Tan Shih-I, Liu Zijun, Tran Vinh Gia, Martin Teresa Anne, Zhao Huimin
Department of Chemical and Biomolecular Engineering, University of Illinois Urbana-Champaign, Urbana, IL, 61801, United States; DOE Center for Advanced Bioenergy and Bioproducts Innovation, University of Illinois Urbana-Champaign, Urbana, IL, 61801, United States.
Department of Chemical and Biomolecular Engineering, University of Illinois Urbana-Champaign, Urbana, IL, 61801, United States; DOE Center for Advanced Bioenergy and Bioproducts Innovation, University of Illinois Urbana-Champaign, Urbana, IL, 61801, United States; Departments of Chemistry, Biochemistry, and Bioengineering, University of Illinois Urbana-Champaign, Urbana, IL, 61801, United States.
Metab Eng. 2025 May;89:12-21. doi: 10.1016/j.ymben.2025.02.003. Epub 2025 Feb 13.
Driven by the urgent need to reduce the reliance on fossil fuels and mitigate environmental impacts, microbial cell factories capable of producing value-added products from renewable resources have gained significant attention over the past few decades. Notably, non-model yeasts with unique physiological characteristics have emerged as promising candidates for industrial applications, particularly for the production of organic acids. Among them, Issatchenkia orientalis stands out for its exceptional natural tolerance to low pH and high osmotic pressure, traits that are critical for overcoming the limitations of conventional microbial organisms. The acid tolerance of I. orientalis enables organic acid production under low pH conditions, bypassing the need for expensive neutral pH control typically required in conventional processes. Organic acids produced by I. orientalis, such as lactic acid, succinic acid, and itaconic acid, are widely used as building blocks for bioplastics, food additives, and pharmaceuticals. This review summarizes the key findings from systems biology studies on I. orientalis over the past two decades, providing insights into its unique metabolic and physiological traits. Advances in genetic tool development for this non-model yeast are also discussed, enabling targeted metabolic engineering to enhance its production capabilities. Additionally, case studies are highlighted to illustrate the potential of I. orientalis as a platform organism. Finally, the remaining challenges and future directions are addressed to further develop I. orientalis into a robust and versatile microbial cell factory for sustainable biomanufacturing.
在减少对化石燃料的依赖并减轻环境影响的迫切需求推动下,能够利用可再生资源生产增值产品的微生物细胞工厂在过去几十年中受到了广泛关注。值得注意的是,具有独特生理特性的非模式酵母已成为工业应用的有前途的候选者,特别是在有机酸生产方面。其中,东方伊萨酵母因其对低pH和高渗透压具有出色的天然耐受性而脱颖而出,这些特性对于克服传统微生物的局限性至关重要。东方伊萨酵母的耐酸性使其能够在低pH条件下生产有机酸,从而无需传统工艺中通常所需的昂贵的中性pH控制。东方伊萨酵母产生的有机酸,如乳酸、琥珀酸和衣康酸,被广泛用作生物塑料、食品添加剂和药物的原料。本文综述了过去二十年中对东方伊萨酵母进行系统生物学研究的主要发现,深入了解其独特的代谢和生理特性。还讨论了这种非模式酵母遗传工具开发的进展,从而实现有针对性的代谢工程以提高其生产能力。此外,突出了案例研究以说明东方伊萨酵母作为平台生物的潜力。最后,阐述了剩余的挑战和未来方向,以进一步将东方伊萨酵母发展成为用于可持续生物制造的强大且通用的微生物细胞工厂。