Michel Gurvan, Helbert William, Kahn Richard, Dideberg Otto, Kloareg Bernard
Végétaux Marins et Biomolécules, UMR 7139 (CNRS/UPMC/Laboratories Goëmar), Station Biologique de Roscoff, Place Georges Teissier, BP 74, 29682 Roscoff Cedex, Brittany,
J Mol Biol. 2003 Nov 28;334(3):421-33. doi: 10.1016/j.jmb.2003.09.056.
iota-Carrageenans are sulfated 1,3-alpha-1,4-beta-galactans from the cell walls of red algae, which auto-associate into crystalline fibers made of aggregates of double-stranded helices. iota-Carrageenases, which constitute family 82 of glycoside hydrolases, fold into a right-handed beta-helix. Here, the structure of Alteromonas fortis iota-carrageenase bound to iota-carrageenan fragments was solved at 2.0A resolution (PDB 1KTW). The enzyme holds a iota-carrageenan tetrasaccharide (subsites +1 to +4) and a disaccharide (subsites -3, -4), thus providing the first direct determination of a 3D structure of iota-carrageenan. Electrostatic interactions between basic protein residues and the sulfate substituents of the polysaccharide chain dominate iota-carrageenan recognition. Glu245 and Asp247 are the proton donor and the base catalyst, respectively. C-terminal domain A, which was highly flexible in the native enzyme structure, adopts a alpha/beta-fold, also found in DNA/RNA-binding domains. In the substrate-enzyme complex, this polyanion-binding module shifts toward the beta-helix groove, forming a tunnel. Thus, from an open conformation which allows for the initial endo-attack of iota-carrageenan chains, the enzyme switches to a closed-tunnel form, consistent with its highly processive character, as seen from the electron-microscopy analysis of the degradation of iota-carrageenan fibers.
ι-卡拉胶是从红藻细胞壁提取的硫酸化1,3-α-1,4-β-半乳聚糖,它能自动缔合形成由双链螺旋聚集体构成的晶体纤维。构成糖苷水解酶第82家族的ι-卡拉胶酶折叠成右手β-螺旋。在此,以2.0埃的分辨率解析了与ι-卡拉胶片段结合的强壮交替单胞菌ι-卡拉胶酶的结构(蛋白质数据银行编号1KTW)。该酶结合了一个ι-卡拉胶四糖(亚位点+1至+4)和一个二糖(亚位点-3、-4),从而首次直接确定了ι-卡拉胶的三维结构。碱性蛋白质残基与多糖链硫酸酯取代基之间的静电相互作用主导了对ι-卡拉胶的识别。谷氨酸245和天冬氨酸247分别是质子供体和碱催化剂。在天然酶结构中高度灵活的C端结构域A呈现出α/β折叠,这种折叠也存在于DNA/RNA结合结构域中。在底物-酶复合物中,这个多阴离子结合模块向β-螺旋凹槽移动,形成一个通道。因此,从允许对ι-卡拉胶链进行初始内切攻击的开放构象来看,该酶转变为封闭通道形式,这与其高度连续的特性一致,这从对ι-卡拉胶纤维降解的电子显微镜分析中可以看出。