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In this study, we explored the biodegradation of previously synthesized bio-polyesters made from a rigid bicyclic chiral terpene-based diol and copolymerized with various renewable diesters. Herein, four of those polyesters spanning from semi-aromatic to aliphatic were subjected to enzymatic degradations in concert with induced-fit docking (IFD) analyses. The monomer yield following enzymatic depolymerization by IsPETase S238 A, Dura and LCC ranged from 2 % to 17 % without any further pre-treatment step. The degradation efficiency was found to correlate with the extent of matched substrate and enzyme conformations revealed by IFD, regardless of the actual reaction temperature employed. Our findings demonstrate the importance of conformational selection in enzymatic depolymerization of biopolymers. A straight or twisted conformation of the polymer chain is crucial in biocatalytic degradation by showing different affinities to enzyme ground-state conformers. 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引用次数: 0
摘要
聚合物的酶降解有望推动生物经济的发展。然而,大体积聚合物给生物催化剂的可及性带来了挑战,阻碍了解聚反应的进行。除了结晶度的影响,聚合物链的不同构象也会影响与酶的结合效率。我们以前的研究表明,与合成聚对苯二甲酸乙二醇酯(PET)结晶区和无定形区相关的高链和反链构象与 PET 酶的亲和力不同,从而影响解聚速率。然而,在生物催化过程中,人们对生物聚合物的结构-功能关系仍然知之甚少。在本研究中,我们探讨了以前合成的生物聚酯的生物降解问题,这些聚酯由刚性双环手性萜烯基二醇与各种可再生二元醇共聚而成。在此,我们对其中四种从半芳香族到脂肪族的聚酯进行了酶降解,并同时进行了诱导拟合(IFD)分析。我们的研究结果证明了构象选择在生物聚合物酶解聚过程中的重要性。聚合物链的直线或扭曲构象对酶的基态构象具有不同的亲和力,因此在生物催化降解过程中至关重要。这项工作强调了考虑聚合物与酶之间的构象匹配对优化生物聚合物生物催化降解效率的重要性,为开发可持续生物工艺提供了宝贵的见解。
Conformational Selection in Enzyme-Catalyzed Depolymerization of Bio-based Polyesters.
Enzymatic degradation of polymers holds promise for advancing towards a bio-based economy. However, the bulky nature of polymers presents challenges in accessibility for biocatalysts, hindering depolymerization reactions. Beyond the impact of crystallinity, polymer chains can reside in different conformations affecting binding efficiency to the enzyme active site. We previously showed that the gauche and trans chain conformers associated with crystalline and amorphous regions of the synthetic polyethylene terephthalate (PET) display different affinity to PETase, thus affecting the depolymerization rate. However, structural-function relationships for biopolymers remain poorly understood in biocatalysis. In this study, we explored the biodegradation of previously synthesized bio-polyesters made from a rigid bicyclic chiral terpene-based diol and copolymerized with various renewable diesters. Herein, four of those polyesters spanning from semi-aromatic to aliphatic were subjected to enzymatic degradations in concert with induced-fit docking (IFD) analyses. The monomer yield following enzymatic depolymerization by IsPETase S238 A, Dura and LCC ranged from 2 % to 17 % without any further pre-treatment step. The degradation efficiency was found to correlate with the extent of matched substrate and enzyme conformations revealed by IFD, regardless of the actual reaction temperature employed. Our findings demonstrate the importance of conformational selection in enzymatic depolymerization of biopolymers. A straight or twisted conformation of the polymer chain is crucial in biocatalytic degradation by showing different affinities to enzyme ground-state conformers. This work highlights the importance of considering the conformational match between the polymer and the enzyme to optimize the biocatalytic degradation efficiency of biopolymers, providing valuable insights for the development of sustainable bioprocesses.
期刊介绍:
ChemBioChem (Impact Factor 2018: 2.641) publishes important breakthroughs across all areas at the interface of chemistry and biology, including the fields of chemical biology, bioorganic chemistry, bioinorganic chemistry, synthetic biology, biocatalysis, bionanotechnology, and biomaterials. It is published on behalf of Chemistry Europe, an association of 16 European chemical societies, and supported by the Asian Chemical Editorial Society (ACES).