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丝状真菌作为生产芳香族化合物的新兴细胞工厂。

Filamentous fungi as emerging cell factories for the production of aromatic compounds.

作者信息

Umashankar Pavithra, Nygård Yvonne

机构信息

Department of Life Sciences, Industrial Biotechnology, Chalmers University of Technology, Gothenburg, Sweden.

VTT Technical Research Centre of Finland Ltd., Espoo, Finland.

出版信息

Fungal Biol Biotechnol. 2024 Nov 14;11(1):19. doi: 10.1186/s40694-024-00188-z.

Abstract

Microbial production of aromatic compounds from renewable feedstocks has gained increasing interest as a means towards sustainable production of chemicals. The potential of filamentous fungi for production of aromatic compounds has nonetheless not yet been widely exploited. Notably, many filamentous fungi can naturally break down lignin and metabolize lignin-derived aromatic compounds. A few examples where a fungal cell factory, often of Aspergillus spp., is used to produce an aromatic compound, typically through the conversion of one compound to another, have already been reported. In this review, we summarize fungal biosynthesis of biotechnologically interesting aromatic compounds. The focus is on compounds produced from the shikimate pathway. Biorefinery-relevant efforts for valorizing residual biomass or lignin derived compounds are also discussed. The advancement in engineering tools combined with the increasing amounts of data supporting the discovery of new enzymes and development of new bioprocesses has led to an increased range of potential production hosts and products. This is expected to translate into a wider utilization of fungal cell factories for production of aromatic compounds.

摘要

利用可再生原料通过微生物生产芳香族化合物作为一种实现化学品可持续生产的手段,已越来越受到关注。然而,丝状真菌生产芳香族化合物的潜力尚未得到广泛开发。值得注意的是,许多丝状真菌能够自然分解木质素并代谢源自木质素的芳香族化合物。已经报道了一些利用真菌细胞工厂(通常是曲霉属菌种)生产芳香族化合物的例子,通常是通过将一种化合物转化为另一种化合物来实现。在这篇综述中,我们总结了具有生物技术意义的芳香族化合物的真菌生物合成。重点是莽草酸途径产生的化合物。还讨论了与生物炼制相关的将残余生物质或木质素衍生化合物增值的努力。工程工具的进步,加上支持发现新酶和开发新生物工艺的数据量不断增加,使得潜在的生产宿主和产品范围得以扩大。这有望转化为更广泛地利用真菌细胞工厂来生产芳香族化合物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f00b/11566741/cadcb76a54dc/40694_2024_188_Fig1_HTML.jpg

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