Laboratorio de Bioingeniería, Facultad de Ingeniería y Ciencias, Universidad Adolfo Ibáñez, Santiago, Chile.
Center of Applied Ecology and Sustainability (CAPES), Santiago, Chile.
Environ Microbiol Rep. 2024 Aug;16(4):e70000. doi: 10.1111/1758-2229.70000.
Despite recent advances in understanding the role of microorganisms in plant holobiont metabolism, physiology, and fitness, several relevant questions are yet to be answered, with implications for ecology, evolution, and sustainable agriculture. This article explores some of these questions and discusses emerging research areas in plant microbiomes. Firstly, it emphasizes the need to move beyond taxonomic characterization towards understanding microbial functions within plant ecosystems. Secondly, controlling methodological biases and enhancing OMICS technologies' standardization is imperative for a deeper comprehension of plant-microbiota interactions. Furthermore, while plant microbiota research has primarily centred on bacteria and fungi, other microbial players such as archaea, viruses, and microeukaryotes have been largely overlooked. Emerging evidence highlights their presence and potential roles, underscoring the need for thorough assessments. Future research should aim to elucidate the ecological microbial interactions, their impact on plant performance, and how the plant context shapes microbial community dynamics. Finally, a discussion is provided on how the multiple layers of abiotic and biotic factors influencing the spatiotemporal dynamics of plant-microbiome systems require in-depth attention. Examples illustrate how synthetic communities and computational methods such as machine learning and artificial intelligence provide alternatives to tackle these challenges and analyse the plant holobiont as a complex system.
尽管人们对微生物在植物整体代谢、生理和适应中的作用有了新的认识,但仍有几个相关问题有待解答,这对生态学、进化和可持续农业都有影响。本文探讨了其中的一些问题,并讨论了植物微生物组的一些新兴研究领域。首先,它强调需要超越分类学特征,深入了解微生物在植物生态系统中的功能。其次,控制方法偏差和增强 OMICS 技术的标准化对于更深入地理解植物-微生物群相互作用至关重要。此外,虽然植物微生物群的研究主要集中在细菌和真菌上,但其他微生物如古菌、病毒和微型真核生物在很大程度上被忽视了。新出现的证据强调了它们的存在和潜在作用,这凸显了进行全面评估的必要性。未来的研究应旨在阐明生态微生物相互作用及其对植物性能的影响,以及植物环境如何塑造微生物群落动态。最后,讨论了影响植物-微生物组系统时空动态的多种非生物和生物因素需要深入关注。实例说明了合成群落和机器学习、人工智能等计算方法如何为解决这些挑战提供替代方案,并将植物整体作为一个复杂系统进行分析。