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Fast and reliable production purification and characterization of heat-stable bifunctional enzyme chimeras

机译:快速稳定地生产纯化和鉴定热稳定的双功能酶嵌合体

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摘要

Degradation of complex plant biomass demands a fine-regulated portfolio of glycoside hydrolases. The LE (LguI/Eco81I)-cloning approach was used to produce two enzyme chimeras CB and BC composed of an endoglucanase Cel5A (C) from the extreme thermophilic bacterium Fervidobacterium gondwanense and an archaeal β-glucosidase Bgl1 (B) derived from a hydrothermal spring metagenome. Recombinant chimeras and parental enzymes were produced in Escherichia coli and purified using a two-step affinity chromatography approach. Enzymatic properties revealed that both chimeras closely resemble the parental enzymes and physical mixtures, but Cel5A displayed lower temperature tolerance at 100°C when fused to Bgl1 independent of the conformational order. Moreover, the determination of enzymatic performances resulted in the detection of additive effects in case of BC fusion chimera. Kinetic measurements in combination with HPLC-mediated product analyses and site-directed mutation constructs indicated that Cel5A was strongly impaired when fused at the N-terminus, while activity was reduced to a slighter extend as C-terminal fusion partner. In contrast to these results, catalytic activity of Bgl1 at the N-terminus was improved 1.2-fold, effectively counteracting the slightly reduced activity of Cel5A by converting cellobiose into glucose. In addition, cellobiose exhibited inhibitory effects on Cel5A, resulting in a higher yield of cellobiose and glucose by application of an enzyme mixture (53.1%) compared to cellobiose produced from endoglucanase alone (10.9%). However, the overall release of cellobiose and glucose was even increased by catalytic action of BC (59.2%). These results indicate possible advantages of easily produced bifunctional fusion enzymes for the improved conversion of complex polysaccharide plant materials.Electronic supplementary materialThe online version of this article (doi:10.1186/s13568-015-0122-7) contains supplementary material, which is available to authorized users.
机译:复杂植物生物量的降解需要糖苷水解酶的精细调节组合。 LE(LguI / Eco81I)克隆方法用于生产两种酶嵌合体CB和BC,它们分别由极端嗜热细菌刚德旺氏菌内切葡聚糖酶Cel5A(C)和衍生自热液泉的古生β-葡萄糖苷酶Bgl1(B)组成元基因组。重组嵌合体和亲本酶在大肠杆菌中产生,并使用两步亲和色谱法纯化。酶学性质显示,两种嵌合体均与亲本酶和物理混合物极为相似,但与Bgl1融合时,Cel5A在100°C时显示较低的温度耐受性,而与构象顺序无关。此外,酶促性能的测定导致在BC融合嵌合体的情况下检测累加效应。动力学测量与HPLC介导的产物分析和定点突变构建体相结合表明,在N端融合时,Cel5A受到严重损害,而作为C端融合伴侣的活性则降低了一些。与这些结果相反,Bgl1在N端的催化活性提高了1.2倍,通过将纤维二糖转化为葡萄糖有效地抵消了Cel5A活性的轻微降低。另外,与仅由内切葡聚糖酶产生的纤维二糖(10.9%)相比,纤维二糖对Cel5A表现出抑制作用,通过施用酶混合物(53.1%)导致纤维二糖和葡萄糖的更高产率。但是,纤维二糖和葡萄糖的总体释放甚至由于BC的催化作用而增加(59.2%)。这些结果表明,易于生产的双功能融合酶可能具有改善复杂多糖植物材料转化的可能优势。电子补充材料本文的在线版本(doi:10.1186 / s13568-015-0122-7)包含补充材料,可用于授权用户。

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