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Novel Nanotechnology Platform for Breast Cancer Treatment

Novel Nanotechnology Platform for Breast Cancer Treatment
用于乳腺癌治疗的新型纳米技术平台
批准号:
9265808
负责人:
EMMANUEL O AKALA
金额:
$2.73万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2015
资助国家:
美国
项目状态:
已结题
起止时间:
2015-05-01 至 2019-04-30

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中文摘要
翻译
 描述(申请人提供):乳腺癌是美国女性癌症死亡的第二大原因。在诊断时,只有不到10%的女性出现转移性疾病。然而,当确定治疗后复发时,大多数患者最终会出现播散性转移,而不是孤立的局部复发。紫杉烷(紫杉醇和多西紫杉醇)对乳腺癌、卵巢癌、前列腺癌和肺癌有显著的抗癌效果。然而,它们的选择性差、毒性高,这是导致癌症化疗停止的最重要因素。曲妥珠单抗联合化疗通常被用作转移性HER-2阳性乳腺癌的一线治疗。患者在几个月到几年内出现获得性耐药,而其他患者表现出内在耐药(从头耐药)。抑制HSP90有可能同时关闭多条致癌信号通路。随着最近发现的抵消分子靶向药物疗效的反馈环,对抗反馈环的一种解决方案是用一种多模式抑制剂攻击癌症,这种多模式抑制剂使用HSP90抑制剂同时抑制多个信号节点,这也可以对抗耐药突变的出现。抑制HSP90的治疗潜力正在许多临床试验中得到广泛的评估,其中包括17-AAG(目前处于第三阶段临床试验)。同时联合治疗对于规避HER-2阳性乳腺癌的耐药性至关重要。然而,以非重叠的作用机制安全和具体地提供多种药物的能力一直是具有挑战性的。为了克服这些问题,我们计划开发多功能聚合物纳米颗粒来测试这样一个假设,即三模式组合纳米颗粒将被证明比目前治疗HER-2阳性乳腺癌的标准护理疗法更有效,毒性更小。这些多功能聚合物纳米粒将紫杉醇(紫杉醇)和17-AAG整合在核心中,但也将被曲妥珠单抗作为靶向部分修饰在表面,以特异性靶向HER-2受体以及作为分子靶向治疗剂。我们推测这些靶向纳米粒在体外对HER-2阳性的乳腺癌细胞株以及HER-2阳性的曲妥珠单抗和/或拉帕替尼耐药的乳腺癌细胞株具有活性,并且它们将在HER-2阳性耐药肿瘤的小鼠异种移植模型中显示出体内的疗效。目的1:合成隐形可水解交联曲妥珠单抗表面修饰的P(LLA-HEMA)纳米粒。目的:制备和表征药物(紫杉醇和17-AAG)和罗丹明-123隐形可水解交联曲妥珠单抗表面标记的P(LLA-HEMA)纳米粒,并进行内化和细胞毒性研究。目的:开展BODIPY(R)标记的隐形可水解交联型曲妥珠单抗表面标记P(LLA-HEMA)纳米粒的生物分布研究和药物(紫杉醇和17-AAG)载药隐形可水解性交联型曲妥珠单抗表面标记P(LLA-HEMA)纳米粒的药效研究及内化和细胞毒性研究。这项工作成功完成后,将发挥化疗药物、分子靶向治疗和HSP90抑制剂的联合作用,以最小的毒性克服HER-2耐药。
英文摘要
 DESCRIPTION (provided by applicant): Breast cancer is the second leading cause of cancer death among women in the US. At the time of diagnosis, less than 10% of women are presented with a metastatic disease. However, when relapse occurs after definitive therapy, the majority of patients end up with disseminated metastases rather than an isolated local recurrence. Taxanes (paclitaxel and docetaxel) have remarkable anticancer efficacy for the treatment of breast, ovarian, prostate and lung cancers. However, they have poor selectivity and high toxicity which are the most important factors for discontinuation of cancer chemotherapy. Trastuzumab in combination with chemotherapy is often used as first line therapy for metastatic HER-2 positive breast cancers. Patients develop acquired resistance within months to years; while other patients demonstrate intrinsic resistance (de novo resistance). Inhibition of HSP90 has the potential to shut down multiple oncogenic signaling pathways simultaneously. With the recent discovery of feedback loops that counteract the efficacy of molecularly targeted agents, one solution to combat feedback loops is to attack cancers with a multimodal inhibitor that simultaneously inhibits multiple signaling nodes using HSP90 inhibitors which can also combat the emergence of resistance mutations. The therapeutic potential of HSP90 inhibition is being evaluated extensively in a number of clinical trials, including 17-AAG (now in phase III clinical trials). Simultaneous combination therapy is critical in circumventing drug resistance for the treatment of HER-2-positive breast cancers. However, the ability to safely and specifically deliver multiple drugs with non-overlapping mechanisms of action has been challenging. To overcome these issues, we plan to develop multifunctional polymeric nanoparticles to test the hypothesis that tri-modal combination nanoparticles will prove more effective with less toxicity than current standard of care therapies for HER-2 positive breast cancers. These multi-functional polymeric nanoparticles will incorporate paclitaxel (Taxol) and 17-AAG within the core, but will also be "decorated" on the surface with trastuzumab as a targeting moiety to specifically target HER-2 receptors as well as function as a molecular targeted therapeutic agent. We hypothesize that these targeted nanoparticles will be active in vitro against HER-2 positive breast cancer cell lines as well as HER-2 positive trastuzumab and/or lapatinib resistant breast cancer cell lines, and that they will show in vivo efficacy in mouse xenograft models of HER-2 positive drug resistant tumors. Aim 1: We will synthesize stealth hydrolysable crosslinked trastuzumab surface-targged- P (LLA-HEMA) nanoparticles. Aim 2: We will fabricate and characterize drug (paclitaxel and 17-AAG)- loaded and rhodamine-123-loaded stealth hydrolysable crosslinked trastuzumab surface-tagged- P(LLA-HEMA) nanoparticles and carry out internalization and cytotoxicity studies. Aim 3: We will carry out biodistribution studies on Bodipy(R)-labeled stealth hydrolysable crosslinked trastuzumab surface-tagged- P(LLA-HEMA) nanoparticles and efficacy studies on drug (paclitaxel and 17-AAG)- loaded stealth hydrolysable crosslinked trastuzumab surface-tagged- P(LLA-HEMA) nanoparticles and internalization and cytotoxicity studies. This work will, when successfully completed, bring to bear the combined power of a chemotherapeutic agent, molecular targeted therapy and HSP90 inhibitor, to overcome HER-2 resistance with minimal toxicity.
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Multifunctional Nanotechnology Platform for Triple Negative Breast Cancer Treatment
  • 批准号:
    10411148
  • 项目类别:
  • 资助金额:
    $15.45万
  • 财政年份:
    2022
  • 负责人:
    EMMANUEL O AKALA
  • 依托单位:
Multifunctional Nanotechnology Platform for Triple Negative Breast Cancer Treatment
  • 批准号:
    10672232
  • 项目类别:
  • 资助金额:
    $15.45万
  • 财政年份:
    2022
  • 负责人:
    EMMANUEL O AKALA
  • 依托单位:
Administrative Supplements for Equipment Purchases for Select NIGMS_Akala
  • 批准号:
    10793724
  • 项目类别:
  • 资助金额:
    $9.65万
  • 财政年份:
    2022
  • 负责人:
    EMMANUEL O AKALA
  • 依托单位:
Novel Nanotechnology Platform for Breast Cancer Treatment
  • 批准号:
    8793606
  • 项目类别:
  • 资助金额:
    $37.75万
  • 财政年份:
    2015
  • 负责人:
    EMMANUEL O AKALA
  • 依托单位:
海外基金