Weinhäusel A, Griessler R, Krebs A, Zipper P, Haltrich D, Kulbe K D, Nidetzky B
Division of Biochemical Engineering, Institute of Food Technology, Universität für Bodenkultur (BOKU), Muthgasse 18, A-1190 Vienna, Austria.
Biochem J. 1997 Sep 15;326 ( Pt 3)(Pt 3):773-83. doi: 10.1042/bj3260773.
The alpha-1,4-D-glucan phosphorylase from gram-positive Corynebacterium callunae has been isolated and characterized. The enzyme is inducible approx. 2-fold by maltose, but remarkably not repressed by D-glucose. The phosphorylase is a homodimer with a stoichiometric content of the cofactor pyridoxal 5'-phosphate per 88-kDa protein subunit. The specificity constants (kcat/Km, glucan) in the directions of glucan synthesis and degradation are used for the classification of the enzyme as the first bacterial starch phosphorylase. A preference for large over small substrates is determined by variations in the apparent binding constants rather than catalytic-centre activities. The contribution of substrate chain length to binding energy is explained assuming two glucan binding sites in C. callunae phosphorylase: an oligosaccharide binding site composed of five subsites and a high-affinity polysaccharide site separated from the active site. A structural model of the molecular shape of the phosphorylase was obtained from small-angle solution X-ray scattering measurements. A flat, slightly elongated, ellipsoidal model with the three axes related to each other as 1:(0.87-0.95):0.43 showed scattering equivalence with the enzyme molecule. The model of C. callunae phosphorylase differs from the structurally well-characterized rabbit-muscle phosphorylase in size and axial dimensions.
已从革兰氏阳性的卡氏棒杆菌中分离并鉴定出α-1,4-D-葡聚糖磷酸化酶。该酶可被麦芽糖诱导约2倍,但显著不受D-葡萄糖的抑制。磷酸化酶是一种同型二聚体,每个88 kDa的蛋白质亚基含有化学计量的辅因子磷酸吡哆醛。在葡聚糖合成和降解方向上的特异性常数(kcat/Km,葡聚糖)用于将该酶归类为第一种细菌淀粉磷酸化酶。对大底物而非小底物的偏好是由表观结合常数的变化而非催化中心活性决定的。假设卡氏棒杆菌磷酸化酶中有两个葡聚糖结合位点来解释底物链长度对结合能的贡献:一个由五个亚位点组成的寡糖结合位点和一个与活性位点分开的高亲和力多糖位点。通过小角溶液X射线散射测量获得了磷酸化酶分子形状的结构模型。一个扁平、略细长的椭圆形模型,其三个轴彼此的比例为1:(0.87 - 0.95):0.43,与酶分子显示出散射等效性。卡氏棒杆菌磷酸化酶的模型在大小和轴向尺寸上与结构特征明确的兔肌肉磷酸化酶不同。