Design of Plastic Binding Lytic Polysaccharide Monooxygenases via Modular Engineering

Alessia Munzone, Manon Pujol, Majda Badjoudj, Mireille Haon, Sacha Grisel, Anthony Magueresse, Sylvie Durand, Johnny Beaugrand, Jean-Guy Berrin and Bastien Bissaro*, 
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Abstract

The worldwide accumulation of plastic waste in the environment, along with its lifespan of hundreds of years, represents a serious threat to ecosystems. Enzymatic recycling of plastic waste offers a promising solution, but the high chemical inertness and hydrophobicity of plastics pose several challenges to enzymes. In nature, lytic polysaccharide monooxygenases (LPMOs) can act at the surface of recalcitrant biopolymers, taking advantage of their solvent-exposed active sites and appended carbohydrate-binding modules (CBMs). LPMOs can disrupt the densely packed chains of polysaccharides (e.g., cellulose) by the oxidation of C–H bonds. Given the similarities between these natural and artificial polymers, we aimed here at promoting plastic-binding properties to LPMOs, by swapping their CBM with three natural, surface-active accessory modules displaying different amphipathic properties. The polymer binding capacity of the resulting LPMO chimeras was assessed on a library of synthetic polymers, including polyester, polyamide, and polyolefin substrates. We demonstrated that the plastic binding properties of these engineered LPMOs are polymer-dependent and can be tuned by playing on the nature of the accessory module and reaction conditions. Remarkably, we gained full binding for some chimera LPMOs with striking results for polyhydroxyalkanoates (PHA). In the long term perspective of harnessing the unique copper chemistry of LPMOs to degrade plastics, we also provided the first evidence of LPMO-dependent modification of the PHA polymer, as supported by enzyme assays, gel permeation chromatography, and scanning electron microscopy. Altogether, our study provides the first roadmap for engineering plastic-binding ability in LPMOs, constituting a crucial first step on the evolutionary path toward efficient interfacial catalysis of plastic-active enzymes.

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通过模块化工程设计塑性结合溶多糖单氧酶
全球范围内塑料废物在环境中的累积及其数百年的寿命对生态系统构成了严重威胁。酶法回收塑料废弃物是一个很有前景的解决方案,但塑料的高化学惰性和疏水性给酶法带来了一些挑战。在自然界中,溶解多糖单加氧酶(LPMOs)可以利用其暴露在溶剂中的活性位点和附加的碳水化合物结合模块(CBMs),在难以分解的生物聚合物表面发挥作用。LPMOs 可以通过氧化 C-H 键来破坏多糖(如纤维素)的密集链。鉴于这些天然聚合物和人工聚合物之间的相似性,我们将 LPMOs 的 CBM 与三种具有不同两亲性的天然表面活性附属模块对调,旨在提高 LPMOs 的塑料结合性能。我们在一个合成聚合物库(包括聚酯、聚酰胺和聚烯烃基质)上评估了由此产生的 LPMO 嵌合体的聚合物结合能力。我们证明,这些工程 LPMO 的塑性结合特性与聚合物有关,可以通过调节附属模块的性质和反应条件来调整。值得注意的是,我们获得了一些嵌合 LPMOs 的完全结合能力,其中聚羟基烷酸酯(PHA)的结果令人瞩目。从利用 LPMOs 独特的铜化学性质降解塑料的长远角度来看,我们还提供了 LPMO 依赖性改性 PHA 聚合物的首个证据,酶测定、凝胶渗透色谱法和扫描电子显微镜都证明了这一点。总之,我们的研究为 LPMOs 的塑料结合能力工程学提供了第一个路线图,在塑料活性酶的高效界面催化进化道路上迈出了关键的第一步。
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