Garg Shilpa, Kim Minji, Romero-Suarez David
Technical University of Denmark, 2800 Kongens Lyngby, Denmark; University of Manchester, Manchester M13 9PT, United Kingdom.
Technical University of Denmark, 2800 Kongens Lyngby, Denmark.
Trends Microbiol. 2025 Mar;33(3):285-301. doi: 10.1016/j.tim.2024.11.001. Epub 2024 Dec 6.
Fungi are emerging as key organisms in tackling global challenges related to agricultural and food productivity, environmental sustainability, and climate change. This review delves into the transformative potential of fungal genomics and metabolic engineering, two forefront fields in modern biotechnology. Fungal genomics entails the thorough analysis and manipulation of fungal genetic material to enhance desirable traits, such as pest resistance, nutrient absorption, and stress tolerance. Metabolic engineering focuses on altering the biochemical pathways within fungi to optimize the production of valuable compounds, including biofuels, pharmaceuticals, and industrial enzymes. By artificial intelligence (AI)-driven integration of genetic and metabolic engineering techniques, we can harness the unique capabilities of both filamentous and mycorrhizal fungi to develop sustainable agricultural practices, enhance soil health, and promote ecosystem restoration. This review explores the current state of research, technological advancements, and practical applications, offering insights into scalability challenges on how integrative fungal genomics and metabolic engineering can deliver innovative solutions for a sustainable future.
真菌正逐渐成为应对与农业和粮食生产力、环境可持续性及气候变化相关的全球挑战的关键生物。本综述深入探讨了真菌基因组学和代谢工程这两个现代生物技术前沿领域的变革潜力。真菌基因组学需要对真菌遗传物质进行全面分析和操纵,以增强诸如抗虫性、养分吸收和胁迫耐受性等理想性状。代谢工程专注于改变真菌内部的生化途径,以优化包括生物燃料、药物和工业酶在内的有价值化合物的生产。通过人工智能驱动的遗传和代谢工程技术整合,我们可以利用丝状真菌和菌根真菌的独特能力,来发展可持续农业实践、改善土壤健康并促进生态系统恢复。本综述探讨了研究现状、技术进步和实际应用,深入了解了整合真菌基因组学和代谢工程在为可持续未来提供创新解决方案时所面临的可扩展性挑战。