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Three Feruloyl Esterases in Cellulosilyticum ruminicola H1 Act Synergistically To Hydrolyze Esterified Polysaccharides ▿

机译:鲁氏纤维梭菌H1中的三种阿魏酸酯酶协同作用以水解酯化多糖

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摘要

Feruloyl esterases (Faes) constitute a subclass of carboxyl esterases that specifically hydrolyze the ester linkages between ferulate and polysaccharides in plant cell walls. Until now, the described microbial Faes were mainly from fungi. In this study, we report that Cellulosilyticum ruminicola H1, a previously described fibrolytic rumen bacterium, possesses three different active feruloyl esterases, FaeI, FaeII, and FaeIII. Phylogenetic analysis classified the described bacterial Faes into two types, FaeI and FaeII in type I and FaeIII in type II. Substrate specificity assays indicated that FaeI is more active against the ester bonds in natural hemicelluloses and FaeIII preferentially attacks the ferulate esters with a small moiety, such as methyl groups, while FaeII is active on both types of substrates. Among the three feruloyl esterase genes, faeI was the only one induced significantly by xylose and xylan, while pectin appeared to moderately induce the three genes during the late log phase to stationary phase. Western blot analysis determined that FaeI and FaeIII were secreted and cytoplasmic proteins, respectively, whereas FaeII seemed to be cell associated. The addition of FaeI and FaeII but not FaeIII enhanced the activity of a xylanase on maize cob, suggesting a synergy of the former two with xylanase. Hence, we propose that the three feruloyl esterases work in concert to hydrolyze ferulate esters in natural hemicelluloses.
机译:阿魏酸酯酶(Faes)构成了羧基酯酶的一类,后者专门水解植物细胞壁中阿魏酸酯和多糖之间的酯键。到目前为止,所描述的微生物Faes主要来自真菌。在这项研究中,我们报告说,纤维素纤维瘤胃H1,以前描述的纤溶瘤胃细菌,拥有三种不同的活性阿魏酸酯酶,FaeI,FaeII和FaeIII。系统发育分析将所描述的细菌Faes分为两种类型,I型为FaeI和FaeII,II型为FaeIII。底物特异性测定表明,FaeI对天然半纤维素中的酯键更具活性,而FaeIII优先攻击带有小部分(如甲基)的阿魏酸酯,而FaeII在两种底物上均具有活性。在这三个阿魏酸酯酶基因中,faeI是唯一被木糖和木聚糖显着诱导的基因,而果胶似乎在对数晚期到固定相期间适度地诱导了这三个基因。蛋白质印迹分析确定FaeI和FaeIII分别是分泌的和细胞质蛋白,而FaeII似乎与细胞相关。 FaeI和FaeII而不是FaeIII的添加增强了木聚糖酶对玉米芯的活性,表明前两种酶与木聚糖酶具有协同作用。因此,我们建议这三种阿魏酸酯酶共同作用以水解天然半纤维素中的阿魏酸酯。

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