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Inside Arbuscular Mycorrhizal Roots – Molecular Probes to Understand the Symbiosis

机译:丛枝菌根内部–理解共生的分子探针

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Associations between arbuscular mycorrhizal (AM) fungi and plants are an ancient and widespread plant microbe symbioses. Most land plants can associate with this specialized group of soil fungi (in the Glomeromycota), which enhance plant nutrient uptake in return for C derived from plant photosynthesis. Elucidating the mechanisms involved in the symbiosis between obligate symbionts such as AM fungi and plant roots is challenging because AM fungal transcripts in roots are in low abundance and reference genomes for the fungi have not been available. A deep sequencing metatranscriptomics approach was applied to a wild-type tomato and a tomato mutant (Solanum lycopersicum L. cultivar RioGrande 76R) incapable of supporting a functional AM symbiosis, revealing novel AM fungal and microbial transcripts expressed in colonized roots. We confirm transcripts known to be mycorrhiza associated and report the discovery of more than 500 AM fungal and novel plant transcripts associated with mycorrhizal tomato roots including putative Zn, Fe, aquaporin, and carbohydrate transporters as well as mycorrhizal-associated alternative gene splicing. This analysis provides a fundamental step toward identifying the molecular mechanisms of mineral and carbohydrate exchange during the symbiosis. The utility of this metatranscriptomic approach to explore an obligate biotrophic interaction is illustrated, especially as it relates to agriculturally relevant biological processes.
机译:丛枝菌根真菌(AM)真菌与植物之间的关联是古老且广泛存在的植物微生物共生体。大多数陆地植物都可以与土壤真菌这个特殊的群体(在Glomeromycota中)结合,从而增加植物养分的吸收,以换取植物光合作用产生的C。阐明诸如AM真菌和植物根等专性共生体之间共生的机制是具有挑战性的,因为根中AM真菌转录物的丰度很低,并且尚无真菌的参考基因组。深度测序元转录组学方法应用于野生型番茄和番茄突变体(Solanum lycopersicum L. cultivar RioGrande 76R),不能支持功能性AM共生,揭示了在定殖根中表达的新型AM真菌和微生物转录本。我们确认已知与菌根相关的转录本,并报告发现与菌根番茄根相关的超过500 AM真菌和新型植物转录本,包括推定的Zn,Fe,水通道蛋白和碳水化合物转运蛋白,以及与菌根相关的替代基因剪接。该分析为确定共生过程中矿物质和碳水化合物交换的分子机制提供了基础性步骤。说明了这种超转录组学方法探索专性生物营养相互作用的实用性,特别是它与农业相关的生物过程有关。

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