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分批和补料分批培养过程中解聚酶对聚对苯二甲酸乙二醇酯的胞外生产的比较评价。

Comparative evaluation of the extracellular production of a polyethylene terephthalate degrading cutinase by Corynebacterium glutamicum and leaky Escherichia coli in batch and fed-batch processes.

机构信息

Institute of Bioprocess Engineering, Department of Chemical and Biological Engineering, Friedrich-Alexander-Universität Erlangen-Nürnberg, Paul-Gordan-Straße 3, 91052, Erlangen, Germany.

Institute of Bio- and Geosciences, IBG-1: Biotechnology, Forschungszentrum Jülich GmbH, Wilhelm-Johnen-Straße, 52428, Jülich, Germany.

出版信息

Microb Cell Fact. 2024 Oct 10;23(1):274. doi: 10.1186/s12934-024-02547-2.

Abstract

BACKGROUND

With a growing global population, the generation of plastic waste and the depletion of fossil resources are major concerns that need to be addressed by developing sustainable and efficient plastic recycling methods. Biocatalytic recycling is emerging as a promising ecological alternative to conventional processes, particularly in the recycling of polyethylene terephthalate (PET). However, cost-effective production of the involved biocatalyst is essential for the transition of enzymatic PET recycling to a widely used industrial technology. Extracellular enzyme production using established organisms such as Escherichia coli or Corynebacterium glutamicum offers a promising way to reduce downstream processing costs.

RESULTS

In this study, we compared extracellular recombinant protein production by classical secretion in C. glutamicum and by membrane leakage in E. coli. A superior extracellular release of the cutinase ICCG was observed with E. coli in batch and fed-batch processes on a litre-scale. This phenomenon in E. coli, in the absence of a signal peptide, might be associated with membrane-destabilizing catalytic properties of the expressed cutinase. Optimisations regarding induction, expression temperature and duration as well as carbon source significantly enhanced extracellular cutinase activity. In particular, in fed-batch cultivation of E. coli at 30 °C with lactose as carbon source and inducer, a remarkable extracellular activity (137 U mL) and cutinase titre (660 mg L) were achieved after 48 h. Literature values obtained with other secretory organisms, such as Bacillus subtilis or Komagataella phaffii were clearly outperformed. The extracellular ICCG produced showed high efficacy in the hydrolysis of PET textile fibres, either chromatographically purified or unpurified as culture supernatant. In less than 18 h, 10 g L substrate was hydrolysed using supernatant containing 3 mg cutinase ICCG at 70 °C, pH 9 with terephthalic acid yields of up to 97.8%.

CONCLUSION

Extracellular production can reduce the cost of recombinant proteins by simplifying downstream processing. In the case of the PET-hydrolysing cutinase ICCG, it was even possible to avoid chromatographic purification and still achieve efficient PET hydrolysis. With such production approaches and their further optimisation, enzymatic recycling of PET can contribute to a more efficient and environmentally friendly solution to the industrial recycling of plastics in the future.

摘要

背景

随着全球人口的增长,塑料废物的产生和化石资源的枯竭是需要解决的主要问题,为此需要开发可持续和高效的塑料回收方法。生物催化回收作为传统工艺的一种有前途的生态替代方法,特别是在聚对苯二甲酸乙二醇酯 (PET) 的回收中。然而,对于将酶法 PET 回收转化为广泛使用的工业技术而言,经济高效地生产所涉及的生物催化剂至关重要。使用大肠杆菌或谷氨酸棒杆菌等已建立的生物体进行细胞外酶生产为降低下游加工成本提供了一种有前途的方法。

结果

在这项研究中,我们比较了经典分泌在谷氨酸棒杆菌和膜渗漏在大肠杆菌中重组蛋白的细胞外生产。在批式和补料分批培养中,在升规模上,观察到 ICCG 角质酶在大肠杆菌中的细胞外释放更优越。在没有信号肽的情况下,大肠杆菌中表达的角质酶可能与破坏膜的催化特性有关。关于诱导、表达温度和持续时间以及碳源的优化显著提高了细胞外角质酶的活性。特别是,在 30°C 下用乳糖作为碳源和诱导剂进行大肠杆菌的补料分批培养时,在 48 小时后获得了显著的细胞外活性(137U mL)和角质酶效价(660mg L)。与枯草芽孢杆菌或毕赤酵母等其他分泌性生物体获得的文献值相比,这一数值明显更高。无论是经过色谱纯化还是未经纯化的作为培养上清液,所产生的细胞外 ICCG 在外切 PET 纺织纤维水解中均表现出高效性。在不到 18 小时的时间内,使用含有 3mg 角质酶 ICCG 的上清液在 70°C、pH9 下,10g L 的底物在含有 3mg 角质酶 ICCG 的上清液中进行水解,对苯二甲酸的收率高达 97.8%。

结论

细胞外生产可以通过简化下游加工来降低重组蛋白的成本。在水解 PET 的角质酶 ICCG 的情况下,甚至可以避免色谱纯化,仍然可以实现高效的 PET 水解。通过这种生产方法及其进一步优化,酶法 PET 回收可以为未来塑料的工业回收提供更有效和更环保的解决方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/971f/11468216/953381f99122/12934_2024_2547_Fig1_HTML.jpg

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