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碳水化合物在农业生态系统中的流动:对碳水化合物合成和微生物转化的影响。

Carbohydrate flow through agricultural ecosystems: Implications for synthesis and microbial conversion of carbohydrates.

机构信息

Lethbridge Research and Development Centre, Agriculture and Agri-Food Canada, Lethbridge, AB, Canada.

Department of Biological Sciences, University of Lethbridge, Lethbridge, AB, Canada.

出版信息

Biotechnol Adv. 2023 Dec;69:108245. doi: 10.1016/j.biotechadv.2023.108245. Epub 2023 Aug 29.

Abstract

Carbohydrates are chemically and structurally diverse biomolecules, serving numerous and varied roles in agricultural ecosystems. Crops and horticulture products are inherent sources of carbohydrates that are consumed by humans and non-human animals alike; however carbohydrates are also present in other agricultural materials, such as soil and compost, human and animal tissues, milk and dairy products, and honey. The biosynthesis, modification, and flow of carbohydrates within and between agricultural ecosystems is intimately related with microbial communities that colonize and thrive within these environments. Recent advances in -omics techniques have ushered in a new era for microbial ecology by illuminating the functional potential for carbohydrate metabolism encoded within microbial genomes, while agricultural glycomics is providing fresh perspective on carbohydrate-microbe interactions and how they influence the flow of functionalized carbon. Indeed, carbohydrates and carbohydrate-active enzymes are interventions with unrealized potential for improving carbon sequestration, soil fertility and stability, developing alternatives to antimicrobials, and circular production systems. In this manner, glycomics represents a new frontier for carbohydrate-based biotechnological solutions for agricultural systems facing escalating challenges, such as the changing climate.

摘要

碳水化合物是具有化学和结构多样性的生物分子,在农业生态系统中发挥着多种多样的作用。农作物和园艺产品是人类和非人类动物共同消耗的碳水化合物的固有来源;然而,碳水化合物也存在于其他农业材料中,如土壤和堆肥、人和动物组织、牛奶和乳制品以及蜂蜜。碳水化合物在农业生态系统内部和之间的生物合成、修饰和流动与定植和在这些环境中茁壮成长的微生物群落密切相关。组学技术的最新进展通过阐明微生物基因组中编码的碳水化合物代谢功能潜力,为微生物生态学带来了一个新时代,而农业糖组学则为碳水化合物-微生物相互作用及其对功能化碳流动的影响提供了新的视角。事实上,碳水化合物和碳水化合物活性酶是具有未开发潜力的干预措施,可以提高碳固存、土壤肥力和稳定性,开发替代抗生素的方法,并实现循环生产系统。通过这种方式,糖组学代表了农业系统中基于碳水化合物的生物技术解决方案的一个新前沿,这些解决方案面临着日益严峻的挑战,如气候变化。

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