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DESCRIPTION (provided by applicant): There is a growing expectation that targeted drug delivery will greatly improve anticancer therapy. To accelerate attaining this goal, we introduced a new synthesis to prepare modular, biodegradable polyester dendritic polymers of various architectures. We showed that a Bow-tie architecture, with PEG on 1 dendron and doxorubicin on the other dendron, was a superior drug carrier in a murine tumor model. We will attach other drugs to the Bow-tie and test the hypothesis that optimal drug release rates are required for therapeutic success. We will also employ recent synthetic advances to devise novel dendritic polymers that: a.) Simultaneously deliver 2 drugs; b.) Have greater payloads and a targeting ligand; c.) Have improved linkages for drug attachment and controlled drug release. Using these novel macromolecules, we will test the following hypotheses related to the factors that contribute to superior anti-cancer therapy of the polymeric drug. In specific aim 1, using the bow-tie polymers, we will test the hypothesis that a specified combination of polymer-drug uptake in the tumor and drug release rate from the polymer is required to optimize anti-tumor activity. We hypothesize that the optimal release rate will differ for each anticancer agent tested: doxorubicin, cis-platinum, a camptothecin derivative, a fluoropyrimidine and paclitaxel. In specific aim 2, we will devise synthetic routes for attaching 2 of the above drugs, at defined ratios, to a single polymer. We will use this "double barrel" polymer to test the hypothesis that the simultaneous delivery to rodent solid tumors of 2 appropriately selected drugs is synergistic compared to the drugs administered together but on different polymers or together as free drugs. In specific aim 3, we will develop a new synthesis of polyester dendronized polymers of high molecular weight and with various architectures. We will examine the influence of molecular weight/architecture on the pharmacokinetic properties and targeting potential. We use the more promising polymer architectures to test the hypothesis that a high number of drugs per targeting ligand are required for effective ligand-mediated drug targeting. Completion of this research will enable a variety of substantially improved targeted therapies and diagnostic imaging applications that can be successfully applied to treat humans with cancer.
期刊论文(11)
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会议论文
DOI: 10.1016/j.jconrel.2005.02.027
发表时间: 2005-07-20
期刊: Journal of controlled release : official journal of the Controlled Release Society
影响因子: --
作者: [Kwon YJ, Standley SM, Goh SL, Fréchet JM]
通讯作者: Fréchet JM
DOI: 10.1021/mp9001206
发表时间: 2009-09
期刊: Molecular pharmaceutics
影响因子: 4.9
作者: [Fox ME, Guillaudeu S, Fréchet JM, Jerger K, Macaraeg N, Szoka FC]
通讯作者: Szoka FC
DOI: 10.1021/ja900062u
发表时间: 2009-03-25
期刊: Journal of the American Chemical Society
影响因子: 15
作者: [Nasongkla N, Chen B, Macaraeg N, Fox ME, Fréchet JM, Szoka FC]
通讯作者: Szoka FC
Soluble polymer carriers for the treatment of cancer: the importance of molecular architecture.
用于治疗癌症的可溶性聚合物载体:分子结构的重要性。
DOI: 10.1021/ar900035f
发表时间: 2009-08-18
期刊: ACCOUNTS OF CHEMICAL RESEARCH
影响因子: 18.3
作者: [Fox, Megan E., Szoka, Francis C., Frechet, Jean M. J.]
通讯作者: Frechet, Jean M. J.
7
    Retargeting FDA Approved Anticancer Liposomal Drugs to Cancer Stem Cells
    • 批准号:
      8833239
    • 项目类别:
    • 资助金额:
      $29.89万
    • 财政年份:
      2015
    • 负责人:
      FRANCIS C. SZOKA
    • 依托单位:
    Syngeneic Macrophages for Personalized Cancer Therapy
    Improving Protein Delivery and Circulation via FcRn Ligands
    Improving Protein Delivery and Circulation via FcRn Ligands
    海外基金