Department of Chemistry, Umeå University, Umeå SE-901 87, Sweden.
Department of Chemistry, Umeå University, Umeå SE-901 87, Sweden
Proc Natl Acad Sci U S A. 2018 Mar 20;115(12):3012-3017. doi: 10.1073/pnas.1721508115. Epub 2018 Mar 5.
Enzymatic substrate selectivity is critical for the precise control of metabolic pathways. In cases where chemically related substrates are present inside cells, robust mechanisms of substrate selectivity are required. Here, we report the mechanism utilized for catalytic ATP versus GTP selectivity during adenylate kinase (Adk) -mediated phosphorylation of AMP. Using NMR spectroscopy we found that while Adk adopts a catalytically competent and closed structural state in complex with ATP, the enzyme is arrested in a catalytically inhibited and open state in complex with GTP. X-ray crystallography experiments revealed that the interaction interfaces supporting ATP and GTP recognition, in part, are mediated by coinciding residues. The mechanism provides an atomic view on how the cellular GTP pool is protected from Adk turnover, which is important because GTP has many specialized cellular functions. In further support of this mechanism, a structure-function analysis enabled by synthesis of ATP analogs suggests that a hydrogen bond between the adenine moiety and the backbone of the enzyme is vital for ATP selectivity. The importance of the hydrogen bond for substrate selectivity is likely general given the conservation of its location and orientation across the family of eukaryotic protein kinases.
酶的底物选择性对于代谢途径的精确控制至关重要。在细胞内存在化学相关底物的情况下,需要强大的底物选择性机制。在这里,我们报告了在腺苷酸激酶(Adk)介导的 AMP 磷酸化过程中催化 ATP 与 GTP 选择性的机制。通过 NMR 光谱我们发现,虽然 Adk 与 ATP 形成复合物时采用了催化有效的封闭结构状态,但与 GTP 形成复合物时,酶被阻滞在催化抑制的开放状态。X 射线晶体学实验表明,支持 ATP 和 GTP 识别的相互作用界面部分由重合的残基介导。该机制提供了一个原子水平的视角,说明了细胞内的 GTP 池如何免受 Adk 周转的影响,这一点很重要,因为 GTP 具有许多特殊的细胞功能。进一步支持这一机制的是,通过合成 ATP 类似物进行的结构-功能分析表明,嘌呤部分与酶的骨架之间的氢键对于 ATP 选择性至关重要。鉴于该氢键在整个真核蛋白激酶家族中的位置和取向都得到了保守,因此它对于底物选择性的重要性可能是普遍存在的。