3,405
Views
21
CrossRef citations to date
0
Altmetric
Critical Review

Application of traditional Chinese medicine preparation in targeting drug delivery system

, , , , , , , & show all
Pages 258-265 | Received 17 Jan 2014, Accepted 05 Feb 2014, Published online: 10 Mar 2014

References

  • Allen TM, Cullis PR. (2004). Drug delivery systems: entering the mainstream. Science 303:1818–22
  • Allen TM, Moase EH. (1996). Therapeutic opportunities for targeted liposomal drug delivery. Adv Drug Deliver Rev 21:117–33
  • Arruebo M, Pacheco RF, Ibarra MR, Santamaria J. (2007). Magnetic nanoparticles for drug delivery. Nano Today 2:22–32
  • Bakowsky H, Richter T, Kneuer C, et al. (2008). Adhesion characteristics and stability assesement of lectin-modified liposomes for site-specific drug delivery. Biochim Biophys Acta 1778:242–9
  • Bareford LM, Swaan PW. (2007). Endocytic mechanism for targeted drug delivery. Adv Drug Deliver Rev 59:748–58
  • Botella P, Abasolo I, Fernández Y, et al. (2011). Surface-modified silica nanoparticles for tumor-targeted delivery of camptothecin and its biological evaluation. J Contr Rel 156:246–57
  • Brannon-Peppas L, Blanchette JO. (2004). Nanoparticles and targeted systems for cancer therapy. Adv Drug Deliver Rev 56:1649–59
  • Bromberg L, Temchenko M, Hatton TA. (2003). Smart microgel studies polyelectrolyte and drug-absorbing properties of microgels from polyether-modified poly(acrylic acid). Langmuir 19:8675–84
  • Cai YZ, Sun M, Xing J, et al. (2006). Structure-radical scavenging activity relationship of phenolic compounds from traditional Chinese medicinal plants. Life Sci 78:2872–88
  • Cao ZH, Tong R, Mishra A, et al. (2009). Reversible cell-specific drug delivery with aptamer-functionalized liposomes. Drug Deliver 48:6494–8
  • Chang YC, Chu IM. (2008). Methoxy poly(ethylene glycol)-b-poly(valerolactone) diblock polymeric micelles for enhanced encapsulation and protection of camptothecin. Eur Polym J 44:3922–30
  • Chen L, Chen XM. (2003). Research development of targeted drug delivery system in China. J Pedia Pharm 9:10–12
  • Chen X, Wang XH, Wang YS, et al. (2010). Improved tumor-targeting drug delivery and therapeutic efficacy by cationic liposome modified with truncated bFGF peptide. J Contr Rel 145:17–25
  • Cheng JJ, Teply BA, Sherifi I, et al. (2007). Formulation of functionalized PLGA-PEG nanoparticles for in vivo targeted drug delivery. Biomaterials 28:869–76
  • Chertok B, Moffat BA, David AE, et al. (2008). Iron oxide nanoparticles as a drug delivery vehicle for MRI monitored magnetic targeting of brain tumors. Biomaterials 29:487–96
  • Chilkoti A, Dreher MR, Meyer DE, Raucher D. (2002). Targeted drug delivery by thermally responsive polymers. Adv Drug Deliver Rev 54:613–30
  • Chiu J, Yau T, Epstein RJ. (2009). Complications of traditional Chinese/herbal medicine (TCM)-a guide for perplexed oncologists and other cancer caregivers. Support Care Cancer 17:231–40
  • Dai M, Xu X, Song J, et al. (2011). Preparation of camptothecin-loaded PCEC microspheres for the treatment of colorectal peritoneal carcinomatosis and tumor growth in mice. Cancer Lett 312:189–96
  • Devarajan V, Ravichandran V. (2011). Nanoemulsion: as modified drug delivery tool. Int J Comp Pharm 4:1–6
  • Dong YM, Lu BB, Zhang XL, et al. (2010). Cucurbitacin E, a tetracyclic triterpenes compound from chinese medicine, inhibits tumor angiogenesis through VEGFR2-mediated Jak2-STAT3 signaling pathway. Carcinogenesis 31:2097–104
  • Drasar P, Moravcova J. (2004). Recent advance in analysis of Chinese medical plants and traditional medicines. J Chromatogr B 812:3–21
  • Efferth T, Fu YJ, Zu YG, et al. (2007). Molecular target-guided tumor therapy with natural products derived from traditional chinese medicine. Curr Med Chem 14:2024–32
  • Fu LW, Zhang YM, Liang YJ, et al. (2002). The multidrug resistance of tumor cells was reversed by tetrandrine in vitro and in xenografts derived from human breast adenocarcinoma MCF-7/adr cells. Eur J Cancer 38:418–26
  • Ganta S, Devalapally H, Shahiwala A, Amiji M. (2008). A review of stimuli-responsive nanocarriers for drug and gene delivery. J Contr Rel 126:187–204
  • Graziose R, Lila MA, Raskin I. (2010). Merging traditional Chinese medicine with modern drug discovery technologies to find novel drugs and functional foods. Curr Drug Discover Tech 7:2–12
  • Hanna N, Bunn PA, Langer C, et al. (2006). Randomized phase III trial comparing irinotecan/cisplatin with etoposide/cisplatin in patients with previously untreated extensive stage disease small-cell lung cancer. J Clin Oncol 24:2038–43
  • Hatefi A, Amsden B. (2002). Camptothecin delivery methods. Pharm Res 19:1389–99
  • He WY, Li Y, Xue CX, et al. (2005). Effect of Chinese medicine alpinetin on the structure of human serum albumin. Bioorgan Med Chem 13:1837–45
  • Homhuan A, Kogure K, Akaza H, et al. (2007). New packaging method of mycobacterial cell wall using octaarginine-modified liposomes: enhanced uptake by and immunostimulatory activity of dendritic cells. J Contr Rel 120:60–9
  • Howes MJR, Houghton PJ. (2003). Plants used in Chinese and Indian traditional medicine for improvement of memory and cognitive function. Pharmacol Biochem Be 75:513–27
  • Hua MY, Yang HW, Chuang CK, et al. (2010). Magnetic-nanoparticle-modified paclitaxel for targeted therapy for prostate cancer. Biomaterials 31:7355–63
  • Johannsen M, Thiesen B, Gneveckow U, et al. (2006). Thermotherapy using magnetic nanoparticles combined with external radiation in an orthotopic rat model of prostate cancer. Prostate 66:97–104
  • Kaneda Y. (2000). Virosomes: evolution of the liposome as a targeted drug delivery system. Adv Drug Deliver Rev 43:197–205
  • Krishnaiah YSR, Bhaskar Reddy PR, Satyanarayana V, Karthikeyan RS. (2002). Studies on the development of oral colon targeted drug delivery systems for metronidazole in the treatment of amoebiasis. Int J Pharm 236:43–55
  • Li DC, Zhong XK, Zeng ZP, et al. (2009a). Application of targeted drug delivery system in Chinese medicine. J Contr Rel 138:103–12
  • Li F, Wu H, Zhang H, et al. (2009b). Antitumor drug paclitaxel-loaded pH-sensitive nanoparticles targeting tumor extracellular pH. Carbohyd Polym 77:773–8
  • Li HL, Zhao XB, Ma YK, et al. (2009c). Enhancement of gastrointestinal absorption of quercetin by solid lipid nanoparticles. J Contr Rel 133:238–44
  • Li WL, Zheng HC, Bukuru J, Kimpe ND. (2004). Natural medicine used in the traditional Chinese medical system for therapy of diabetes mellitus. J Ethnopharmacol 92:1–21
  • Li YC, Dong L, Jia A, et al. (2006). Preparation and characterization of solid lipid nanoparticles loaded traditional Chinese medicine. Int J Biol Macromol 38:296–9
  • Li YP, Pan SR, Zhang W, Du Z. (2009d). Novel thermo-sensitive core-shell nanoparticles for targeted paclitaxel delivery. Nanotech 20:1–12
  • Liang HF, Chen CT, Chen SC, et al. (2006). Paclitaxel-loaded poly(γ-glutamic acid)-poly(lactide) nanoparticles as a targeted drug delivery system for the treatment of liver cancer. Biomaterials 27:2051–9
  • Lin AH, Li HY, Liu YM, Qiu XH. (2007). Preparation and release characteristics of berberine chitosan nanoparticles in vitro. China Pharm 18:755–6
  • Liu YY, Miyoshi H, Nakamura M. (2007). Nanomedicine for drug delivery and imaging: a promising avenue for cancer therapy and diagnosis using targeted functional nanoparticles. Int J Cancer 120:2527–37
  • Liu BR, Yang M, Li RT, et al. (2008). The antitumor effect of novel decetaxel-loaded thermosensitive micelles. Eur J Pharm Biopharm 69:527–34
  • Lübbe AS, Alexiou C, Bergemann C. (2001). Clinical applications of magnetic drug targeting. J Surg Res 95:200–6
  • Manjappa AS, Chaudhari KR, Venkataraju MP, et al. (2011). Antibody derivatization and conjugation strategies: application in preparation of stealth immunoliposomes to target chemotherapeutics to tumor. J Contr Rel 150:2–22
  • Mccarron PA, Marouf WM, Quinn DJ, et al. (2008). Antibody targeting of camptothecin-loaded PLGA nanoparticles to tumor cells. Bioconjugate Chem 19:1561–9
  • Min KH, Park K, Kim YS, et al. (2008). Hydrophobically modified glycol chitosan nanoparticles-encapsulated camptothecin enhance the drug stability and tumor targeting in cancer therapy. J Control Rel 127:208–18
  • Nasongkla N, Bey E, Ren JM, et al. (2006). Multifunctional polymeric micelles as cancer-targeted, MRI-ultrasensitive drug delivery systems. Nano Lett 6:2427–30
  • Neuberger T, Schopf B, Hofmann H, et al. (2005). Superparamagnetic nanoparticles for biomedical applications: possibilities and limitations of a new drug delivery system. J Mag Mag Mater 293:483–96
  • Normile D. (2003). The new face of traditional Chinese medicine. Science 299:188–90
  • Paciotti GF, Kingston DGI, Tamarkin L. (2006). Colloidal gold nanoparticles: a novel nanoparticles platform for developing multifunctional tumor-targeted drug delivery vector. Drug Develop Res 67:47–54
  • Panyam J, Labhasetwar V. (2003). Biodegradable nanoparticles for drug and gene delivery to cells and tissue. Adv Drug Deliver Rev 55:329–47
  • Parekh HS, Liu G, Wei MQ. (2009). A new dawn for the use of traditional Chinese medicine in cancer therapy. Mol Cancer 8:1–8
  • Patri AK, Kukowska-Latallo JF, Baker JR Jr. (2005). Targeted drug delivery with dendrimers: comparison of the release kinetics of covalently conjugated drug and non-covalent drug inclusion complex. Adv Drug Deliver Rev 57:2203–14
  • Peer D, Karp JM, Hong S, et al. (2007). Nanocarriers as an emerging platform for cancer therapy. Nature Nanotech 2:751–60
  • Peppas LB, Blanchette JO. (2004). Nanoparticles and targeted system for cancer therapy. Adv Drug Deliver Rev 56:1649–59
  • Potineni A, Lynn DM, Langer R, Amiji MM. (2003). Poly(ethylene oxide)-modified poly(β-amino ester) nanoparticles as a pH-sensitive biodegradable system for paclitaxel delivery. J Contr Rel 86:223–34
  • Qi XL, Wang LS, Zhu JB, et al. (2011). Self-double-emulsifying drug delivery system (SDEDDS): a new way for oral delivery of drugs with high solubility and low permeability. Int J Pharm 409:245–51
  • Sayed IHE, Huang XH, Sayed MAE. (2006). Selective laser photo-thermal therapy of epithelial carcinoma using anti-EGFR antibody conjugated gold nanoparticles. Cancer Lett 239:129–35
  • Shen Y, Fang XL. (2004). Panax notoginseng liposomes: physiological compatibility and effects on cardio-cerebrovascular diseases study. Chinese J Clin Pharm 35:745–9
  • Shen ZY, Wei W, Zhao YJ, et al. (2008). Thermosensitive polymer-conjugated albumin nanospheres as thermal targeting anti-cancer drug carrier. Eur J Pharm Sci 35:271–82
  • Shen J, Wang Y, Ping QN, et al. (2009). Mucoadhesive effect of thiolated PEG strearate and its modified NLC for ocular drug delivery. J Contr Rel 137:217–23
  • Stickel F, Schuppan D. (2007). Herbal medicine in the treatment of liver diseases. Digest Liver Dis 39:293–304
  • Sudimack JBA, Lee RJ. (2000). Targeted drug delivery via the folate receptor. Adv Drug Deliver Rev 41:147–62
  • Sutton D, Nasongkla N, Blanco E, Gao JM. (2007). Functionalized mecellar systems for cancer targeted drug delivery. Pharm Res 24:1029–46
  • Tamilvanan S. (2009). Formulation of multifunctional oil-in-water nanosized emulsion for active and passive targeting of drugs to otherwise inaccessible internal organs of the human body. Int J Pharm 381:62–76
  • Tian Q, Zhang CN, Wang XH, et al. (2010). Glycyrrhetinic acid-modified chitosan/poly(ethylene glycol) nanoparticles for liver-targeted delivery. Biomaterials 31:4748–56
  • Utreja P, Jain S, Tiwary AK. (2010). Novel drug delivery systems for sustained and targeted delivery cancer drugs: current status and future prospects. Curr Drug Deliver 7:152–61
  • Vasir JK, Tambwekar K, Garg S. (2003). Bioadhesive microspheres as a controlled drug delivery system. Int J Pharm 255:13–32
  • Visaria RK, Griffin RJ, Williams BW. (2006). Enhancement of tumor thermal therapy using gold nanoparticles-assisted tumor necrosis factor-α delivery. Mol Cancer Ther 5:1014–20
  • Wang D, Miller S, Sima M, et al. (2003). Synthesis and evaluation of water-soluble polymeric bone-targeted drug delivery systems. Bioconjugate Chem 14:853–9
  • Wang L, Cai BC, Li WD, Deng XK. (2006). Preparation and quality evaluatin of brucine long-circulating liposomes. Chinese Pharm J 41:1397–400
  • Wang K, Xing JF, Li XY, et al. (2012). Fabrication of novel magnetic nanoparticles-coated P(styrene-itaconic acid-divinylbenzene) microspheres. Carbohyd Polym 87:2712–17
  • Weber ML. (2010). Targeting apoptosis pathways in cancer by Chinese medicine. Cancer Lett 332:304–12
  • Werle M, Takeuchi H, Schnürch AB. (2009). Modified chitosans for oral drug delivery. J Pharm Sci 98:1643–56
  • Xie ZH, Xiong YK. (2008). Advance on the research of targeted drug delivery system for traditional Chinese medicine. Chinese Arch Chinese Med 26:562–4
  • Xiong FL, Chen HB, Chang XL, et al. (2005). Research progress of triptolide-loaded nanoparticles delivery system. Proceedings of the IEEE; 2005
  • Yang WX. (2004). Research progress in slow and controlled release agents of tranditional Chinese medicine. Laser J 25:94–5
  • Yang M, Ding YT, Zhang LY, et al. (2007). Novel thermosensitive polymeric micelles for docetaxel delivery. J Biomed Mater Res 81A:847–57
  • Yang XG, Li LB, Wang YX, Tan YB. (2009). Preparation, pharmacokinetics and tissue distribution of micelles reverse thermo-responsive polymers. Int J Pharm 370:210–15
  • Yue PF, Yuan HL, Yang M, et al. (2008). Preparation, characterization, and pharmacokinetic evaluation of puerarin submicron emulsion. J Pharm Sci Tech 62:32–45

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.