Department of Pharmacology and Molecular Sciences , Johns Hopkins University School of Medicine , Baltimore , Maryland 21205 , United States.
Center for Epigenetics , Johns Hopkins University School of Medicine , Baltimore , Maryland 21205 , United States.
J Am Chem Soc. 2018 Aug 1;140(30):9478-9485. doi: 10.1021/jacs.8b03572. Epub 2018 Jul 24.
A range of acyl-lysine (acyl-Lys) modifications on histones and other proteins have been mapped over the past decade but for most, their functional and structural significance remains poorly characterized. One limitation in the study of acyl-Lys containing proteins is the challenge of producing them or their mimics in site-specifically modified forms. We describe a cysteine alkylation-based method to install hydrazide mimics of acyl-Lys post-translational modifications (PTMs) on proteins. We have applied this method to install mimics of acetyl-Lys, 2-hydroxyisobutyryl-Lys, and ubiquityl-Lys that could be recognized selectively by relevant acyl-Lys modification antibodies. The acyl-Lys modified histone H3 proteins were reconstituted into nucleosomes to study nucleosome dynamics and stability as a function of modification type and site. We also installed a ubiquityl-Lys mimic in histone H2B and generated a diubiquitin analog, both of which could be cleaved by deubiquitinating enzymes. Nucleosomes containing the H2B ubiquityl-Lys mimic were used to study the SAGA deubiquitinating module's molecular recognition. These results suggest that acyl-Lys mimics offer a relatively simple and promising strategy to study the role of acyl-Lys modifications in the function, structure, and regulation of proteins and protein complexes.
在过去的十年中,已经对组蛋白和其他蛋白质上的一系列酰赖氨酸(acyl-Lys)修饰进行了映射,但对于大多数修饰,其功能和结构意义仍未得到充分表征。酰赖氨酸含蛋白研究的一个限制因素是在特异性修饰形式中生产它们或它们的模拟物的挑战。我们描述了一种基于半胱氨酸烷基化的方法,用于在蛋白质上安装酰赖氨酸翻译后修饰(PTM)的酰肼模拟物。我们已经应用这种方法在组蛋白 H3 上安装了乙酰赖氨酸、2-羟基异丁酰赖氨酸和泛素赖氨酸的模拟物,这些模拟物可以被相关的酰赖氨酸修饰抗体选择性识别。酰赖氨酸修饰的组蛋白 H3 蛋白被重新组装成核小体,以研究核小体动力学和稳定性作为修饰类型和位置的函数。我们还在组蛋白 H2B 上安装了一个泛素赖氨酸模拟物,并生成了一个二泛素类似物,两者都可以被去泛素化酶切割。含有 H2B 泛素赖氨酸模拟物的核小体用于研究 SAGA 去泛素化模块的分子识别。这些结果表明,酰赖氨酸模拟物为研究酰赖氨酸修饰在蛋白质和蛋白质复合物的功能、结构和调节中的作用提供了一种相对简单而有前途的策略。