Department of Biotechnology, Indian Institute of Technology Kharagpur, Kharagpur 721 302, India.
Acta Crystallogr D Struct Biol. 2016 Feb;72(Pt 2):281-90. doi: 10.1107/S2059798316000620. Epub 2016 Jan 28.
NADP(H)/NAD(H) homeostasis has long been identified to play a pivotal role in the mitigation of reactive oxygen stress (ROS) in the intracellular milieu and is therefore critical for the progression and pathogenesis of many diseases. NAD(H) kinases and NADP(H) phosphatases are two key players in this pathway. Despite structural evidence demonstrating the existence and mode of action of NAD(H) kinases, the specific annotation and the mode of action of NADP(H) phosphatases remains obscure. Here, structural evidence supporting the alternative role of inositol monophosphatase (IMPase) as an NADP(H) phosphatase is reported. Crystal structures of staphylococcal dual-specific IMPase/NADP(H) phosphatase (SaIMPase-I) in complex with the substrates D-myo-inositol-1-phosphate and NADP(+) have been solved. The structure of the SaIMPase-I-Ca(2+)-NADP(+) ternary complex reveals the catalytic mode of action of NADP(H) phosphatase. Moreover, structures of SaIMPase-I-Ca(2+)-substrate complexes have reinforced the earlier proposal that the length of the active-site-distant helix α4 and its preceding loop are the predisposing factors for the promiscuous substrate specificity of SaIMPase-I. Altogether, the evidence presented suggests that IMPase-family enzymes with a shorter α4 helix could be potential candidates for previously unreported NADP(H) phosphatase activity.
NADP(H)/NAD(H) 稳态长期以来被认为在减轻细胞内环境中的活性氧应激 (ROS) 方面发挥关键作用,因此对于许多疾病的进展和发病机制至关重要。NADP(H) 激酶和 NADP(H) 磷酸酶是该途径中的两个关键参与者。尽管结构证据表明 NAD(H) 激酶的存在和作用模式,但 NADP(H) 磷酸酶的具体注释和作用模式仍然不清楚。在这里,报道了结构证据支持肌醇单磷酸酶 (IMPase) 作为 NADP(H) 磷酸酶的替代作用。已经解决了葡萄球菌双特异性 IMPase/NADP(H) 磷酸酶 (SaIMPase-I) 与底物 D-肌醇-1-磷酸和 NADP(+) 复合物的晶体结构。SaIMPase-I-Ca(2+)-NADP(+) 三元复合物的结构揭示了 NADP(H) 磷酸酶的催化作用模式。此外,SaIMPase-I-Ca(2+)-底物复合物的结构进一步证实了先前的假设,即活性位点远端 α4 螺旋及其前环的长度是 SaIMPase-I 混杂底物特异性的促成因素。总之,所提出的证据表明,具有较短 α4 螺旋的 IMPase 家族酶可能是以前未报道的 NADP(H) 磷酸酶活性的潜在候选者。