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通过环交换工程化一种南极 PET 降解酶的催化活性。

Engineering the catalytic activity of an Antarctic PET-degrading enzyme by loop exchange.

机构信息

Institute for Biological and Medical Engineering, Schools of Engineering, Medicine and Biological Sciences, Pontificia Universidad Católica de Chile, Santiago, Chile.

ANID-Millennium Science Initiative Program, Millennium Institute for Integrative Biology (iBio), Santiago, Chile.

出版信息

Protein Sci. 2023 Sep;32(9):e4757. doi: 10.1002/pro.4757.

Abstract

Several hydrolases have been described to degrade polyethylene terephthalate (PET) at moderate temperatures ranging from 25°C to 40°C. These mesophilic PET hydrolases (PETases) are less efficient in degrading this plastic polymer than their thermophilic homologs and have, therefore, been the subject of many protein engineering campaigns. However, enhancing their enzymatic activity through rational design or directed evolution poses a formidable challenge due to the need for exploring a large number of mutations. Additionally, evaluating the improvements in both activity and stability requires screening numerous variants, either individually or using high-throughput screening methods. Here, we utilize instead the design of chimeras as a protein engineering strategy to increase the activity and stability of Mors1, an Antarctic PETase active at 25°C. First, we obtained the crystal structure of Mors1 at 1.6 Å resolution, which we used as a scaffold for structure- and sequence-based chimeric design. Then, we designed a Mors1 chimera via loop exchange of a highly divergent active site loop from the thermophilic leaf-branch compost cutinase (LCC) into the equivalent region in Mors1. After restitution of an active site disulfide bond into this chimera, the enzyme exhibited a shift in optimal temperature for activity to 45°C and an increase in fivefold in PET hydrolysis when compared with wild-type Mors1 at 25°C. Our results serve as a proof of concept of the utility of chimeric design to further improve the activity and stability of PETases active at moderate temperatures.

摘要

几种水解酶已被描述为在 25°C 到 40°C 的中等温度范围内降解聚对苯二甲酸乙二醇酯 (PET)。这些嗜温性 PET 水解酶(PETases)在降解这种塑料聚合物方面的效率低于它们的耐热同系物,因此一直是许多蛋白质工程研究的主题。然而,通过合理设计或定向进化来提高它们的酶活性是一项艰巨的挑战,因为需要探索大量的突变。此外,评估活性和稳定性的提高需要筛选大量的变体,无论是单独筛选还是使用高通量筛选方法。在这里,我们利用嵌合体的设计作为一种蛋白质工程策略来提高 Mors1 的活性和稳定性,Mors1 是一种在 25°C 下具有活性的南极 PETase。首先,我们获得了 Mors1 的晶体结构,分辨率为 1.6Å,我们将其用作基于结构和序列的嵌合设计的支架。然后,我们通过将来自耐热叶分支堆肥角质酶(LCC)的高度差异活性位点环交换到 Mors1 中的等效区域,设计了一种 Mors1 嵌合体。将活性位点中二硫键恢复到该嵌合体后,与野生型 Mors1 相比,该酶在 25°C 时的最适温度向 45°C 转移,在 PET 水解方面的活性提高了五倍。我们的结果证明了嵌合体设计在进一步提高在中等温度下具有活性的 PETases 的活性和稳定性方面的有效性。

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