Molecular Biology Program, Memorial Sloan Kettering Cancer Center, New York, New York, USA; Gerstner Sloan Kettering Graduate School of Biomedical Sciences, New York, New York, USA.
Molecular Biology Program, Memorial Sloan Kettering Cancer Center, New York, New York, USA.
J Biol Chem. 2022 May;298(5):101851. doi: 10.1016/j.jbc.2022.101851. Epub 2022 Mar 18.
Domain of Unknown Function 89 (DUF89) proteins are metal-dependent phosphohydrolases. Exemplary DUF89 enzymes differ in their metal and phosphosubstrate preferences. Here, we interrogated the activities and structures of two DUF89 paralogs from fission yeast-Duf89 and Duf8901. We find that Duf89 and Duf8901 are cobalt/nickel-dependent phosphohydrolases adept at hydrolyzing p-nitrophenylphosphate and PP. Crystal structures of metal-free Duf89 and Co-bound Duf8901 disclosed two enzyme conformations that differed with respect to the position of a three-helix module, which is either oriented away from the active site in Duf89 or forms a lid over the active site in Duf8901. Lid closure results in a 16 Å movement of Duf8901 Asp195, vis-à-vis Asp199 in Duf89, that brings Asp195 into contact with an octahedrally coordinated cobalt. Reaction of Duf8901 with BeCl and NaF in the presence of divalent cations Co, Ni, or Zn generated covalent Duf8901-(Asp248)-beryllium trifluoride (BeF)•Co, Duf8901-(Asp248)-BeF•Ni, or Duf8901-(Asp248)-BeF•Zn adducts, the structures of which suggest a two-step catalytic mechanism via formation and hydrolysis of an enzyme-(aspartyl)-phosphate intermediate. Alanine mutations of Duf8901 Asp248, Asn249, Lys401, Asp286, and Asp195 that interact with BeF•Co squelched p-nitrophenylphosphatase activity. A 1.8 Å structure of a Duf8901-(Asp248)-AlF-OH•Co transition-state mimetic suggests an associative mechanism in which Asp195 and Asp363 orient and activate the water nucleophile. Whereas deletion of the duf89 gene elicited a phenotype in which expression of phosphate homeostasis gene pho1 was derepressed, deleting duf8901 did not, thereby hinting that the DUF89 paralogs have distinct functional repertoires in vivo.
未知功能域 89(DUF89)蛋白是金属依赖的磷酸水解酶。典型的 DUF89 酶在其金属和磷酸底物偏好上有所不同。在这里,我们研究了裂殖酵母中的两个 DUF89 旁系同源物-Duf89 和 Duf8901 的活性和结构。我们发现 Duf89 和 Duf8901 是钴/镍依赖的磷酸水解酶,擅长水解对硝基苯磷酸酯和 PP。无金属的 Duf89 和 Co 结合的 Duf8901 的晶体结构揭示了两种酶构象,它们在一个三螺旋模块的位置上有所不同,该模块要么远离 Duf89 的活性位点,要么在 Duf8901 的活性位点上形成一个盖子。盖子的闭合导致 Duf8901 的 Asp195相对于 Duf89 的 Asp199 发生 16 Å 的运动,使 Asp195与六配位的钴接触。Duf8901 与 BeCl 和 NaF 的反应,在二价阳离子 Co、Ni 或 Zn 的存在下,生成共价 Duf8901-(Asp248)- 三氟化铍(BeF)•Co、Duf8901-(Asp248)-BeF•Ni 或 Duf8901-(Asp248)-BeF•Zn 加合物,这些结构表明通过酶-(天冬氨酸)-磷酸中间物的形成和水解存在两步催化机制。与 BeF•Co 相互作用的 Duf8901 Asp248、Asn249、Lys401、Asp286 和 Asp195 的丙氨酸突变抑制了对硝基苯磷酸酶的活性。Duf8901-(Asp248)-AlF-OH•Co 过渡态模拟物的 1.8 Å 结构表明,一种缔合机制中,Asp195 和 Asp363 定向并激活亲核水分子。虽然 duf89 基因的缺失引发了磷酸盐稳态基因 pho1 表达去阻遏的表型,但删除 duf8901 则没有,这暗示 DUF89 旁系同源物在体内具有不同的功能谱。