Payan Françoise, Leone Philippe, Porciero Sophie, Furniss Caroline, Tahir Tariq, Williamson Gary, Durand Anne, Manzanares Paloma, Gilbert Harry J, Juge Nathalie, Roussel Alain
Architecture et Fonction de Macromolécules Biologiques, UMR-6098, CNRS et Universités d'Aix-Marseille I et II, 31 Chemin Joseph Aiguier, 13402 Marseille Cedex 20, France.
J Biol Chem. 2004 Aug 20;279(34):36029-37. doi: 10.1074/jbc.M404225200. Epub 2004 Jun 4.
The xylanase inhibitor protein I (XIP-I) from wheat Triticum aestivum is the prototype of a novel class of cereal protein inhibitors that inhibit fungal xylanases belonging to glycoside hydrolase families 10 (GH10) and 11 (GH11). The crystal structures of XIP-I in complex with Aspergillus nidulans (GH10) and Penicillium funiculosum (GH11) xylanases have been solved at 1.7 and 2.5 A resolution, respectively. The inhibition strategy is novel because XIP-I possesses two independent enzyme-binding sites, allowing binding to two glycoside hydrolases that display a different fold. Inhibition of the GH11 xylanase is mediated by the insertion of an XIP-I Pi-shaped loop (Lalpha(4)beta(5)) into the enzyme active site, whereas residues in the helix alpha7 of XIP-I, pointing into the four central active site subsites, are mainly responsible for the reversible inactivation of GH10 xylanases. The XIP-I strategy for inhibition of xylanases involves substrate-mimetic contacts and interactions occluding the active site. The structural determinants of XIP-I specificity demonstrate that the inhibitor is able to interact with GH10 and GH11 xylanases of both fungal and bacterial origin. The biological role of the xylanase inhibitors is discussed in light of the present structural data.
来自普通小麦(Triticum aestivum)的木聚糖酶抑制蛋白I(XIP-I)是一类新型谷物蛋白抑制剂的原型,这类抑制剂可抑制属于糖苷水解酶家族10(GH10)和11(GH11)的真菌木聚糖酶。XIP-I与构巢曲霉(GH10)和绳状青霉(GH11)木聚糖酶复合物的晶体结构分别在1.7 Å和2.5 Å分辨率下得到了解析。这种抑制策略很新颖,因为XIP-I拥有两个独立的酶结合位点,能够与两种具有不同折叠结构的糖苷水解酶结合。对GH11木聚糖酶的抑制是通过XIP-I的一个π形环(Lα(4)β(5))插入酶活性位点来介导的,而XIP-I的α7螺旋中的残基指向四个中央活性位点亚位点,主要负责对GH10木聚糖酶的可逆失活。XIP-I抑制木聚糖酶的策略涉及底物模拟接触和封闭活性位点的相互作用。XIP-I特异性的结构决定因素表明,该抑制剂能够与真菌和细菌来源的GH10和GH11木聚糖酶相互作用。根据目前的结构数据对木聚糖酶抑制剂的生物学作用进行了讨论。