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Original Article

Hydrophobically modified carboxymethyl chitosan nanoparticles targeted delivery of paclitaxel

, , , &
Pages 104-113 | Received 09 Oct 2009, Accepted 08 Feb 2010, Published online: 01 Apr 2010

References

  • Anderson KE, Stevenson BR, Rogers JA. (1999). Folic acid-PEO-labeled liposomes to improve gastrointestinal absorption of encapsulated agents. J Control Release, 60, 189–198.
  • Andres BS, Martina EK. (1998). Mucoadhesive polymers as platforms for peroral peptide delivery and absorption: synthesis and evaluation of different chitosan–EDTA conjugates. J Control Rel, 50, 215–23.
  • Bellocq NC, Pun SH, Jensen GS, Davis ME. (2003). Transferrin-containing, cyclodextrin polymer-based particles for tumor-targeted gene delivery. Bioconjug Chem, 14, 1122–1132.
  • Campos AM, Diebold Y, Carbalho ELS, Sanchez A, Alonso MJ. (2005). Chitosan nanoparticles as new ocular drug delivery systems: In vitro stability, In vivo fate and cellular toxicity. Pharmal Res, 22, 803–810.
  • Chan P, Kurisawa M, Chung JE, Yang YY. (2007). Synthesis and characterization of chitosan-g-poly(ethylene glycol)-folate as a non-viral carrier for tumor-targeted gene delivery. Biomaterials, 28, 540–549.
  • Chen XG, Park HJ. (2003). Chemical characteristics of O-carboxymethyl chitosans related to the preparation conditions. Carbohydr Polym, 53, 355–359.
  • Elnakat H, Ratnam M. (2004). Distribution, functionality and gene regulation of folate receptor isoforms: implications in targeted therapy. Adv Drug Deliv Rev, 56, 1067–1084.
  • Goren D, Horowitz AT, Tzemach D, Tarshish M, Zalipsky S, Gabizon A. (2000). Nuclear delivery of doxorubicin via folate-targeted liposomes with bypass of multidrug-resistance efflux pump. Clin Cancer Res, 6, 1949–1957.
  • Hilgenbrink AR, Low PS. (2005). Folate receptor-mediated drug targeting: from therapeutics to diagnostics. J Pharm Sci, 94, 2135–2146.
  • Hu FQ, Li YH, Yuan H, Zeng S. (2006a). Novel self-aggregates of chitosan oligosaccharide grafted stearic acid: preparation, characterization and protein association. Pharmazie, 61, 194–198.
  • Hu FQ, Ren GF, Yuan H, Du YZ, Zeng S. (2006b). Shell cross-linked stearic acid grafted chitosan oligosaccharide self-aggregated micelles for controlled release of paclitaxel. Colloids Surf B Biointerfaces, 50, 97–103.
  • Jiang GB, Quan D, Liao K, Wang H. (2006). Novel polymer micelles prepared from chitosan grafted hydrophobic palmitoyl groups for drug delivery. Mol Pharm, 3, 152–160.
  • Justin MS, Ananth A, Jayaganesh VN, Ravi V. (2003). Controlled targeting of liposomal doxorubicin via the folate receptor in vitro. J Control Release, 92, 49–67.
  • Keresztessy Z, Bodnar M, Ber E, Haidu I, Zhang M, Hartmann JF, Minko T, Borbely J. (2009). Self-assembling chitosan/poly glutamic acid nanoparticles for targeted drug delivery. Colloid & Polymer Science, 287, 759–765.
  • Kumar MN, Muzzarelli RA, Muzzarelli C, Sashiwa H, Domb AJ. (2004). Chitosan chemistry and pharmaceutical perspectives. Chem Rev, 104, 6017–6084.
  • Lavertu M, Méthot S, Tran-Khanh N, Buschmann MD. (2006). High efficiency gene transfer using chitosan/DNA nanoparticles with specific combinations of molecular weight and degree of deacetylation. Biomaterials, 27, 4815–4824.
  • Lee RJ, Low PS. (1994). Delivery of liposomes into cultured KB cells via folate receptor-mediated endocytosis. J Biol Chem, 269, 3198–3204.
  • Licciardi M, Giammona G, Du J, Armes SP, Tang Y, Lewis AL. (2006). New folate-functionalized biocompatible block copolymer micelles as potential anti-cancer drug delivery systems. Polymer, 47, 2946–55.
  • Liu TY, Chen SY, Lin YL, Liu DM. (2006). Synthesis and characterization of amphiphatic carboxymethyl-hexanoyl chitosan hydrogel: water-retention ability and drug encapsulation. Langmuir, 22, 9740–9745.
  • Low PS, Antony AC. (2004). Folate receptor-targeted drugs for cancer and inflammatory diseases. Adv Drug Deliv Rev, 56, 1055–1058.
  • MacLaughlin FC, Mumper RJ, Wang J, Tagliaferri JM, Gill I, Hinchcliffe M, Rolland AP. (1998). Chitosan and depolymerized chitosan oligomers as condensing carriers for in vivo plasmid delivery. J Control Release, 56, 259–272.
  • Mohapatra S, Mallick SK, Maiti TK, Ghosh SK, Pramanik P. (2007). Synthesis of highly stable folic acid conjugated magnetite nanoparticles for targeting cancer cells. Nanotechnology, 18, 385102–385111.
  • Ogris M, Wagner E. (2002). Targeting tumors with non-viral gene delivery systems. Drug Discov Today, 7, 479–485.
  • Park EK, Kim SY, Lee SB, Lee YM. (2005). Folate-conjugated methoxy poly(ethylene glycol)/poly(epsilon-caprolactone) amphiphilic block copolymeric micelles for tumor-targeted drug delivery. J Control Release, 109, 158–168.
  • Patil YB, Toti US, Khdair A, Ma L, Panyam J. (2009). Single-step surface functionalization of polymeric nanoparticles for targeted drug delivery. Biomaterials, 30, 859–866.
  • Shmeeda H, Mak L, Tzemach D, Astrahan P, Tarshish M, Gabizon A. (2006). Intracellular uptake and intracavitary targeting of folate-conjugated liposomes in a mouse lymphoma model with up-regulated folate receptors. Mol Cancer Ther, 5, 818–824.
  • Sutton D, Nasongkla N, Blanco E, Gao J. 2007. Functionalized micellar systems for cancer targeted drug delivery. Pharm Res, 24, 1029–1046.
  • Weitman SD, Lark RH, Coney LR, Fort DW, Frasca V, Zurawski VR Jr, Kamen BA. (1992). Distribution of the folate receptor GP38 in normal and malignant cell lines and tissues. Cancer Res, 52, 3396–3401.
  • Ye YQ, Yang FL, Hu FQ, Du YZ, Yuan H, Yu HY. (2008). Core-modified chitosan-based polymeric micelles for controlled release of doxorubicin. Int J Pharm, 352, 294–301.
  • Yoshizawa T, Hattori Y, Hakoshima M, Koga K, Maitani Y. (2008). Folate-linked lipid-based nanoparticles for synthetic siRNA delivery in KB tumor xenografts. Eur J Pharm Biopharm, 70, 718–725.

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