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Original Research

Elaboration and characterization of curcumin-loaded Tri-CL-mPEG three-arm copolymeric nanoparticles by a microchannel technology

, , , , , , , , & show all
Pages 4683-4695 | Published online: 02 Jul 2019

References

  • Li M, Gao M, Fu Y, et al. Acetal-linked polymeric prodrug micelles for enhanced curcumin delivery. Colloids Surf B Biointerfaces. 2016;140:11–18. doi:10.1016/j.colsurfb.2015.12.02526731193
  • Kant V, Gopal A, Pathak NN, Kumar P, Tandan SK, Kumar D. Antioxidant and anti-inflammatory potential of curcumin accelerated the cutaneous wound healing in streptozotocin-induced diabetic rats. Int Immunopharmacol. 2014;20(2):322–330. doi:10.1016/j.intimp.2014.03.00924675438
  • Krausz AE, Adler BL, Cabral V, et al. Curcumin-encapsulated nanoparticles as innovative antimicrobial and wound healing agent. Nanomedicine. 2015;11(1):195–206. doi:10.1016/j.nano.2014.09.00425240595
  • Hussain Z, Thu HE, Amjad MW, Hussain F, Ahmed TA, Khan S. Exploring recent developments to improve antioxidant, anti-inflammatory and antimicrobial efficacy of curcumin: a review of new trends and future perspectives. Mat Sci Eng C-Mater. 2017;77:1316–1326. doi:10.1016/j.msec.2017.03.226
  • Chereddy KK, Coco R, Memvanga PB, et al. Combined effect of PLGA and curcumin on wound healing activity. J Control Release. 2013;171(2):208–215. doi:10.1016/j.jconrel.2013.07.01523891622
  • Hussain Z, Thu HE, Ng SF, Khan S, Katas H. Nanoencapsulation, an efficient and promising approach to maximize wound healing efficacy of curcumin: A review of new trends and state-of-the-art. Colloids Surf B Biointerfaces. 2017;150:223–241. doi:10.1016/j.colsurfb.2016.11.03627918967
  • Das KK, Razzaghi-Asl N, Tikare SN, et al. Hypoglycemic activity of curcumin synthetic analogues in alloxan-induced diabetic rats. J Enzyme Inhib Med Chem. 2016;31(1):99–105. doi:10.3109/14756366.2015.100406125683079
  • Dong JL, Tao L, Abourehab MAS, Hussain Z. Design and development of novel hyaluronate-modified nanoparticles for combo-delivery of curcumin and alendronate: fabrication, characterization, and cellular and molecular evidences of enhanced bone regeneration. Int J Biol Macromol. 2018;116:1268–1281. doi:10.1016/j.ijbiomac.2018.05.11629782984
  • Gaikwad D, Shewale R, Patil V, Mali D, Gaikwad U, Jadhav N. Enhancement in in vitro anti-angiogenesis activity and cytotoxicity in lung cancer cell by pectin-PVP based curcumin particulates. Int J Biol Macromol. 2017;104(Pt A):656–664. doi:10.1016/j.ijbiomac.2017.05.17028602990
  • Khan S, Imran M, Butt TT, et al. Curcumin based nanomedicines as efficient nanoplatform for treatment of cancer: new developments in reversing cancer drug resistance, rapid internalization, and improved anticancer efficacy. Trends Food Sci Technol. 2018;80:8–22. doi:10.1016/j.tifs.2018.07.026
  • Ravichandiran V, Masilamani K, Senthilnathan B, Maheshwaran A, Wong TW, Roy P. Quercetin-decorated curcumin liposome design for cancer therapy: in-vitro and in-vivo studies. Curr Drug Deliv. 2017;14(8):1053–1059. doi:10.2174/156720181366616082910045327572089
  • Gupta SC, Patchva S, Aggarwal BB. Therapeutic roles of curcumin: lessons learned from clinical trials. Aaps J. 2013;15(1):195–218. doi:10.1208/s12248-012-9432-823143785
  • Heger M, van Golen RF, Broekgaarden M, Michel MC. The molecular basis for the pharmacokinetics and pharmacodynamics of curcumin and its metabolites in relation to cancer. Pharmacol Rev. 2014;66(1):222–307. doi:10.1124/pr.111.00511624368738
  • Jiang K, Shen M, Xu W. Arginine, glycine, aspartic acid peptide-modified paclitaxel and curcumin co-loaded liposome for the treatment of lung cancer: in vitro/vivo evaluation. Int J Nanomedicine. 2018;13:2561–2569. doi:10.2147/IJN.S17762729731631
  • Guo R, Lan Y, Xue W, et al. Collagen-cellulose nanocrystal scaffolds containing curcumin-loaded microspheres on infected full-thickness burns repair. J Tissue Eng Regen Med. 2017;11(12):3544–3555. doi:10.1002/term.227228326684
  • Rao KM, Kumar A, Suneetha M, Han SS. pH and near-infrared active; chitosan-coated halloysite nanotubes loaded with curcumin-Au hybrid nanoparticles for cancer drug delivery. Int J Biol Macromol. 2018;112:119–125. doi:10.1016/j.ijbiomac.2018.01.16329378273
  • Cai M, Cao J, Wu Z, Cheng F, Chen Y, Luo X. In vitro and in vivo anti-tumor efficiency comparison of phosphorylcholine micelles with PEG micelles. Colloids Surf B Biointerfaces. 2017;157:268–279. doi:10.1016/j.colsurfb.2017.05.05328601755
  • Fang XB, Zhang JM, Xie X, et al. pH-sensitive micelles based on acid-labile pluronic F68-curcumin conjugates for improved tumor intracellular drug delivery. Int J Pharm. 2016;502(1–2):28–37. doi:10.1016/j.ijpharm.2016.02.03726784981
  • Duan R, Li C, Wang F, Yangi JC. Polymer-lipid hybrid nanoparticles-based paclitaxel and etoposide combinations for the synergistic anticancer efficacy in osteosarcoma. Colloids Surf B Biointerfaces. 2017;159:880–887. doi:10.1016/j.colsurfb.2017.08.01928892872
  • Nosrati H, Salehiabar M, Attari E, Davaran S, Danafar H, Manjili HK. Green and one-pot surface coating of iron oxide magnetic nanoparticles with natural amino acids and biocompatibility investigation. Appl Organomet Chem. 2018;32(2). doi:10.1002/aoc.4069
  • Nosrati H, Rashidi N, Danafar H, Manjili HK. Anticancer activity of tamoxifen loaded tyrosine decorated biocompatible Fe3O4 magnetic nanoparticles against breast cancer cell lines. J Inorg Organomet P. 2018;28(3):1178–1186. doi:10.1007/s10904-017-0758-7
  • Guo F, Wu J, Wu W, et al. PEGylated self-assembled enzyme-responsive nanoparticles for effective targeted therapy against lung tumors. J Nanobiotechno. 2018;16(1):57. doi:10.1186/s12951-018-0384-8
  • Zuo C, Peng J, Cong Y, et al. Fabrication of supramolecular star-shaped amphiphilic copolymers for ROS-triggered drug release. J Colloid Interface Sci. 2018;514:122–131. doi:10.1016/j.jcis.2017.12.02229248814
  • Shi C, Guo X, Qu Q, Tang Z, Wang Y, Zhou S. Actively targeted delivery of anticancer drug to tumor cells by redox-responsive star-shaped micelles. Biomaterials. 2014;35(30):8711–8722. doi:10.1016/j.biomaterials.2014.01.02625002267
  • Feng R, Deng P, Song Z, et al. Glycyrrhetinic acid-modified PEG-PCL copolymeric micelles for the delivery of curcumin. React Funct Polym. 2017;111:30–37. doi:10.1016/j.reactfunctpolym.2016.12.011
  • Danafar H. Applications of copolymeric nanoparticles in drug delivery systems. Drug Res (Stuttg). 2016;66(10):506–519. doi:10.1055/s-0042-10986527403578
  • Grossen P, Witzigmann D, Sieber S, Huwyler J. PEG-PCL-based nanomedicines: A biodegradable drug delivery system and its application. J Control Release. 2017;260:46–60. doi:10.1016/j.jconrel.2017.05.02828536049
  • Gharebaghi F, Dalali N, Ahmadi E, Danafar H. Preparation of wormlike polymeric nanoparticles coated with silica for delivery of methotrexate and evaluation of anticancer activity against MCF7 cells. J Biomater Appl. 2017;31(9):1305–1316. doi:10.1177/088532821769806328447548
  • Suk JS, Xu Q, Kim N, Hanes J, Ensign LM. PEGylation as a strategy for improving nanoparticle-based drug and gene delivery. Adv Drug Deliv Rev. 2016;99(Pt A):28–51. doi:10.1016/j.addr.2015.09.01226456916
  • Kostag M, Kohler S, Liebert T, Heinze T. Pure cellulose nanoparticles from trimethylsilyl cellulose. Macromol Sy. 2010;294-Ii:96–106. doi:10.1002/masy.200900095
  • Deshmukh R, Mujumdar A, Naik J. Production of aceclofenac-loaded sustained release micro/nanoparticles using pressure homogenization and spray drying. Dry Technol. 2018;36(4):459–467. doi:10.1080/07373937.2017.1341418
  • Nuchuchua O, Nejadnik MR, Goulooze SC, Ljeskovic NJ, Every HA, Jiskoot W. Characterization of drug delivery particles, produced by supercritical carbon dioxide technologies. J Supercrit Fluid. 2017;128:244–262. doi:10.1016/j.supflu.2017.06.002
  • Deng R, Yang L, Bain CD. Combining inkjet printing with emulsion solvent evaporation to pattern polymeric particles. ACS Appl Mater Interfaces. 2018;10(15):12317–12322. doi:10.1021/acsami.8b0201729595241
  • Guo F, Guo D, Zhang W, et al. Preparation of curcumin-loaded PCL-PEG-PCL triblock copolymeric nanoparticles by a microchannel technology. Eur J Pharm Sci. 2017;99:328–336. doi:10.1016/j.ejps.2017.01.00128062259
  • Maglio G, Nese G, Nuzzo M, Palumbo R. Synthesis and characterization of star-shaped diblock poly(epsilon-caprolactone)/poly(ethylene oxide) copolymers. Macromol Rapid Comm. 2004;25(12):1139–1144. doi:10.1002/marc.200400113
  • Yun JX, Lei QA, Zhang SH, Shen SC, Yao KJ. Slug flow characteristics of gas-miscible liquids in a rectangular microchannel with cross and T-shaped junctions. Chem Eng Sci. 2010;65(18):5256–5263. doi:10.1016/j.ces.2010.06.031
  • Eatemadi A, Daraee H, Aiyelabegan HT, Negahdari B, Rajeian B, Zarghami N. Synthesis and characterization of Chrysin-loaded PCL-PEG-PCL nanoparticle and its effect on breast cancer cell line. Biomed Pharmacother. 2016;84:1915–1922.27847208
  • Kumar A, Lale SV, Naz F, Choudhary V, Koul V. Synthesis and biological evaluation of dual functionalized glutathione sensitive poly(ester-urethane) multiblock polymeric nanoparticles for cancer targeted drug delivery. Polym Chem-Uk. 2015;6(43):7603–7617. doi:10.1039/C5PY00898K
  • Gong CY, Wei XW, Wang XH, et al. Biodegradable self-assembled PEG-PCL-PEG micelles for hydrophobic honokiol delivery: I. Preparation and characterization. Nanotechnology. 2010;21(21). doi:10.1088/0957-4484/21/21/215103.
  • Song L, Shen YY, Hou JW, Lei L, Guo SR, Qian CY. Polymeric micelles for parenteral delivery of curcumin: preparation, characterization and in vitro evaluation. Colloid Surf A. 2011;390(1–3):25–32. doi:10.1016/j.colsurfa.2011.08.031
  • Palange AL, Di Mascolo D, Carallo C, Gnasso A, Decuzzi P. Lipid-polymer nanoparticles encapsulating curcumin for modulating the vascular deposition of breast cancer cells. Nanomedicine. 2014;10(5):991–1002. doi:10.1016/j.nano.2013.12.00124566270
  • Papadopoulou V, Kosmidis K, Vlachou M, Macheras P. On the use of the Weibull function for the discernment of drug release mechanisms. Int J Pharm. 2006;309(1–2):44–50. doi:10.1016/j.ijpharm.2005.11.03716376033
  • Khoee S, Kavand A. Preparation, co-assembling and interfacial crosslinking of photocurable and folate-conjugated amphiphilic block copolymers for controlled and targeted drug delivery: smart armored nanocarriers. Eur J Med Chem. 2014;73:18–29. doi:10.1016/j.ejmech.2013.11.03324374349
  • Wang F, Chen J, Dai W, He Z, Zhai D, Chen W. Pharmacokinetic studies and anticancer activity of curcumin-loaded nanostructured lipid carriers. Acta Pharm. 2017;67(3):357–371. doi:10.1515/acph-2017-002128858837
  • Cabral H, Matsumoto Y, Mizuno K, et al. Accumulation of sub-100 nm polymeric micelles in poorly permeable tumours depends on size. Nat Nanotechnol. 2011;6(12):815–823. doi:10.1038/nnano.2011.16622020122
  • Tsai YM, Chien CF, Lin LC, Tsai TH. Curcumin and its nano-formulation: the kinetics of tissue distribution and blood-brain barrier penetration. Int J Pharm. 2011;416(1):331–338. doi:10.1016/j.ijpharm.2011.06.03021729743