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生物正交蛋白质组学分析鉴定了一组大量的 3-溴丙酮酸靶标,这些靶标不仅限于糖酵解。

Bioorthogonal Profiling of a Cancer Cell Proteome Identifies a Large Set of 3-Bromopyruvate Targets beyond Glycolysis.

机构信息

Proteomics Resource Center , Rockefeller University , New York , New York 10065 , United States.

出版信息

ACS Chem Biol. 2018 Nov 16;13(11):3054-3058. doi: 10.1021/acschembio.8b00743. Epub 2018 Nov 7.

Abstract

3-Bromopyruvate (3BP) is a potential anticancer agent viewed as a glycolytic inhibitor that preferentially kills cancer cells through inhibition of glyceraldehyde 3-phosphate dehydrogenase (GAPDH), resulting in severe energy depletion. We previously identified four cysteine residues in GAPDH that are alkylated by 3BP, resulting in its inactivation. However, we also showed that addition of excess pyruvate, the final product of glycolysis, was unable to rescue cells from 3BP treatment. This result indicates that GAPDH may not be the only relevant target and is consistent with the chemical reactivity of 3BP that should result in the modification of cysteine residues in many different proteins. To directly test this hypothesis, we first synthesized a probe of 3BP activity bearing an alkyne functionality, termed AO3BP, and then demonstrated that this probe could modify a variety of proteins in living cells. Subsequent competition of AO3BP labeling with pretreatment by 3BP identified 62 statistically significant proteins of various functions as targets of 3BP, confirming that 3BP labeling is indeed widespread. We conclude that 3BP's cytotoxic impact on cancer cells does not only result from selective inhibition of glycolysis but rather from a more widespread effect on cellular proteins that could be driven by the pharmacokinetics of the 3BP. These pleiotropic consequences should be considered when thinking about the potential toxicity of this highly reactive compound.

摘要

3-溴丙酮酸(3BP)是一种潜在的抗癌药物,被视为一种糖酵解抑制剂,通过抑制甘油醛-3-磷酸脱氢酶(GAPDH)优先杀死癌细胞,导致严重的能量耗竭。我们之前发现 GAPDH 中有四个半胱氨酸残基被 3BP 烷基化,导致其失活。然而,我们还表明,添加过量的丙酮酸,即糖酵解的最终产物,也不能使细胞从 3BP 处理中恢复。这一结果表明,GAPDH 可能不是唯一的相关靶点,这与 3BP 的化学反应性一致,它应该导致许多不同蛋白质中的半胱氨酸残基发生修饰。为了直接验证这一假设,我们首先合成了一种带有炔基官能团的 3BP 活性探针,称为 AO3BP,然后证明该探针可以修饰活细胞中的多种蛋白质。随后,用 3BP 预处理进行 AO3BP 标记的竞争实验,确定了 62 种具有各种功能的统计学上显著的蛋白质作为 3BP 的靶标,证实了 3BP 标记确实很广泛。我们得出结论,3BP 对癌细胞的细胞毒性作用不仅源于对糖酵解的选择性抑制,而且源于对细胞蛋白质的更广泛影响,这可能是由 3BP 的药代动力学驱动的。在考虑这种高反应性化合物的潜在毒性时,应该考虑这些多效性的后果。

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