热藓木糖异构酶的定向进化:低温低pH下对葡萄糖的高活性。

Dinlaka Sriprapundh, Claire Vieille, J Gregory Zeikus
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引用次数: 70

摘要

其衍生物TNXI Val185Thr (V185T)是目前报道的最具活性的II型木糖异构酶,在80℃(pH 7.0)下对葡萄糖的催化效率为25.1 s(-1) mM(-1)。为了进一步优化TNXI的潜在工业用途,以TNXI v185t编码基因为模板,进行了两轮随机诱变和低温/低pH活性筛选。获得了两个高活性突变体,3A2 (V185T/L282P)和1F1 (V185T/L282P/F186S)。在所有测试温度和pH值下,1F1比3A2更有活性,而3A2又比TNXI V185T更有活性。3A2和1F1具有较高的低温活化能,其活化能分别为57和44 kJ/mol,明显低于TNXI和V185T的87 kJ/mol。突变L282P在3A2的(α / β)8管的螺旋α 7中引入了一个扭结。令人惊讶的是,这种突变仅在pH 5.5时才使3A2动力学不稳定。1F1的动力学稳定性略高于TNXI V185T。在1F1中,突变F186S产生了一个空腔,破坏了芳香相互作用的四个残基网络。邻近残基的构象如何受到这个空腔的影响以及这些构象变化如何增加1F1的稳定性仍然不清楚。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Directed evolution of Thermotoga neapolitana xylose isomerase: high activity on glucose at low temperature and low pH.

The Thermotoga neapolitana xylose isomerase (TNXI) is extremely thermostable and optimally active at 95 degrees C. Its derivative, TNXI Val185Thr (V185T), is the most active type II xylose isomerase reported, with a catalytic efficiency of 25.1 s(-1) mM(-1) toward glucose at 80 degrees C (pH 7.0). To further optimize TNXI's potential industrial utility, two rounds of random mutagenesis and low temperature/low pH activity screening were performed using the TNXI V185T-encoding gene as the template. Two highly active mutants were obtained, 3A2 (V185T/L282P) and 1F1 (V185T/L282P/F186S). 1F1 was more active than 3A2, which in turn was more active than TNXI V185T at all temperatures and pH values tested. 3A2 and 1F1's high activities at low temperatures were due to significantly lower activation energies (57 and 44 kJ/mol, respectively) than that of TNXI and V185T (87 kJ/mol). Mutation L282P introduced a kink in helix alpha7 of 3A2's (alpha/beta)8 barrel. Surprisingly, this mutation kinetically destabilized 3A2 only at pH 5.5. 1F1 displayed kinetic stability slightly above that of TNXI V185T. In 1F1, mutation F186S creates a cavity that disrupts a four-residue network of aromatic interactions. How the conformation of the neighboring residues is affected by this cavity and how these conformational changes increase 1F1's stability still remain unclear.

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