Leandro João, Stokka Anne J, Teigen Knut, Andersen Ole A, Flatmark Torgeir
Department of Biomedicine University of Bergen Norway.
Metabolism and Genetics Group Research Institute for Medicines (iMed.ULisboa) Faculty of Pharmacy University of Lisbon Portugal.
FEBS Open Bio. 2017 Jun 12;7(7):1026-1036. doi: 10.1002/2211-5463.12243. eCollection 2017 Jul.
Mammalian phenylalanine hydroxylase (PAH) is a key enzyme in l-phenylalanine (l-Phe) metabolism and is active as a homotetramer. Biochemical and biophysical work has demonstrated that it cycles between two states with a variably low and a high activity, and that the substrate l-Phe is the key player in this transition. X-ray structures of the catalytic domain have shown mobility of a partially intrinsically disordered Tyr-loop to the active site in the presence of l-Phe. The mechanism by which the loop dynamics are coupled to substrate binding at the active site in tetrameric PAH is not fully understood. We have here conducted functional studies of four Tyr point mutants. A high linear correlation ( = 0.99) was observed between their effects on the catalytic efficiency of the catalytic domain dimers and the corresponding effect on the catalytic efficiency of substrate-activated full-length tetramers. In the tetramers, a correlation ( = 0.96) was also observed between the increase in catalytic efficiency (activation) and the global conformational change (surface plasmon resonance signal response) at the same l-Phe concentration. The new data support a similar functional importance of the Tyr-loop in the catalytic domain and the full-length enzyme homotetramer.
哺乳动物苯丙氨酸羟化酶(PAH)是L-苯丙氨酸(L-Phe)代谢中的关键酶,以同四聚体形式发挥活性。生化和生物物理研究表明,它在两种活性可变的状态之间循环,底物L-Phe是这种转变的关键因素。催化结构域的X射线结构显示,在L-Phe存在的情况下,部分内在无序的酪氨酸环会向活性位点移动。四聚体PAH中,环动力学与活性位点处底物结合之间的耦合机制尚未完全阐明。我们在此对四个酪氨酸点突变体进行了功能研究。观察到它们对催化结构域二聚体催化效率的影响与对底物激活的全长四聚体催化效率的相应影响之间存在高度线性相关性(= 0.99)。在四聚体中,在相同L-Phe浓度下,催化效率的增加(激活)与全局构象变化(表面等离子体共振信号响应)之间也观察到相关性(= 0.96)。新数据支持酪氨酸环在催化结构域和全长酶同四聚体中具有相似的功能重要性。