Regni Catherine, Naught Laura, Tipton Peter A, Beamer Lesa J
Department of Biochemistry, 117 Schweitzer Hall, University of Missouri-Columbia, Columbia, MO 65211, USA.
Structure. 2004 Jan;12(1):55-63. doi: 10.1016/j.str.2003.11.015.
Enzyme-substrate complexes of phosphomannomutase/phosphoglucomutase (PMM/PGM) reveal the structural basis of the enzyme's ability to use four different substrates in catalysis. High-resolution structures with glucose 1-phosphate, glucose 6-phosphate, mannose 1-phosphate, and mannose 6-phosphate show that the position of the phosphate group of each substrate is held constant by a conserved network of hydrogen bonds. This produces two distinct, and mutually exclusive, binding orientations for the sugar rings of the 1-phospho and 6-phospho sugars. Specific binding of both orientations is accomplished by key contacts with the O3 and O4 hydroxyls of the sugar, which must occupy equatorial positions. Dual recognition of glucose and mannose phosphosugars uses a combination of specific protein contacts and nonspecific solvent contacts. The ability of PMM/PGM to accommodate these four diverse substrates in a single active site is consistent with its highly reversible phosphoryl transfer reaction and allows it to function in multiple biosynthetic pathways in P. aeruginosa.
磷酸甘露糖变位酶/磷酸葡萄糖变位酶(PMM/PGM)的酶-底物复合物揭示了该酶在催化过程中使用四种不同底物能力的结构基础。与磷酸葡萄糖、葡萄糖-6-磷酸、磷酸甘露糖和甘露糖-6-磷酸形成的高分辨率结构表明,每种底物磷酸基团的位置通过保守的氢键网络保持恒定。这为1-磷酸糖和6-磷酸糖的糖环产生了两种不同且相互排斥的结合方向。两种方向的特异性结合是通过与糖的O3和O4羟基的关键接触实现的,这些羟基必须占据赤道位置。葡萄糖和甘露糖磷酸糖的双重识别利用了特定蛋白质接触和非特异性溶剂接触的组合。PMM/PGM在单个活性位点容纳这四种不同底物的能力与其高度可逆的磷酸转移反应一致,并使其能够在铜绿假单胞菌的多种生物合成途径中发挥作用。