跳转至内容
Merck
CN
  • Functional dissection of lysine deacetylases reveals that HDAC1 and p300 regulate AMPK.

Functional dissection of lysine deacetylases reveals that HDAC1 and p300 regulate AMPK.

Nature (2012-02-10)
Yu-yi Lin, Samara Kiihl, Yasir Suhail, Shang-Yun Liu, Yi-hsuan Chou, Zheng Kuang, Jin-ying Lu, Chin Ni Khor, Chi-Long Lin, Joel S Bader, Rafael Irizarry, Jef D Boeke
摘要

First identified as histone-modifying proteins, lysine acetyltransferases (KATs) and deacetylases (KDACs) antagonize each other through modification of the side chains of lysine residues in histone proteins. Acetylation of many non-histone proteins involved in chromatin, metabolism or cytoskeleton regulation were further identified in eukaryotic organisms, but the corresponding enzymes and substrate-specific functions of the modifications are unclear. Moreover, mechanisms underlying functional specificity of individual KDACs remain enigmatic, and the substrate spectra of each KDAC lack comprehensive definition. Here we dissect the functional specificity of 12 critical human KDACs using a genome-wide synthetic lethality screen in cultured human cells. The genetic interaction profiles revealed enzyme-substrate relationships between individual KDACs and many important substrates governing a wide array of biological processes including metabolism, development and cell cycle progression. We further confirmed that acetylation and deacetylation of the catalytic subunit of the adenosine monophosphate-activated protein kinase (AMPK), a critical cellular energy-sensing protein kinase complex, is controlled by the opposing catalytic activities of HDAC1 and p300. Deacetylation of AMPK enhances physical interaction with the upstream kinase LKB1, leading to AMPK phosphorylation and activation, and resulting in lipid breakdown in human liver cells. These findings provide new insights into previously underappreciated metabolic regulatory roles of HDAC1 in coordinating nutrient availability and cellular responses upstream of AMPK, and demonstrate the importance of high-throughput genetic interaction profiling to elucidate functional specificity and critical substrates of individual human KDACs potentially valuable for therapeutic applications.

材料
货号
品牌
产品描述

Sigma-Aldrich
单克隆抗-FLAG® M2 小鼠抗, clone M2, purified immunoglobulin (Purified IgG1 subclass), buffered aqueous solution (10 mM sodium phosphate, 150 mM NaCl, pH 7.4, containing 0.02% sodium azide)
Sigma-Aldrich
抗 α-微管蛋白单克隆抗体 小鼠抗, ascites fluid, clone B-5-1-2
Sigma-Aldrich
抗-p300 CT抗体,克隆RW128, clone RW128, Upstate®, from mouse
Sigma-Aldrich
Anti-Glutathione-S-Transferase Antibody, S. japonicum form, Chemicon®, from rabbit
Sigma-Aldrich
抗磷酸乙酰辅酶A羧化酶(Ser79)抗体, Upstate®, from rabbit
Sigma-Aldrich
Anti-acetyl-Lysine Antibody, clone 4G12, clone 4G12, Upstate®, from mouse
Sigma-Aldrich
Anti-SIRT2 Antibody, from rabbit, purified by affinity chromatography
Sigma-Aldrich
抗-HDAC6抗体,CT, Upstate®, from rabbit
Sigma-Aldrich
Anti-HDAC7 Antibody, from rabbit, purified by affinity chromatography