MOE Key Laboratory of Gene Function and Regulation, State Key Laboratory for Biocontrol, School of Life Sciences, The Sun Yat-Sen University, Guangzhou, Guangdong, 510006, People's Republic of China.
Nucleic Acids Res. 2019 Apr 8;47(6):3233-3243. doi: 10.1093/nar/gkz070.
Adenosine deaminase is involved in adenosine degradation and salvage pathway, and plays important physiological roles in purine metabolism. Recently, a novel type of adenosine deaminase-like protein has been identified, which displays deamination activity toward N6-methyl-adenosine monophosphate but not adenosine or AMP, and was consequently named N6-methyl-AMP deaminase (MAPDA). The underlying structural basis of MAPDA recognition and catalysis is poorly understood. Here, we present the crystal structures of MAPDA from Arabidopsis thaliana in the free and in the ligand-bound forms. The protein contains a conserved (β/α)8 Tim-barrel domain and a typical zinc-binding site, but it also exhibits idiosyncratic local differences for two flexible helices important for substrate binding. The extensive interactions between the N6-methyl-AMP substrate or the inosine monophosphate product and the enzyme were identified, and subsequently evaluated by the deamination activity assays. Importantly, each structure reported here represents a different stage of the catalytic pathway and their structural differences suggested that the enzyme can exist in two distinct conformational states. The open state switches to the closed one upon the binding of ligands, brought about by the two critical helices. Our structural studies provide the first look of this important metabolic enzyme and shed lights on its catalytic pathway, which holds promise for the structure-based drug design for MAPDA-related diseases.
腺苷脱氨酶参与腺苷降解和补救途径,在嘌呤代谢中发挥重要的生理作用。最近,一种新型的腺苷脱氨酶样蛋白被鉴定出来,它对 N6-甲基-腺苷一磷酸具有脱氨活性,但对腺苷或 AMP 没有活性,因此被命名为 N6-甲基-AMP 脱氨酶(MAPDA)。MAPDA 识别和催化的潜在结构基础理解得还很差。在这里,我们展示了拟南芥 MAPDA 的自由态和配体结合态的晶体结构。该蛋白包含一个保守的(β/α)8 Tim 桶结构域和一个典型的锌结合位点,但它还表现出两个对底物结合很重要的柔性螺旋的特有局部差异。我们鉴定了 N6-甲基-AMP 底物或肌苷单磷酸产物与酶之间的广泛相互作用,并通过脱氨酶活性测定进行了评估。重要的是,这里报道的每个结构代表了催化途径的不同阶段,它们的结构差异表明该酶可以存在于两种不同的构象状态。配体结合后,两个关键的螺旋使开放状态切换到封闭状态。我们的结构研究首次揭示了这种重要的代谢酶的结构,并阐明了其催化途径,这为基于结构的 MAPDA 相关疾病的药物设计提供了希望。