Sarver Easton, González-Morelo Kevin J, Christensen Katie G, Lefevers Hanna M, Corbin Kendall R
Department of Horticulture, Martin-Gatton College of Agriculture, Food and Environment, University of Kentucky, Lexington, KY, USA.
BMC Plant Biol. 2025 Jul 23;25(1):949. doi: 10.1186/s12870-025-06935-7.
The phyllosphere, which includes the surfaces of plant leaves and stems, is one of the largest and most diverse microbial habitats on Earth, yet it remains understudied in plant-microbe interaction research. Recent studies have highlighted the significant role of phyllosphere epiphytic bacteria in enhancing plant health. These microorganisms help improve nutrient uptake, defend against pathogens, and increase resilience to environmental stressors.
In recent years, phyllosphere-associated microorganisms have been assembled into synthetic microbial communities (SynComs) to replicate or augment natural microbial populations. This review examines the emerging field of phyllosphere-modulating synthetic communities (PMS) and their potential to enhance plant fitness and protection. We explore the latest advancements in the design of SynComs, with a focus on their agricultural applications. Despite promising results, a consensus is lacking on best practices for standardizing the development and application of PMS, with the complexity of PMS reported in the literature ranging from a few species to as many as 48 core phyla, including Proteobacteria, Firmicutes, and Actinobacteria.
While PMS present a promising alternative to conventional plant protection methods, their full potential remains underexplored. Continued efforts to standardize and refine phyllosphere-modulating SynComs are essential to establishing them as reliable biological tools for improving plant health.
叶际包括植物叶片和茎的表面,是地球上最大且最多样化的微生物栖息地之一,但在植物 - 微生物相互作用研究中仍未得到充分研究。最近的研究强调了叶际附生细菌在增强植物健康方面的重要作用。这些微生物有助于改善养分吸收、抵御病原体并提高对环境压力的恢复力。
近年来,与叶际相关的微生物已被组装成合成微生物群落(SynComs),以复制或增加自然微生物种群。本综述探讨了叶际调节合成群落(PMS)这一新兴领域及其增强植物适应性和保护能力的潜力。我们探索了合成群落设计的最新进展,重点关注其农业应用。尽管取得了有前景的结果,但在标准化PMS的开发和应用的最佳实践方面仍缺乏共识,文献中报道的PMS的复杂性从少数几个物种到多达48个核心门类不等,包括变形菌门、厚壁菌门和放线菌门。
虽然PMS是传统植物保护方法的一个有前景的替代方案,但其全部潜力仍未得到充分探索。持续努力标准化和完善叶际调节合成群落对于将它们确立为改善植物健康的可靠生物工具至关重要。