Raedschelders Gert, Fierens Katleen, Sansen Stefaan, Rombouts Sigrid, Gebruers Kurt, Robben Johan, Rabijns Anja, Courtin Christophe M, Delcour Jan A, Van Campenhout Steven, Volckaert Guido
Laboratory of Gene Technology, Katholieke Universiteit Leuven, Kasteelpark Arenberg 21, B-3001 Leuven, Belgium.
Biochem Biophys Res Commun. 2005 Sep 23;335(2):512-22. doi: 10.1016/j.bbrc.2005.07.103.
Wheat grains contain Triticum aestivum xylanase inhibitor (TAXI) proteins which inhibit microbial xylanases, some of which are used in cereal based food industries. These inhibitors may play a role in plant defence. Among the TAXI isoforms described so far, TAXI-II displays a deviating inhibition specificity pattern. Here, we report on the molecular identity of TAXI-II and the basis of its inhibition specificity. Three candidate TAXI-II encoding sequences were isolated and recombinantly expressed in Pichia pastoris. To identify TAXI-II, the resulting proteins were tested against glycoside hydrolase family (GHF) 11 xylanases of Aspergillus niger (ANX) and Bacillus subtilis (BSX). One of these proteins (rTAXI-IB) inhibited both enzymes, like natural TAXI-I. The other candidates (rTAXI-IIA and rTAXI-IIB) showed an inhibition pattern typical for natural TAXI-II, only clearly inhibiting BSX. Comparative analysis of these highly similar sequences with distinct inhibition activity patterns, combined with information on the structural basis for ANX inhibition by TAXI-I [S. Sansen, C.J. De Ranter, K. Gebruers, K. Brijs, C.M. Courtin, J.A. Delcour, A. Rabijns, Structural basis for inhibition of Aspergillus niger xylanase by Triticum aestivum xylanase inhibitor-I, J. Biol. Chem. 279 (2004) 36022-36028], indicated a crucial role for Pro294 of TAXI-IIA and Gln376 of TAXI-IIB in determining the reduced inhibition activity towards ANX. Consequently, single point mutants rTAXI-IIA[P294L] and rTAXI-IIB[Q376H], both displaying the Leu/His combination corresponding to TAXI-I, were able to inhibit ANX. These results show that TAXI-II inhibition specificity bears on the identity of two key residues at positions 294 and 376, which are involved in the interaction at the -2 glycon subsite and the active site of GHF 11, respectively.
小麦籽粒含有普通小麦木聚糖酶抑制剂(TAXI)蛋白,该蛋白可抑制微生物木聚糖酶,其中一些木聚糖酶用于谷物类食品工业。这些抑制剂可能在植物防御中发挥作用。在目前已描述的TAXI同工型中,TAXI-II表现出不同的抑制特异性模式。在此,我们报告TAXI-II的分子特性及其抑制特异性的基础。分离出三个候选TAXI-II编码序列,并在毕赤酵母中进行重组表达。为鉴定TAXI-II,将所得蛋白质针对黑曲霉(ANX)和枯草芽孢杆菌(BSX)的糖苷水解酶家族(GHF)11木聚糖酶进行测试。其中一种蛋白质(rTAXI-IB)像天然TAXI-I一样抑制这两种酶。其他候选蛋白(rTAXI-IIA和rTAXI-IIB)表现出天然TAXI-II典型的抑制模式,仅能明显抑制BSX。对这些具有不同抑制活性模式的高度相似序列进行比较分析,并结合TAXI-I对ANX抑制的结构基础信息[S. Sansen, C.J. De Ranter, K. Gebruers, K. Brijs, C.M. Courtin, J.A. Delcour, A. Rabijns, 普通小麦木聚糖酶抑制剂-I对黑曲霉木聚糖酶抑制的结构基础, J. Biol. Chem. 279 (2004) 36022 - 36028],表明TAXI-IIA的Pro294和TAXI-IIB的Gln376在决定对ANX抑制活性降低方面起关键作用。因此,单点突变体rTAXI-IIA[P294L]和rTAXI-IIB[Q376H],两者都显示出与TAXI-I对应的Leu/His组合,能够抑制ANX。这些结果表明,TAXI-II的抑制特异性取决于294位和376位两个关键残基的特性,它们分别参与在GHF 11的 -2糖基亚位点和活性位点的相互作用。