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通过蛋白质工程构建来自纤维素分解真菌塔宾曲霉的耐热纤维二糖水解酶 I。

Construction of thermostable cellobiohydrolase I from the fungus Talaromyces cellulolyticus by protein engineering.

机构信息

Biomass Refinery Research Center, National Institute of Advanced Industrial Science and Technology (AIST), 3-11-32 Kagamiyama, Higashi-Hiroshima, Hiroshima, Japan.

Faculty of Agriculture, Pattimura University, Jl. Ir. M. Putuhena, Kampus Poka, Ambon, Maluku, Indonesia.

出版信息

Protein Eng Des Sel. 2019 Sep 10;32(1):33-40. doi: 10.1093/protein/gzz001.

DOI:10.1093/protein/gzz001
PMID:30715529
Abstract

Fungus-derived GH-7 family cellobiohydrolase I (CBHI, EC 3.2.1.91) is one of the most important industrial enzymes for cellulosic biomass saccharification. Talaromyces cellulolyticus is well known as a mesophilic fungus producing a high amount of CBHI. Thermostability enhances the economic value of enzymes by making them more robust. However, CBHI has proven difficult to engineer, a fact that stems in part from its low expression in heterozygous hosts and its complex structure. Here, we report the successful improvement of the thermostability of CBHI from T. cellulolyticus using our homologous expression system and protein engineering method. We examined the key structures that seem to contribute to its thermostability using the 3D structural information of CBHI. Some parts of the structure of the Talaromyces emersonii CBHI were grafted into T. cellulolyticus CBHI and thermostable mutant CBHIs were constructed. The thermostability was primarily because of the improvement in the loop structures, and the positive effects of the mutations for thermostability were additive. By combing the mutations, the constructed thermophilic CBHI exhibits high hydrolytic activity toward crystalline cellulose with an optimum temperature at over 70°C. In addition, the strategy can be applied to the construction of the other thermostable CBHIs.

摘要

真菌来源的 GH-7 家族纤维二糖水解酶 I(CBHI,EC 3.2.1.91)是用于纤维素生物质糖化的最重要的工业酶之一。塔宾曲霉是一种众所周知的嗜温真菌,能够产生大量的 CBHI。热稳定性通过使酶更健壮来提高它们的经济价值。然而,CBHI 已被证明难以进行工程改造,这在一定程度上是由于其在杂合宿主中的低表达和其复杂的结构。在这里,我们使用我们的同源表达系统和蛋白质工程方法成功地提高了来自塔宾曲霉的 CBHI 的热稳定性。我们使用 CBHI 的 3D 结构信息研究了似乎有助于其热稳定性的关键结构。将塔宾曲霉 CBHI 的某些结构部分嫁接到塔宾曲霉 CBHI 中,并构建了耐热突变体 CBHIs。耐热性主要是由于环结构的改善,并且突变对耐热性的积极影响是累加的。通过结合这些突变,构建的嗜热 CBHI 对结晶纤维素表现出高水解活性,最适温度超过 70°C。此外,该策略可应用于其他耐热 CBHIs 的构建。

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