemulsion following oral, intravenous, topical and nasal route. Curr Pharm Des. 2017;23(17):2504–2531.
  • Liang R, Xu S, Shoemaker CF, et al. Physical and antimicrobial properties of peppermint oil nanoemulsions. J Agric Food Chem. 2012;60(30):7548–7555.
  • García-Márquez E, Higuera-Ciapara I, Espinosa-Andrews H. Design of fish oil-in-water nanoemulsion by microfluidization. Vol. 40. Innovative Food Science & Emerging Technologies, Netherlands; 2017. p. 87–91.
  • Zhao T, Maniglio D, Chen J, et al. Design and optimization of self-nanoemulsifying formulations for lipophilic drugs. Nanotechnology. 2015;26(12):125102.
  • Maragheh AD, Tabrizi MH, Karimi E, et al. Producing the sour cherry pit oil nanoemulsion and evaluation of its anti-cancer effects on both breast cancer murine model and MCF-7 cell line. J Microencapsul. 2019;36(4):399–409.
  • Sugumar S, Ghosh V, Nirmala MJ, et al. Ultrasonic emulsification of eucalyptus oil nanoemulsion: antibacterial activity against Staphylococcus aureus and wound healing activity in Wistar rats. Ultrason Sonochem. 2014;21(3):1044–1049.
  • Ghosh V, Saranya S, Mukherjee A, et al. Cinnamon oil nanoemulsion formulation by ultrasonic emulsification: investigation of its bactericidal activity. J Nanosci Nanotechnol. 2013;13(1):114–122.
  • Nirmala MJ, Durai L, Rao KA, et al. Ultrasonic nanoemulsification of Cuminum cyminum essential oil and its applications in medicine. Int J Nanomedicine. 2020;15:795.
  • Tavakkol Afshari HS, Homayouni Tabrizi M, Ardalan T. Evaluation of antioxidant and anticancer effects of nanoemulsions prepared using dill essential oil. J Arak Uni Med Sci. 2019;22(4):40–51.
  • Kentish S, Wooster TJ, Ashokkumar M, et al. The use of ultrasonics for nanoemulsion preparation. Innovative Food Sci Emerg Technol. 2008;9(2):170–175.
  • Periasamy VS, Athinarayanan J, Alshatwi AA. Anticancer activity of an ultrasonic nanoemulsion formulation of Nigella sativa L. essential oil on human breast cancer cells. Ultrason Sonochem. 2016;31:449–455.
  • Khan I, de Sousa JR, Araujo MTF, et al. In vitro and in vivo antitumor potential of carvacrol nanoemulsion against human lung adenocarcinoma A549 cells via mitochondrial mediated apoptosis. Sci Rep. 2018;8(1):1–15.
  • Singh Y, Meher JG, Raval K, et al. Nanoemulsion: concepts, development and applications in drug delivery. J Control Release. 2017;252:28–49.
  • Hwang YY, Ramalingam K, Bienek DR, et al. Antimicrobial activity of nanoemulsion in combination with cetylpyridinium chloride in multidrug-resistant Acinetobacter baumannii. Antimicrob Agents Chemother. 2013;57(8):3568–3575.
  • Maeda H, Wu J, Sawa T, et al. Tumor vascular permeability and the EPR effect in macromolecular therapeutics: a review. J Control Release. 2000;65(1–2):271–284.
  • Seibert JB, et al. Development of propolis nanoemulsion with antioxidant and antimicrobial activity for use as a potential natural preservative. Vol. 287. United Kingdom: Food chemistry; 2019. p. 61–67.
  • Khatamian N, Ardalan P, Homayouni Tabrizi M. Effect of Carum carvi essential oil nanoemulsion on tubo cancer cells and L929 normal cells and evaluation of antioxidant activity. J Urmia Univ Med Sci. 2019;30(4):315–321.
  • Keykhasalar R, Homayouni Tabrizi M, Ardalan P. Antioxidant property and bactericidal activity of Linum usitatissimum seed essential oil nanoemulsion (LSEO-NE) on Staphylococcus aureus. Int J Infect. 2020;7(2). DOI: 10.5812/iji.101639
  • Ha TVA, et al. Antioxidant activity and bioaccessibility of size-different nanoemulsions for lycopene-enriched tomato extract. Vol. 178. United Kingdom: Food chemistry; 2015. p. 115–121.
  • Gledovic A, et al. Low-energy nanoemulsions as carriers for red raspberry seed oil: formulation approach based on Raman spectroscopy and textural analysis, physicochemical properties, stability and in vitro antioxidant/biological activity. PLoS One. 2020;15(4):e0230993.
  • Allahghadri T, Rasooli I, Owlia P, et al. Antimicrobial property, antioxidant capacity, and cytotoxicity of essential oil from cumin produced in Iran. J Food Sci. 2010;75(2):H54–H61.
  • Rinaldi F, Hanieh PN, Longhi C, et al. Neem oil nanoemulsions: characterisation and antioxidant activity. J Enzyme Inhib Med Chem. 2017;32(1):1265–1273.
  • Md S, Alhakamy NA, Aldawsari HM, et al. Formulation design, statistical optimization, and in vitro evaluation of a naringenin nanoemulsion to enhance apoptotic activity in A549 lung cancer cells. Pharmaceuticals. 2020;13(7):152.
  • Liu M-H, Li Y-F, Chen B-H. Preparation of chlorophyll nanoemulsion from pomelo leaves and its inhibition effect on melanoma cells A375. Plants. 2021;10(8):1664.
  • Rekha N, Nagesha DK, Rajasree PH, et al. Formulation, characterization and evaluation of anti-inflammatory and anti-angiogenic activities of memecylaene nanoemulsion. J Drug Deliv Therap. 2018;8(5–s):126–131.
  • Khan I, Bhardwaj M, Shukla S, et al. Carvacrol encapsulated nanocarrier/nanoemulsion abrogates angiogenesis by downregulating COX-2, VEGF and CD31 in vitro and in vivo in a lung adenocarcinoma model. Colloids Surf B Biointerfaces. 2019;181:612–622.
  • Dehelean CA, Feflea S, Gheorgheosu D, et al. Anti-angiogenic and anti-cancer evaluation of betulin nanoemulsion in chicken chorioallantoic membrane and skin carcinoma in Balb/c mice. J Biomed Nanotechnol. 2013;9(4):577–589.
  • Yousefian Rad E, Homayouni Tabrizi M, Ardalan P, et al. Citrus Lemon essential oil nanoemulsion (CLEO-NE), a safe cell-depended apoptosis inducer in human A549 lung cancer cells with anti-angiogenic activity. J Microencapsul. 2020;375:1–24.