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Dual Proteasome and MAPK Inhibition in Cancer Therapy

Dual Proteasome and MAPK Inhibition in Cancer Therapy
癌症治疗中的双重蛋白酶体和 MAPK 抑制
批准号:
7364186
负责人:
ROBERT ZYGMUNT ORLOWSKI
金额:
$8.93万
依托单位国家:
美国
项目类别:
财政年份:
2004
资助国家:
美国
项目状态:
已结题
起止时间:
2004-04-01 至 2008-06-30

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项目成果

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中文摘要
翻译
描述(由申请人提供):泛素-蛋白酶体途径负责大部分细胞内蛋白质降解,并在基本细胞过程(如有丝分裂和细胞凋亡)中发挥重要作用。我们过去的努力有助于建立蛋白酶体作为治疗靶点,通过显示抑制剂诱导c-myc转化细胞的优先凋亡,证明其在体内模型中的活性,并记录其在I期试验中的安全性和有效性。这些研究导致了II期多中心试验,证实了一种这样的抑制剂硼替佐米的活性,硼替佐米现已被FDA批准用于临床。虽然这些抑制剂可能通过几种途径触发细胞凋亡,但我们最近的工作暗示了通过诱导MKP磷酸酶抑制p44/42 MAPK的重要作用。初步证据表明MKP-1诱导部分通过p38 MAPK发生,并且MKP-1也可能通过降低JNK活性而抗凋亡,因为p38抑制剂降低MKP表达,并增强凋亡和磷酸化JNK水平。为了扩大这些发现,我们建议:1。研究p38 MAPK和MKP-1在蛋白酶体介导的细胞凋亡中的作用。药理学p38抑制剂将与突变型p38和MKP-1构建体、p38和MKP敲除细胞以及异种移植物结合使用,以测试p38活化和MKP表达是重要的抗凋亡元件的假设; 2.评估下游p44/42靶标p90 RSK和Bad的参与。药理学MEK抑制剂以及突变体p90 RSK和Bad构建体将用于测试以下假设:p90和Bad是蛋白酶体抑制剂的主要促凋亡靶标,并且p44/42途径抑制增强凋亡;以及3.确定双重MAPK阻断与蛋白酶体抑制的潜力。由于p38和MKP抑制增强了p44/42活性,我们已经证明了这是抗凋亡的,我们怀疑这两种途径一起阻断应该进一步增强蛋白酶体抑制的抗肿瘤功效。总之,这些研究将进一步阐明蛋白酶体抑制剂诱导细胞凋亡的一些机制,确定可能增加其疗效的药物,并利用体内模型评估这些方案。由于p38和MEK抑制剂目前正在进行临床开发,因此这项工作将建立一个框架,用于将具有增强抗肿瘤疗效潜力的新型合理的基于蛋白酶体通道的联合方案转化为治疗方案。 临床竞技场。
英文摘要
DESCRIPTION (provided by applicant): The ubiquitin-proteasome pathway is responsible for the majority of intracellular protein degradation, and plays an essential role in fundamental cellular processes such as mitosis and apoptosis. Our past efforts helped establish the proteasome as a therapeutic target by showing that inhibitors induce preferential apoptosis in c-myc-transformed cells, demonstrating their activity in in vivo models, and documenting their safety and efficacy in Phase I trials. These studies led to Phase II multicenter trials that confirmed the activity of one such inhibitor, bortezomib, which has now been approved by the FDA for clinical use. While these inhibitors likely trigger apoptosis through several pathways, our recent work implicates an important role for inhibition of p44/42 MAPK by induction of MKP phosphatases. Preliminary evidence suggests MKP-1 induction occurs in part through p38 MAPK, and that MKP-1 may also be anti-apoptotic by decreasing JNK activity, since p38 inhibitors decrease MKP expression, and enhance apoptosis and phospho-JNK levels. To expand upon these findings, we propose to: 1. Study the role of p38 MAPK, and of MKP-1 in proteasome inhibitor-mediated apoptosis. Pharmacologic p38 inhibitors will be used in conjunction with mutant p38 and MKP-1 constructs, p38- and MKP-knockout cells, as well as xenografts, to test the hypotheses that p38 activation and MKP expression are important anti-apoptotic elements; 2. Evaluate the involvement of the downstream p44/42 targets p90RSK and Bad. Pharmacologic MEK inhibitors, as well as mutant p90RSK and Bad constructs, will be used to test the hypotheses that p90 and Bad are major pro-apoptotic targets of proteasome inhibitors, and that p44/42 pathway inhibition enhances apoptosis; and 3. Determine the potential of dual MAPK blockade with proteasome inhibition. Since p38 and MKP inhibition enhances p44/42 activity, which we have shown is anti-apoptotic, we suspect that blockade of both pathways together should further enhance the anti-tumor efficacy of proteasome inhibition. Taken together, these studies will further clarify some of the mechanisms by which proteasome inhibitors induce apoptosis, identify agents that may increase their efficacy, and evaluate these regimens with in vivo models. Since p38 and MEK inhibitors are currently undergoing clinical development, this work will establish the framework for translation of novel, rational proteasome inhibitor-based combination regimens with the potential for enhanced anti-tumor efficacy into the clinical arena.
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