Adolf-Butenandt-Institute and Center for Integrated Protein Science Munich, Ludwig-Maximilians-University, Munich, Germany.
Adolf-Butenandt-Institute and Center for Integrated Protein Science Munich, Ludwig-Maximilians-University, Munich, Germany.
Mol Cell. 2015 Feb 5;57(3):559-71. doi: 10.1016/j.molcel.2014.12.008. Epub 2015 Jan 8.
Regulation of histone acetylation is fundamental to the utilization of eukaryotic genomes in chromatin. Aberrant acetylation contributes to disease and can be clinically combated by inhibiting the responsible enzymes. Our knowledge of the histone acetylation system is patchy because we so far lacked the methodology to describe acetylation patterns and their genesis by integrated enzyme activities. We devised a generally applicable, mass spectrometry-based strategy to precisely and accurately quantify combinatorial modification motifs. This was applied to generate a comprehensive inventory of acetylation motifs on histones H3 and H4 in Drosophila cells. Systematic depletion of known or suspected acetyltransferases and deacetylases revealed specific alterations of histone acetylation signatures, established enzyme-substrate relationships, and unveiled an extensive crosstalk between neighboring modifications. Unexpectedly, overall histone acetylation levels remained remarkably constant upon depletion of individual acetyltransferases. Conceivably, the acetylation level is adjusted to maintain the global charge neutralization of chromatin and the stability of nuclei.
组蛋白乙酰化的调控是真核生物染色质利用基因组的基础。异常的乙酰化会导致疾病,并且可以通过抑制相关酶来进行临床治疗。由于我们缺乏描述整合酶活性的乙酰化模式及其起源的方法,因此我们对组蛋白乙酰化系统的了解还很零碎。我们设计了一种普遍适用的基于质谱的策略,以精确和准确地定量组合修饰基序。该策略用于生成果蝇细胞中组蛋白 H3 和 H4 上乙酰化基序的综合目录。系统地耗尽已知或疑似的乙酰转移酶和去乙酰化酶,揭示了组蛋白乙酰化特征的特异性改变,建立了酶-底物关系,并揭示了相邻修饰之间的广泛串扰。出乎意料的是,在耗尽单个乙酰转移酶时,整体组蛋白乙酰化水平仍然保持惊人的恒定。可以想象,乙酰化水平的调整是为了维持染色质的整体电荷中和以及核的稳定性。