工程合成微生物群落重组植物群系,促进植物健康和生产力。

IF 4 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Anwesha Sharma, Popy Bora
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引用次数: 0

摘要

全球农业正处于一个关键时刻,面临着维持粮食生产以满足快速增长的人口,同时减轻集约化农业对环境造成的后果的双重挑战。化肥和农药的过度使用加速了土壤退化、生物多样性丧失和生态失衡,威胁到长期生存能力。合成微生物群落(SynComs)已成为重塑植物-微生物相互作用的一种有前途的方法,为传统农用化学品提供了一种精确、可扩展和生态可持续的替代品。与自然形成并随环境条件变化的天然微生物群落不同,SynComs是由多种微生物菌株精心组装而成的联合体,这些微生物菌株因其互补功能、生态兼容性和在宿主或环境中发挥目标作用的能力而被选择。通过工程微生物的目标功能性状,SynComs增强营养吸收,加强植物防御,并加强抵御生物和非生物胁迫的能力。了解SynCom的设计,探索它们的组成,功能动力学和优化植物健康的机制对于有效的合成和应用至关重要,同时尖端的计算工具和基因组数据库可以实现微生物群落的精确工程。尽管具有变革潜力,但SynComs的大规模应用仍然受到与现场有效性、监管框架和微生物长期持久性相关的挑战的限制。必须通过跨学科研究和政策创新来解决这些障碍。随着环境微生物组朝着可持续发展的方向发展,在环境压力日益增加的时代,SynComs是改革农业实践、减少化学品依赖和确保全球粮食安全的关键。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Engineering synthetic microbial communities to restructure the phytobiome for plant health and productivity.

Global agriculture stands at a critical juncture, facing the dual challenge of sustaining food production for a rapidly growing population while mitigating the environmental consequences of intensive farming. The overuse of chemical fertilizers and pesticides has accelerated soil degradation, biodiversity loss, and ecological imbalances, threatening long-term viability. Synthetic microbial communities (SynComs) have emerged as a promising approach to reshape plant-microbe interactions, offering a precise, scalable, and ecologically sustainable alternative to conventional agrochemicals. Unlike native microbial communities, which form naturally and vary with environmental conditions, SynComs are deliberately assembled consortium of multiple microbial strains selected for their complementary functions, ecological compatibility, and ability to perform targeted roles within a host or environment. By engineering microbes with targeted functional traits, SynComs enhance nutrient assimilation, bolster plant defence, and fortify resilience against biotic and abiotic stresses. The understanding of SynCom design, exploring their composition, functional dynamics, and mechanisms for optimizing plant health is crucial for effective synthesis and application, alongside cutting-edge computational tools and genomic databases that enable precision engineering of microbial communities. Despite their transformative potential, large-scale application of SynComs remains constrained by challenges related to field efficacy, regulatory frameworks, and long-term microbial persistence. Addressing these barriers through interdisciplinary research and policy innovation is imperative. As environmental microbiome moves towards sustainability-driven solutions, SynComs hold the key to revolutionizing farming practices, reducing chemical dependence, and ensuring global food security in an era of mounting environmental stressors.

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来源期刊
World journal of microbiology & biotechnology
World journal of microbiology & biotechnology 工程技术-生物工程与应用微生物
CiteScore
6.30
自引率
2.40%
发文量
257
审稿时长
2.5 months
期刊介绍: World Journal of Microbiology and Biotechnology publishes research papers and review articles on all aspects of Microbiology and Microbial Biotechnology. Since its foundation, the Journal has provided a forum for research work directed toward finding microbiological and biotechnological solutions to global problems. As many of these problems, including crop productivity, public health and waste management, have major impacts in the developing world, the Journal especially reports on advances for and from developing regions. Some topics are not within the scope of the Journal. Please do not submit your manuscript if it falls into one of the following categories: · Virology · Simple isolation of microbes from local sources · Simple descriptions of an environment or reports on a procedure · Veterinary, agricultural and clinical topics in which the main focus is not on a microorganism · Data reporting on host response to microbes · Optimization of a procedure · Description of the biological effects of not fully identified compounds or undefined extracts of natural origin · Data on not fully purified enzymes or procedures in which they are applied All articles published in the Journal are independently refereed.
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