Publication Cover
Materials Technology
Advanced Performance Materials
Volume 37, 2022 - Issue 11
262
Views
9
CrossRef citations to date
0
Altmetric
Research Article

Incorporation of Boswellia sacra essential oil into chitosan/TPP nanoparticles towards improved therapeutic efficiency

, , , , &
Pages 1703-1715 | Received 22 Jun 2021, Accepted 29 Aug 2021, Published online: 08 Sep 2021

References

  • Bhalla Y, Gupta VK, Jaitak V. Anticancer activity of essential oils: a review. J Sci Food Agric. 2013;93(15):3643–3653.
  • Ashna M, Es-Haghi A, Karimi Noghondar M, et al. Greener synthesis of cerium oxide nanoemulsion using pollen grains of Brassica napus and evaluation of its antitumour and cytotoxicity properties. Mater Technol. 2020:1–8. DOI:10.1080/10667857.2020.1863558.
  • Ferguson LR, Chen H, Collins AR, et al. Genomic instability in human cancer: molecular insights and opportunities for therapeutic attack and prevention through diet and nutrition. In Seminars in cancer biology. 2015. Elsevier, USA.
  • Nourmohammadi E, Khoshdel-sarkarizi H, Nedaeinia R, et al. Evaluation of anticancer effects of cerium oxide nanoparticles on mouse fibrosarcoma cell line. J Cell Physiol. 2019;234(4):4987–4996.
  • Amin A, Gali-Muhtasib H, Ocker M, et al. Overview of major classes of plant-derived anticancer drugs. IJBS. 2009;5(1):1.
  • Jin H, Pi J, Yang F, et al. Ursolic acid-loaded chitosan nanoparticles induce potent anti-angiogenesis in tumor. Appl Microbiol Biotechnol. 2016;100(15):6643–6652.
  • del Puerto-Nevado L, Rojo F, Zazo S, et al. Active angiogenesis in metastatic renal cell carcinoma predicts clinical benefit to sunitinib-based therapy. Br J Cancer. 2014;110(11):2700–2707.
  • Blowman K, Magalhaes M, Lemos MFL, et al. Anticancer properties of essential oils and other natural products. Evid Based Complement Alternat Med. 2018;2018:1–12.
  • Yeom Y-E, Kim MA, Kim J, et al. Anti-inflammatory effects of the extract of Solanum nigrum L. on an acute ear edema mouse model. Mater Technol. 2019;34(14):851–857.
  • Sitarek P, Rijo P, Garcia C, et al. Antibacterial, anti-inflammatory, antioxidant, and antiproliferative properties of essential oils from hairy and normal roots of leonurus sibiricus L. and their chemical composition. Oxid Med Cell Longev. 2017;2017:1–12.
  • Elgamal AM, Ahmed RF, Abd-ElGawad AM, et al. Chemical Profiles, Anticancer, and Anti-Aging Activities of Essential Oils of Pluchea dioscoridis (L.) DC. and Erigeron bonariensis L. Plants. 2021;10(4):667.
  • Nasr FA, Noman OM, Alqahtani AS, et al. Phytochemical constituents and anticancer activities of Tarchonanthus camphoratus essential oils grown in Saudi Arabia. Saudi Pharm J. 2020;28(11):1474–1480.
  • Taheri E, Ghorbani S, Safi M, et al. Inhibition of colorectal cancer cell line CaCo-2 by essential oil of eucalyptus camaldulensis through induction of apoptosis. Acta Med Iran. 2020; 58(6):260–265.
  • Efferth T, Oesch F. Anti-inflammatory and anti-cancer activities of frankincense: targets, treatments and toxicities. In Seminars in cancer biology. 2020. Elsevier, USA.
  • Morikawa T, Matsuda H, Yoshikawa M. A review of anti-inflammatory terpenoids from the incense gum resins frankincense and myrrh. J Oleo Sci. 2017;66(8):805-814.
  • Taniguchi K, Karin M. NF-κB, inflammation, immunity and cancer: coming of age. Nat Rev Immunol. 2018;18(5):309–324.
  • Ni X, Suhail MM, Yang Q, et al. Frankincense essential oil prepared from hydrodistillation of Boswellia sacra gum resins induces human pancreatic cancer cell death in cultures and in a xenograft murine model. BMC Complement Altern Med. 2012;12(1):1–14.
  • El-Dek SI, Hassan M, Mohamed A, et al. APOPTOTIC AND NECROTIC EFFECTS OF CHITOSAN NANOPARTICLES LOADED WITH THE HONEYBEE, APIS MELLIFERA VENOM ON DIFFERENT CANCER CELL LINES. J Egypt Soc Parasitol. 2019;49(1):115–122.
  • Jain KK, Jain KK. The handbook of nanomedicine. Vol. 404. USA: Springer; 2008.
  • Gu X, Cao R, Li Y, et al. Three-component antibacterial membrane of poly(butylene carbonate), poly(lactic acid) and chitosan prepared by electrospinning. Mater Technol. 2019;34(8):463–470.
  • Fasolino I, Raucci MG, Soriente A, et al. Osteoinductive and anti-inflammatory properties of chitosan-based scaffolds for bone regeneration. Mater Sci Eng C. 2019;105:110046.
  • Kurniasih M, Cahyati T, Dewi RS. Carboxymethyl chitosan as an antifungal agent on gauze. Int J Biol Macromol. 2018;119:166–171.
  • Sahariah P, Masson M. Antimicrobial chitosan and chitosan derivatives: a review of the structure–activity relationship. Biomacromolecules. 2017;18(11):3846–3868.
  • Adhikari HS, Yadav PN. Anticancer activity of chitosan, chitosan derivatives, and their mechanism of action. Int J Biomater. 2018;2018:1–29.
  • Moraru C, Mincea M, Menghiu G, et al. Understanding the factors influencing Chitosan-based nanoparticles-protein corona interaction and drug delivery applications. Molecules. 2020;25(20):4758.
  • Khshemat V, Homayouni-Tabrizi M, Neamati A, et al. Fabrication, characterisation, and biological properties of Chitosan nanoparticles containing Rapeseed Pollen Extract (RPE) on the MCF-7 Cell Line. Mater Technol. 2021:1–11. DOI:10.1080/10667857.2021.1921099.
  • Yang C, Wu H, Wang J. Formulation and evaluation of controlled-release of steroidal saponins-loaded collagen microspheres. Mater Technol. 2019;34(9):534–539.
  • Taghavizadeh Yazdi ME, Hamidi A, Amiri MS, et al. Eco-friendly and plant-based synthesis of silver nanoparticles using Allium giganteum and investigation of its bactericidal, cytotoxicity, and photocatalytic effects. Mater Technol. 2019;34(8):490–497.
  • Tzeyung AS, Md S, Bhattamisra S, et al. Fabrication, optimization, and evaluation of rotigotine-loaded chitosan nanoparticles for nose-to-brain delivery. Pharmaceutics. 2019;11(1):26.
  • 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.
  • Rizeq BR, Younes NN, Rasool K, et al. Synthesis, bioapplications, and toxicity evaluation of chitosan-based nanoparticles. Int J Mol Sci. 2019;20(22):5776.
  • Tuekaew J, Siriwatanametanon N, Wongkrajang Y, et al. Evaluation of the antioxidant activities of Ya-hom Intajak, a Thai herbal formulation, and its component plants. Trop J Pharm Res. 2014;13(9):1477–1485.
  • Thyagarajan A, Sahu RP. Potential contributions of antioxidants to cancer therapy: immunomodulation and radiosensitization. Integr Cancer Ther. 2018;17(2):210–216.
  • Pumiputavon K, Chaowasku T, Saenjum C, et al. Cell cycle arrest and apoptosis induction by methanolic leaves extracts of four Annonaceae plants. BMC Complement Altern Med. 2017;17(1):1–11.
  • Arumugam A, Ibrahim MD, Kntayya SB, et al. Induction of Apoptosis by Gluconasturtiin-Isothiocyanate (GNST-ITC) in human hepatocarcinoma HepG2 cells and human breast adenocarcinoma MCF-7 cells. Molecules. 2020;25(5):1240.
  • Shabestarian H, Homayouni-Tabrizi M, Movahedi M, et al. Putative mechanism for cancer suppression by PLGA nanoparticles loaded with Peganum harmala smoke extract. J Microencapsul. 2021;38(5):324-337.
  • Xiao J, Liu X, Yan D. Effects of Boswellia carterii volatile oils on proliferation and apoptosis of liver cancer cell SMCC-7721. Chin J Nat Med. 2007;5(1):68–71.
  • Chen Y, Zhou C, Ge Z, et al. Composition and potential anticancer activities of essential oils obtained from myrrh and frankincense. Oncol Lett. 2013;6(4):1140–1146.
  • Ren P, Ren X, Cheng L, et al. Frankincense, pine needle and geranium essential oils suppress tumor progression through the regulation of the AMPK/mTOR pathway in breast cancer. Oncol Rep. 2018;39(1):129–137.
  • Jaafari-Ashkavandi Z, Hamedi A, Assar S, et al. The effects of Frankincense on oral squamous cell carcinoma cell line. Int J Cancer Manag. 2017;10(5):1-8.
  • Girola N, Figueiredo CR, Farias CF, et al. Camphene isolated from essential oil of Piper cernuum (Piperaceae) induces intrinsic apoptosis in melanoma cells and displays antitumor activity in vivo. Biochem Biophys Res Commun. 2015;467(4):928–934.
  • Arunasree K. Anti-proliferative effects of carvacrol on a human metastatic breast cancer cell line, MDA-MB 231. Phytomedicine. 2010;17(8–9):581–588.
  • Suhail MM, Wu W, Cao A, et al. Boswellia sacra essential oil induces tumor cell-specific apoptosis and suppresses tumor aggressiveness in cultured human breast cancer cells. BMC Complement Altern Med. 2011;11(1):1–14.
  • 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.
  • Rinita J, Jose R, Jothi NN. Acclimated growth and characterization of manganese oxide nanospheres using natural extract from trigonella foenum-graecum. Mater Technol. 2020.
  • Pavoni L, Benelli G, Maggi F, et al., Green nanoemulsion interventions for biopesticide formulations. In Nano-Biopesticides Today and Future Perspectives. 2019, Elsevier. p. 133–160, London.
  • Vijayakumar G, Boopathi G, Elango M. In vitro cytotoxic efficacy of PEG encapsulated manganese-doped zinc oxide nanoparticles on hepatocellular carcinoma cells. Mater Technol. 2019;34(13):807–817.
  • Perlatti B, De Souza Bergo PL, Fernandes JB, et al., Polymeric nanoparticle-based insecticides: a controlled release purpose for agrochemicals. In Insecticides-Development of safer and more effective technologies. 2013, London.
  • Patrulea V, Laurent-Applegate LA, Ostafe V, et al. Polyelectrolyte nanocomplexes based on chitosan derivatives for wound healing application. Eur J Pharm Biopharm. 2019;140:100–108.
  • Saeed RM, Dmour I, Taha MO. Stable chitosan-based nanoparticles using polyphosphoric acid or hexametaphosphate for tandem ionotropic/covalent crosslinking and subsequent investigation as novel vehicles for drug delivery. Front Bioeng Biotechnol. 2020;8:4.
  • Barzegar M, Ghaderi Gahfarokhi M, Sahari MA, et al. Enhancement of thermal stability and antioxidant activity of thyme essential oil by encapsulation in chitosan nanoparticles. J Agric Sci Technol. 2016;18(7):1781–1792.
  • Esyanti RR, Zaskia H, Amalia A. Chitosan nanoparticle-based coating as post-harvest technology in banana. In Journal of Physics: Conference Series. 2019. Indonesia: IOP Publishing.
  • Hosseini SF, Zandi M, Rezaei M, et al. Two-step method for encapsulation of oregano essential oil in chitosan nanoparticles: preparation, characterization and in vitro release study. Carbohydr Polym. 2013;95(1):50–56.
  • Yang R, Shim W-S, Cui F-D, et al. Enhanced electrostatic interaction between chitosan-modified PLGA nanoparticle and tumor. Int J Pharm. 2009;371(1–2):142–147.
  • Loutfy SA, EI-Din HMA, Elberry MH, et al. Synthesis, characterization and cytotoxic evaluation of chitosan nanoparticles: in vitro liver cancer model. Adv Nat Sci. 2016;7(3):035008.
  • Sokary R, Abu el-naga MN, Bekhit M, et al. A potential antibiofilm, antimicrobial and anticancer activities of chitosan capped gold nanoparticles prepared by γ–irradiation. Mater Technol. 2021:1–10. DOI:10.1080/10667857.2020.1863555.
  • Bothiraja C, Thorat UH, Pawar AP, et al. Chitosan coated layered clay montmorillonite nanocomposites modulate oral delivery of paclitaxel in colonic cancer. Mater Technol. 2014;29(sup3):B120–B126.
  • Deng X, Cao M, Zhang J, et al. Hyaluronic acid-chitosan nanoparticles for co-delivery of MiR-34a and doxorubicin in therapy against triple negative breast cancer. Biomaterials. 2014;35(14):4333–4344.
  • Feng C, Li J, Kong M, et al. Surface charge effect on mucoadhesion of chitosan based nanogels for local anti-colorectal cancer drug delivery. Colloids Surf B Biointerfaces. 2015;128:439–447.
  • Maya S, Sarmento B, Lakshmanan V-K, et al. Chitosan cross-linked docetaxel loaded EGF receptor targeted nanoparticles for lung cancer cells. Int J Biol Macromol. 2014;69:532–541.
  • Veiseh O, Sun C, Fang C, et al. Specific targeting of brain tumors with an optical/magnetic resonance imaging nanoprobe across the blood-brain barrier. Cancer Res. 2009;69(15):6200–6207.
  • Venkatesan P, Puvvada N, Dash R, et al. The potential of celecoxib-loaded hydroxyapatite-chitosan nanocomposite for the treatment of colon cancer. Biomaterials. 2011;32(15):3794–3806.
  • Soares PIP, Sousa AI, Silva JC, et al. Chitosan-based nanoparticles as drug delivery systems for doxorubicin: optimization and modelling. Carbohydr Polym. 2016;147:304–312.
  • Rashidipour M, Ashrafi B, Nikbakht MR, et al. Encapsulation of Satureja khuzistanica jamzad essential oil in chitosan nanoparticles with enhanced antibacterial and anticancer activities. Prep Biochem Biotechnol. 2021;13:1–8.
  • Rajivgandhi G, Saravanan K, Ramachandran G, et al. Enhanced anti-cancer activity of chitosan loaded Morinda citrifolia essential oil against A549 human lung cancer cells. Int J Biol Macromol. 2020;164:4010–4021.
  • George D, Maheswari PU, Begum KMMS. Synergic formulation of onion peel quercetin loaded chitosan-cellulose hydrogel with green zinc oxide nanoparticles towards controlled release, biocompatibility, antimicrobial and anticancer activity. Int J Biol Macromol. 2019;132:784–794.
  • Trinh LH, Takzare A, Ghafoor DD, et al. Trachyspermum copticum essential oil incorporated niosome for cancer treatment. J Drug Delivery Sci Technol. 2019;52:818–824.
  • Nanda B, Manjappa AS, Chuttani K, et al. Acylated chitosan anchored paclitaxel loaded liposomes: pharmacokinetic and biodistribution study in Ehrlich ascites tumor bearing mice. Int J Biol Macromol. 2019;122:367–379.
  • Anitha J, Selvakumar R, Murugan K. Chitosan capped ZnO nanoparticles with cell specific apoptosis induction through P53 activation and G2/M arrest in breast cancer cells – in vitro approaches. Int J Biol Macromol. 2019;136:686–696.
  • Gorrini C, Baniasadi PS, Harris IS, et al. BRCA1 interacts with Nrf2 to regulate antioxidant signaling and cell survival. J Exp Med. 2013;210(8):1529–1544.
  • Gorrini C, Harris IS, Mak TW. Modulation of oxidative stress as an anticancer strategy. Nat Rev Drug Discov. 2013;12(12):931–947.
  • Lee S, Jung yh, Oh SY, et al. Vibrio vulnificus VvhA induces NF-κ B-dependent mitochondrial cell death via lipid raft-mediated ROS production in intestinal epithelial cells. Cell Death Dis. 2015;6(2):1-11.
  • Rahmati-Joneidabad M, Alizadeh behbahani B. Boswellia sacra essential oil: antioxidant activity and antifungal effect on some spoilage fungi causing strawberry rot. Food Sci Technol. 2021;18(114):25–34.
  • Mothana RA, Hasson SS, Schultze W, et al. Phytochemical composition and in vitro antimicrobial and antioxidant activities of essential oils of three endemic Soqotraen Boswellia species. Food Chem. 2011;126(3):1149–1154.
  • Mariadoss AVA, Vinayagam R, Xu B, et al. Phloretin loaded chitosan nanoparticles enhance the antioxidants and apoptotic mechanisms in DMBA induced experimental carcinogenesis. Chem Biol Interact. 2019;308:11–19.
  • -Rajan A, Praseetha PK, Ariharan VN, et al. In-vitro chick chorioallantoic membrane study of Chitosan capped 5-fluorouracil conjugated gold nanoparticles. Education. 2019;11(5):2090-2094.
  • Ahmed NH, Said UZ, Meky NH, et al. Role of chitosan nanoparticles as anti-angiogenic in mice bearing Ehrlich carcinoma. Oncol Res Rev. 2018;1(3):1–6.
  • Xu Y, Wen Z, Xu Z. Chitosan nanoparticles inhibit the growth of human hepatocellular carcinoma xenografts through an antiangiogenic mechanism. Anticancer Res. 2009;29(12):5103–5109.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.