Laboratory of Chromatin Biology, Department of Biological Sciences, Indian Institute of Science Education and Research Bhopal, Bhopal 462066, India.
Division of Hematology and Oncology, Penn State College of Medicine, Hershey, Pennsylvania 17033, United States.
Chem Res Toxicol. 2020 Mar 16;33(3):817-833. doi: 10.1021/acs.chemrestox.9b00471. Epub 2020 Feb 7.
Arsenic is an environmental carcinogen that causes many diseases in humans, including cancers and organ failures, affecting millions of people in the world. Arsenic trioxide is a drug used for the treatment of acute promyelocytic leukemia (APL). In the present study, we screened the synthetic histone H3 and H4 library in the presence of arsenite to understand the role of histone residues in arsenic toxicity. We identified residues of histone H3 and H4 crucial for arsenite stress response. The residues H3T3, H3G90, H4K5, H4G13, and H4R95 are required for the activation of Hog1 kinase in response to arsenite exposure. We showed that a reduced level of Hog1 activation increases the intracellular arsenic content in these histone mutants through the Fps1 channel. We have also noticed the reduced expression of exporter in the mutants. The growth defect of mutants caused by arsenite exposure was suppressed in hyperosmotic conditions, in a higher concentration of glucose, and upon deletion of the gene. The arsenite sensitive histone mutants also showed a lack of H3K4 methylation and reduced H4K16 acetylation. Altogether, we have identified the key residues in histone H3 and H4 proteins important for the regulation of Hog1 signaling, Fps1 activity, and expression during arsenite stress.
砷是一种环境致癌物质,会导致人类罹患许多疾病,包括癌症和器官衰竭,影响全球数百万人。三氧化二砷是一种用于治疗急性早幼粒细胞白血病(APL)的药物。在本研究中,我们在亚砷酸盐存在的情况下筛选了合成组蛋白 H3 和 H4 文库,以了解组蛋白残基在砷毒性中的作用。我们确定了组蛋白 H3 和 H4 中对亚砷酸盐应激反应至关重要的残基。组蛋白 H3 的残基 T3、G90、H4 的 K5、G13 和 R95,以及 H4 的残基,对于 Hog1 激酶在砷暴露时的激活是必需的。我们表明,Hog1 激活水平降低会通过 Fps1 通道增加这些组蛋白突变体中的细胞内砷含量。我们还注意到突变体中 外排泵的表达减少。在高渗条件下、在更高浓度的葡萄糖中以及在 基因缺失时,突变体由于砷暴露引起的生长缺陷得到了抑制。砷敏感的组蛋白突变体也表现出 H3K4 甲基化缺乏和 H4K16 乙酰化减少。总之,我们已经确定了组蛋白 H3 和 H4 蛋白中对 Hog1 信号转导、Fps1 活性和 表达在砷应激过程中的调节至关重要的关键残基。