Unveiling Potato Cultivars With Microbiome Interactive Traits for Sustainable Agricultural Production.

IF 6 1区 生物学 Q1 PLANT SCIENCES
Tianci Zhao, Stefanie N Vink, Xiu Jia, Alexander Erban, Stephanie Schaarschmidt, Joachim Kopka, Ellen Zuther, Krzysztof Treder, Dorota Michałowska, Rémy Guyoneaud, J Theo M Elzenga, Eléonore Attard, Joana Falcão Salles
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引用次数: 0

Abstract

Root traits significantly shape rhizosphere microbiomes, yet their interaction with microbes is often overlooked in plant breeding programs. Here, we propose that selecting modern cultivars based on microbiome interactive trait (MIT), such as root biomass, exudate patterns and the rhizosphere microbiome, can enhance agricultural sustainability by interacting effectively with soil microbiomes, which in turn, promotes plant growth and resistance to stress, thereby reducing reliance on synthetic crop protectants. Through a stepwise selection process (in silico and in vitro) that started with approximately 1000 potato genotypes, we chose 51 potato cultivars based on known phenotypical properties and distinct root exudate patterns. We conducted a greenhouse experiment to evaluate their capacity to interact with the soil microbiome and to assess their MIT scores. Our findings revealed that cultivars significantly influence plant growth, metabolite profiles, and rhizosphere fungal community composition. Moreover, we observed a positive correlation between microbial community diversity and root biomass. Additionally, leaf metabolites were correlated with rhizosphere bacterial composition, supporting the plant holobiont framework. Utilising z-scores, we aggregated all data related to plant growth, metabolomes, and microbiomes, creating a classification of 51 cultivars based on a gradient of MIT scores. By examining the distribution of low, intermediate, and high MIT, we identified a group of 11 potato cultivars suitable for further studies to assess their resilience and productivity under low-input production systems. This study provides an in-depth correlation between microbiome and several plant traits across 51 cultivars, offering tools to facilitate and expedite the incorporation of microbiome traits into breeding goals to support sustainable agriculture.

揭示具有微生物互作性状的马铃薯品种,促进农业可持续生产。
根系性状显著地塑造了根际微生物群,但它们与微生物的相互作用在植物育种计划中经常被忽视。在此,我们提出基于微生物组互作性状(MIT)(如根生物量、分泌物模式和根际微生物组)选择现代栽培品种,可以通过与土壤微生物组的有效互作来增强农业的可持续性,从而促进植物生长和抗胁迫,从而减少对合成作物保护剂的依赖。通过从大约1000个马铃薯基因型开始的逐步选择过程(在硅和体外),我们根据已知的表型特性和不同的根渗出模式选择了51个马铃薯品种。我们进行了一个温室实验来评估它们与土壤微生物群相互作用的能力,并评估它们的MIT分数。我们的研究结果表明,品种显著影响植物生长、代谢物谱和根际真菌群落组成。微生物群落多样性与根系生物量呈显著正相关。此外,叶片代谢物与根际细菌组成相关,支持植物全胞菌框架。利用z分数,我们汇总了与植物生长、代谢组和微生物组相关的所有数据,根据MIT分数的梯度创建了51个品种的分类。通过考察低、中、高MIT的分布,我们确定了11个适合进一步研究的马铃薯品种,以评估它们在低投入生产系统下的抗灾能力和生产力。该研究提供了51个品种中微生物组与几种植物性状之间的深入相关性,为促进和加快将微生物组性状纳入育种目标提供了工具,以支持可持续农业。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Plant, Cell & Environment
Plant, Cell & Environment 生物-植物科学
CiteScore
13.30
自引率
4.10%
发文量
253
审稿时长
1.8 months
期刊介绍: Plant, Cell & Environment is a premier plant science journal, offering valuable insights into plant responses to their environment. Committed to publishing high-quality theoretical and experimental research, the journal covers a broad spectrum of factors, spanning from molecular to community levels. Researchers exploring various aspects of plant biology, physiology, and ecology contribute to the journal's comprehensive understanding of plant-environment interactions.
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