Physiology-informed use of Cupriavidus necator in biomanufacturing: a review of advances and challenges.

IF 4.9 2区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Microbial Cell Factories Pub Date : 2025-01-22 DOI:10.1186/s12934-025-02643-x
Michael Weldon, Christian Euler
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Abstract

Biomanufacturing offers a potentially sustainable alternative to deriving chemicals from fossil fuels. However, traditional biomanufacturing, which uses sugars as feedstocks, competes with food production and yields unfavourable land use changes, so more sustainable options are necessary. Cupriavidus necator is a chemolithoautotrophic bacterium capable of consuming carbon dioxide and hydrogen as sole carbon and energy sources, or formate as the source of both. This autotrophic metabolism potentially makes chemical production using C. necator sustainable and attractive for biomanufacturing. Additionally, C. necator natively fixes carbon in the form of poly-3-hydroxybutyrate, which can be processed to make biodegradable plastic. Recent progress in development of modelling and synthetic biology tools have made C. necator much more usable as a biomanufacturing chassis. However, these tools and applications are often limited by a lack of consideration for the unique physiology and metabolic features of C. necator. As such, further work is required to better understand the intricate mechanisms that allow it to prioritise generalization over specialization. In this review, progress toward physiology-informed engineering of C. necator across several dimensions is critically discussed, and recommendations for moving toward a physiological approach are presented. Arguments for metabolic specialization, more focus on autotrophic fermentation, C. necator-specific synthetic biology tools, and modelling that goes beyond constraints are presented based on analysis of existing literature.

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在生物制造中使用铜的生理学信息:进展和挑战的回顾。
生物制造为从化石燃料中提取化学物质提供了一种潜在的可持续替代方案。然而,使用糖作为原料的传统生物制造与粮食生产竞争,并产生不利的土地利用变化,因此需要更可持续的选择。necator Cupriavidus necator是一种化学化石自养细菌,能够消耗二氧化碳和氢作为唯一的碳和能量来源,或将甲酸作为两者的来源。这种自养代谢可能使C. necator的化学生产具有可持续性和生物制造的吸引力。此外,C. necator以聚3-羟基丁酸酯的形式天然固定碳,可以加工成可生物降解的塑料。建模和合成生物学工具的最新进展使C. necator更适合作为生物制造的底盘。然而,由于缺乏对C. necator独特的生理和代谢特征的考虑,这些工具和应用往往受到限制。因此,需要进一步的工作来更好地理解复杂的机制,使其能够优先考虑泛化而不是专门化。在这篇综述中,从几个方面对C. necator的生理学工程进展进行了批判性的讨论,并提出了朝着生理学方法发展的建议。基于对现有文献的分析,提出了代谢专业化、更多关注自养发酵、C. necator特异性合成生物学工具和超越约束的建模的论点。
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来源期刊
Microbial Cell Factories
Microbial Cell Factories 工程技术-生物工程与应用微生物
CiteScore
9.30
自引率
4.70%
发文量
235
审稿时长
2.3 months
期刊介绍: Microbial Cell Factories is an open access peer-reviewed journal that covers any topic related to the development, use and investigation of microbial cells as producers of recombinant proteins and natural products, or as catalyzers of biological transformations of industrial interest. Microbial Cell Factories is the world leading, primary research journal fully focusing on Applied Microbiology. The journal is divided into the following editorial sections: -Metabolic engineering -Synthetic biology -Whole-cell biocatalysis -Microbial regulations -Recombinant protein production/bioprocessing -Production of natural compounds -Systems biology of cell factories -Microbial production processes -Cell-free systems
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