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免疫调节性苯二氮䓬类药物Bz - 423通过靶向c - myc蛋白进行快速特异性降解来抑制B细胞增殖。

The immunomodulatory benzodiazepine Bz-423 inhibits B-cell proliferation by targeting c-myc protein for rapid and specific degradation.

作者信息

Sundberg Thomas B, Ney Gina M, Subramanian Chitra, Opipari Anthony W, Glick Gary D

机构信息

Department of Chemistry, University of Michigan, 1500 East Medical Center Drive, Ann Arbor, MI 48109, USA.

出版信息

Cancer Res. 2006 Feb 1;66(3):1775-82. doi: 10.1158/0008-5472.CAN-05-3476.

Abstract

Myc proteins regulate cell growth and are oncogenic in many cancers. Although these proteins are validated molecular anticancer targets, new therapies aimed at modulating myc have yet to emerge. A benzodiazepine (Bz-423) that was discovered in efforts to find new drugs for lupus was found recently to have antiproliferative effects on Burkitt's lymphoma cells. We now show that the basis for the antiproliferative effects of Bz-423 is the rapid and specific depletion of c-myc protein, which is coupled to growth-suppressing effects on key regulators of proliferation and cell cycle progression. c-Myc is depleted as a result of signals coupled to Bz-423 binding its molecular target, the oligomycin sensitivity-conferring protein subunit of the mitochondrial F(1)F(o)-ATPase. Bz-423 inhibits F(1)F(o)-ATPase activity, blocking respiratory chain function and generating superoxide, which at growth-inhibiting concentrations triggers proteasomal degradation of c-myc. Bz-423-induced c-myc degradation is independent of glycogen synthase kinase but is substantially blocked by mutation of the phosphosensitive residue threonine 58, which when phosphorylated targets c-myc for ubiquitination and subsequent proteasomal degradation. Collectively, this work describes a new lead compound, with drug-like properties, which regulates c-myc by a novel molecular mechanism that may be therapeutically useful.

摘要

Myc蛋白调节细胞生长,在许多癌症中具有致癌性。尽管这些蛋白是经过验证的分子抗癌靶点,但旨在调节myc的新疗法尚未出现。最近发现,在寻找狼疮新药的过程中发现的一种苯二氮䓬类药物(Bz-423)对伯基特淋巴瘤细胞具有抗增殖作用。我们现在表明,Bz-423抗增殖作用的基础是c-myc蛋白的快速特异性消耗,这与对增殖和细胞周期进程的关键调节因子的生长抑制作用相关。c-Myc的消耗是由于与Bz-423与其分子靶点(线粒体F(1)F(o)-ATP酶的寡霉素敏感性赋予蛋白亚基)结合相关的信号所致。Bz-423抑制F(1)F(o)-ATP酶活性,阻断呼吸链功能并产生超氧化物,在生长抑制浓度下,超氧化物会触发c-myc的蛋白酶体降解。Bz-423诱导的c-myc降解独立于糖原合酶激酶,但被磷酸敏感残基苏氨酸58的突变显著阻断,苏氨酸58磷酸化后会将c-myc靶向泛素化并随后进行蛋白酶体降解。总的来说,这项工作描述了一种具有类药物特性的新先导化合物,它通过一种可能具有治疗用途的新分子机制调节c-myc。

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