A Review Paper on Novel Lipid Nanoparticles for Enhanced Bioavailability of Bioactive Compounds in Breast Cancer Cell Lines

Volume: 10 | Issue: 01 | Year 2024 | Subscription
International Journal of Composite and Constituent Materials
Received Date: 07/26/2024
Acceptance Date: 08/25/2024
Published On: 2024-10-03
First Page:
Last Page:

Journal Menu

By: Jecinta Wanjiru Ndungu

Research Scientist, Department of Centre for Traditional Medicine and Drug Research (CTMDR), Kenya Medical Research Institute (KEMRI), Nairobi, Kenya.

Abstract

Most bioactive compounds from natural products are heavily relied on drug development due to their biological, chemical and pharmacological properties. Some compounds exhibiting anticancer properties have also been reported. However, they present a challenge in achieving the effective absorption and delivery in the body. This is due to minimal bioavailability, fluctuation of plasma drug concentration, low tolerance, first-pass effect which leads to less desired efficacy. Therefore, this calls for an innovative drug delivery means to overcome these medical challenges. Drug delivery strategies do utilize these elegant bioactive compounds because they are able to cross via systems barriers and deliver the compound to the cells or tissues. Lipid loaded nanoparticles, being a promising drug delivery system can protect therapeutics, such as hydrophobic, hydrophilic and amphiphilic compounds from unfavorable conditions such as pH and enzyme degradation and oxidation. The lipids in advance form influence the fate and the transport of drug in gastrointestinal tract through various mechanisms such as enhanced dissolution kinetics, triggers drug precipitation and enhance drug permeation when the lipid emulsion deplete. They also enhance pharmacokinetics such as increased stability, lengthening half-life, clearance and reduced side effects. They ensure sufficient solubility of drugs that have higher systemic toxicity, drug resistance possibility and poor targeting when used as free drugs thus improved bioavailability. This review aims to explore different lipid delivery systems of medicinal plant extracts, essential oils and bioactive compounds that deliver bioactive compounds from medicinal plants on breast cancer cell lines that aid in improving their bioavailability and thus improved efficacy.

Keywords: Therapeutic agents, target sites, solubility, bioavailability, solid lipid nanoparticles, drug delivery system

Loading

Citation:

How to cite this article: Jecinta Wanjiru Ndungu, A Review Paper on Novel Lipid Nanoparticles for Enhanced Bioavailability of Bioactive Compounds in Breast Cancer Cell Lines. International Journal of Composite and Constituent Materials. 2024; 10(01): -p.

How to cite this URL: Jecinta Wanjiru Ndungu, A Review Paper on Novel Lipid Nanoparticles for Enhanced Bioavailability of Bioactive Compounds in Breast Cancer Cell Lines. International Journal of Composite and Constituent Materials. 2024; 10(01): -p. Available from:https://journalspub.com/publication/ijccm-v10i01-10906/

Refrences:

  1. Chen Z, Shi T, Zhang L, Zhu P, Deng M, Huang C, et al. Mammalian drug efflux transporters of the ATP binding cassette (ABC) family in multidrug resistance: A review of the past decade. Cancer Lett. 2016;370(1):153–64.
  2. Lehmann BD, Jovanović B, Chen XI, Estrada MV, Johnson KN, Shyr Y, et al. Refinement of triple-negative breast cancer molecular subtypes: implications for neoadjuvant chemotherapy selection. PLoS One. 2016;11(6).
  3. Nikbakht A, Kafi M. The history of traditional medicine and herbal plants in Iran. In: VIII International People-Plant Symposium on Exploring Therapeutic Powers of Flowers, Greenery and Nature. 2004 Jun;790:255–8.
  4. Yallapu MM, Jaggi M, Chauhan SC. Curcumin nanoformulations: A future nanomedicine for cancer. Drug Discov Today. 2012;17(1-2):71–80.
  5. Yallapu MM, Jaggi M, Chauhan SC. Curcumin nanomedicine: A road to cancer therapeutics. Curr Pharm Des. 2013;19(11):1994–2010.
  6. Shrestha H, Bala R, Arora S. Lipid-based drug delivery systems. J Pharm. 2014;2014(1):801820.
  7. da Rocha MCO, da Silva PB, Radicchi MA, Andrade BYG, de Oliveira JV, Venus T, et al. Docetaxel-loaded solid lipid nanoparticles prevent tumor growth and lung metastasis of 4T1 murine mammary carcinoma cells. J Nanobiotechnology. 2020;18:1–20.
  8. Aldayel TS, Badran M, Alomrani H, AlFaris NA, Altamimi Z, Alqahtani S, et al. Chitosan-coated solid lipid nanoparticles as an efficient avenue for boosted biological activities of Aloe perryi: Antioxidant, antibacterial, and anticancer potential. Molecules. 2023;28(8):3569.
  9. Aldayel TS, Badran M, Alomrani H, AlFaris NA, Altamimi Z, Alqahtani S, et al. Chitosan-coated solid lipid nanoparticles as an efficient avenue for boosted biological activities of Aloe perryi: antioxidant, antibacterial, and anticancer potential. Molecules. 2023;28(8):3569.
  10. Sezer CV. An in vitro assessment of the cytotoxic and apoptotic potency of silymarin and silymarin loaded solid lipid nanoparticles on lung and breast cancer cells. Pak. J. Zool.2021;53(4):1–9.
  11. Afarin R, Ahmadpour F, Hatami M, Monjezi S, Igder S. Combination of etoposide and quercetin-loaded solid lipid nanoparticles potentiates apoptotic effects on MDA-MB-231 breast cancer cells. Heliyon. 2024.
  12. Chirio D, Peira E, Dianzani C, Muntoni E, Gigliotti CL, Ferrara B, et al. Development of solid lipid nanoparticles by cold dilution of microemulsions: curcumin loading, preliminary in vitro studies, and biodistribution. Nanomaterials. 2019;9(2):230.
  13. Akhlaghi M, Taebpour M, Lotfabadi NN, Naghib SM, Jalili N, Farahmand L, et al. Synthesis and characterization of smart stimuli-responsive herbal drug-encapsulated nanoniosome particles for efficient treatment of breast cancer. Nanotechnol Rev. 2022;11(1):1364–85.
  14. Dawoud M. Chitosan coated solid lipid nanoparticles as promising carriers for docetaxel. J Drug Deliv Sci Technol. 2021;62:102409.
  15. Kelidari HR, Moemenbellah-Fard MD, Morteza-Semnani K, Amoozegar F, Shahriari-Namadi M, Saeedi M, Osanloo M. Solid-lipid nanoparticles (SLNs) containing Zataria multiflora essential oil with no cytotoxicity and potent repellent activity against Anopheles stephensi. J Parasit Dis. 2021;45:101–8.
  16. Pawar VK, Gupta S, Singh Y, Meher JG, Sharma K, Singh P, et al. Pluronic F-127 stabilized docetaxel nanocrystals improve apoptosis by mitochondrial depolarization in breast cancer cells: pharmacokinetics and toxicity assessment. J Biomed Nanotechnol. 2015;11(10):1747–63.
  17. Hatami M, Kouchak M, Kheirollah A, Khorsandi L, Rashidi M. Effective inhibition of breast cancer stem cell properties by quercetin-loaded solid lipid nanoparticles via reduction of Smad2/Smad3 phosphorylation and β-catenin signaling pathway in triple-negative breast cancer. Biochem Biophys Res Commun. 2023;664:69–76.
  18. Dousti M, Sari S, Saffari M, Kelidari H, Asare-Addo K, Nokhodchi A. Loading Pistacia atlantica essential oil in solid lipid nanoparticles and its effect on apoptosis of breast cancer cell line MDA-MB-231. Pharm Dev Technol. 2022;27(1):63–71.
  19. Kostrzewa T, Nowak I, Feliczak-Guzik A, Drzeżdżon J, Jacewicz D, Górska-Ponikowska M, Kuban-Jankowska A. Encapsulated oxovanadium (IV) and dioxovanadium (V) complexes into solid lipid nanoparticles increase cytotoxicity against MDA-MB-231 cell line. Int J Nanomedicine. 2023;2507–23.
  20. Bose S, Du Y, Takhistov P, Michniak-Kohn B. Formulation optimization and topical delivery of quercetin from solid lipid based nanosystems. Int J Pharm. 2013;441(1-2):56–66.
  21. Jha S, Prabakaran A, Sahoo RK, Batheja S, Gupta U, Alexander A. Antiproliferative activity of syringic acid-loaded nanostructured lipid carriers against MCF-7 human breast carcinoma cells. J Drug Deliv Sci Technol. 2024;105902.
  22. Karami S, Rostamizadeh K, Shademani N, Parsa M. Synthesis and investigation of the curcumin-loaded magnetic lipid nanoparticles and their cytotoxicity assessment on human breast carcinoma cell line. Jundishapur J Nat Pharm Prod. 2020;15(2).
  23. Maroufi NF, Vahedian V, Mazrakhondi SAM, Kooti W, Khiavy HA, Bazzaz R, et al. Sensitization of MDA-MBA231 breast cancer cell to docetaxel by myricetin loaded into biocompatible lipid nanoparticles via sub-G1 cell cycle arrest mechanism. Naunyn-Schmiedeberg’s Arch Pharmacol. 2020;393:1–11.
  24. Danaei MRM, Dehghankhold M, Ataei S, Hasanzadeh Davarani F, Javanmard R, Dokhani A, et al. Impact of particle size and polydispersity index on the clinical applications of lipidic nanocarrier systems. Pharmaceutics. 2018;10(2):57.
  25. Müller RH, Dingler A, Schneppe T, Gohla S. Large scale production of solid lipid nanoparticles (SLN™) and nanosuspensions (DissoCubes™). In: Handbook of pharmaceutical controlled release technology. 2000;14:359–76.
  26. Hatami M, Kouchak M, Kheirollah A, Khorsandi L, Rashidi M. Effective inhibition of breast cancer stem cell properties by quercetin-loaded solid lipid nanoparticles via reduction of Smad2/Smad3 phosphorylation and β-catenin signaling pathway in triple-negative breast cancer. Biochem Biophys Res Commun. 2023;664:69–76.
  27. Sorasitthiyanukarn FN, Muangnoi C, Gomez CB, Suksamrarn A, Rojsitthisak P, Rojsitthisak P. Potential oral anticancer therapeutic agents of hexahydrocurcumin-encapsulated chitosan nanoparticles against MDA-MB-231 breast cancer cells. Pharmaceutics. 2023;15(2):472.
  28. Awad TS, Moharram HA, Shaltout OE, Asker DYM, Youssef MM. Applications of ultrasound in analysis, processing and quality control of food: A review. Food Res Int. 2012;48(2):410–27.
  29. Melchior S, Codrich M, Gorassini A, Mehn D, Ponti J, Verardo G, et al. Design and advanced characterization of quercetin-loaded nano-liposomes prepared by high-pressure homogenization. Food Chem. 2023;428:136680.
  30. Jasmina H, Džana O, Alisa E, Edina V, Ognjenka R. Preparation of nanoemulsions by high-energy and low-energy emulsification methods. In: CMBEBIH 2017: Proceedings of the International Conference on Medical and Biological Engineering 2017. Singapore: Springer; 2017. p. 317–22.
  31. Han Z, Jiang D, Liu L, Sun L. Low-temperature performance improvement measures for emulsified asphalt cold recycled mixture: A comparative study. J Mater Civ Eng. 2023;35(6):04023108.
  32. Taarji N, Bouhoute M, Kobayashi I, Tominaga K, Isoda H, Nakajima M. Physicochemical stability and in-vitro bioaccessibility of concentrated γ-Oryzanol nanodispersions fabricated by solvent displacement method. Food Chem. 2022;382:132300.
  33. Zhao Y, Ren Z, Shi L, Weng W. Effect of W/O pre-emulsion prepared with different emulsifiers on the physicochemical properties of soy protein isolate-based emulsion films. Food Hydrocoll. 2023;139:108440.
  34. Pedroso-Santana S, Fleitas-Salazar N. Ionotropic gelation method in the synthesis of nanoparticles/microparticles for biomedical purposes. Polym Int. 2020;69(5):443–7.