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微生物群落辅助育种以了解[具体情境中]品种依赖性组装 。 (你提供的原文似乎不完整,缺少具体的研究对象等关键信息)

Microbiome-Assisted Breeding to Understand Cultivar-Dependent Assembly in .

作者信息

Kusstatscher Peter, Adam Eveline, Wicaksono Wisnu Adi, Bernhart Maria, Olimi Expedito, Müller Henry, Berg Gabriele

机构信息

Institute of Environmental Biotechnology, Graz University of Technology, Graz, Austria.

Saatzucht Gleisdorf GmbH, Gleisdorf, Austria.

出版信息

Front Plant Sci. 2021 Apr 9;12:642027. doi: 10.3389/fpls.2021.642027. eCollection 2021.

Abstract

Recently, it was shown that long-term plant breeding does not only shape plant characteristics but also impacts plant-associated microbiota substantially. This requires a microbiome-integrative breeding approach, which was not yet shown. Here we investigate this for the Styrian oil pumpkin ( L. subsp. var. Greb.) by analyzing the microbiome of six genotypes (the complete pedigree of a three-way cross-hybrid, consisting of three inbred lines and one open pollinating cultivar) in the seed and rhizosphere as well as the progeny seeds. Using high-throughput amplicon sequencing targeting the 16S rRNA and the ITS1 genes, the bacterial and fungal microbiomes were accessed. Seeds were found to generally carry a significantly lower microbial diversity compared to the rhizosphere and soil as well as a different microbial composition, with an especially high fraction of (40-83%). Additionally, potential plant-beneficial bacterial taxa, including , , and , were found to be enriched in progeny seeds. Between genotypes, more substantial changes can be observed for seed microbiomes compared to the rhizosphere. Moreover, rhizosphere communities were assembled for the most part from soil. Interestingly, bacterial signatures are mainly linked from seed to seed, while fungal communities are shaped by the soil and rhizosphere. Our findings provide a deep look into the rhizosphere and seed microbiome assembly of pumpkin-associated communities and represent the first steps into microbiome-driven breeding for plant-beneficial microbes.

摘要

最近的研究表明,长期的植物育种不仅塑造了植物的特征,还对与植物相关的微生物群产生了重大影响。这就需要一种微生物群综合育种方法,但目前尚未得到验证。在这里,我们通过分析六个基因型(一个三系杂交种的完整谱系,由三个自交系和一个开放授粉品种组成)的种子、根际以及后代种子中的微生物群,对施蒂里亚油南瓜(L. subsp. var. Greb.)进行了研究。利用针对16S rRNA和ITS1基因的高通量扩增子测序技术,我们分析了细菌和真菌微生物群。结果发现,与根际和土壤相比,种子通常携带的微生物多样性显著较低,且微生物组成也不同,其中 (40 - 83%)的比例特别高。此外,在后代种子中发现了包括 、 和 在内的潜在植物有益细菌类群。与根际相比,不同基因型之间种子微生物群的变化更为显著。此外,根际群落大多是由土壤组装而成。有趣的是,细菌特征主要在种子之间传递,而真菌群落则受土壤和根际的影响。我们的研究结果深入了解了南瓜相关群落的根际和种子微生物群组装情况,并代表了微生物群驱动的植物有益微生物育种的第一步。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fffc/8063107/6bc942c15d40/fpls-12-642027-g001.jpg

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