Dilokpimol Adiphol, Nakai Hiroyuki, Gotfredsen Charlotte H, Baumann Martin J, Nakai Natsuko, Abou Hachem Maher, Svensson Birte
Department of Systems Biology, Technical University of Denmark, Lyngby, Denmark.
Biochim Biophys Acta. 2011 Dec;1814(12):1720-9. doi: 10.1016/j.bbapap.2011.08.003. Epub 2011 Aug 6.
The glycoside hydrolase family 5 (GH5) endo-β-1,4-mannanases ManA and ManC from Aspergillus nidulans FGSC A4 were produced in Pichia pastoris X33 and purified in high yields of 120 and 145mg/L, respectively, from the culture supernatants. Both enzymes showed increasing catalytic efficiency (k(cat)/K(M)) towards β-1,4 manno-oligosaccharides with the degree of polymerisation (DP) from 4 to 6 and also hydrolysed konjac glucomannan, guar gum and locust bean gum galactomannans. ManC had up to two-fold higher catalytic efficiency for DP 5 and 6 manno-oligosaccharides and also higher activity than ManA towards mannans. Remarkably, ManC compared to ManA transglycosylated mannotetraose with formation of longer β-1,4 manno-oligosaccharides 8-fold more efficiently and was able to use mannotriose, melezitose and isomaltotriose out of 36 tested acceptors resulting in novel penta- and hexasaccharides, whereas ManA used only mannotriose as acceptor. ManA and ManC share 39% sequence identity and homology modelling suggesting that they have very similar substrate interactions at subsites +1 and +2 except that ManC Trp283 at subsite +1 corresponded to Ser289 in ManA. Site-directed mutagenesis to ManA S289W lowered K(M) for manno-oligosaccharides by 30-45% and increased transglycosylation yield by 50% compared to wild-type. Conversely, K(M) for ManC W283S was increased, the transglycosylation yield was reduced by 30-45% and furthermore activity towards mannans decreased below that of ManA. This first mutational analysis in subsite +1 of GH5 endo-β-1,4-mannanases indicated that Trp283 in ManC participates in discriminating between mannan substrates with different extent of branching and has a role in transglycosylation and substrate affinity.
构巢曲霉FGSC A4的糖苷水解酶家族5(GH5)内切-β-1,4-甘露聚糖酶ManA和ManC在毕赤酵母X33中表达,并分别从培养上清液中以120mg/L和145mg/L的高产率纯化。两种酶对聚合度(DP)为4至6的β-1,4-甘露寡糖的催化效率(k(cat)/K(M))均有所提高,并且还能水解魔芋葡甘露聚糖、瓜尔豆胶和刺槐豆胶半乳甘露聚糖。对于DP为5和6的甘露寡糖,ManC的催化效率高达ManA的两倍,并且对甘露聚糖的活性也高于ManA。值得注意的是,与ManA相比,ManC将甘露四糖转糖基化形成更长的β-1,4-甘露寡糖的效率高出8倍,并且在36种测试受体中能够利用甘露三糖、松三糖和异麦芽三糖,从而产生新的五糖和六糖,而ManA仅将甘露三糖用作受体。ManA和ManC具有39%的序列同一性,同源建模表明它们在亚位点+1和+2处具有非常相似的底物相互作用,只是亚位点+1处的ManC Trp283对应于ManA中的Ser289。将ManA的S289W进行定点诱变后,与野生型相比,甘露寡糖的K(M)降低了30 - 45%,转糖基化产率提高了50%。相反,ManC的W283S的K(M)增加,转糖基化产率降低了30 - 45%,此外对甘露聚糖的活性降低至低于ManA。对GH5内切-β-1,4-甘露聚糖酶亚位点+1的首次突变分析表明,ManC中的Trp283参与区分具有不同分支程度的甘露聚糖底物,并在转糖基化和底物亲和力中起作用。