转基因植物中微生物介导的快速表型转移。

IF 2.3 4区 环境科学与生态学 Q3 ENVIRONMENTAL SCIENCES
Ferran Garcia-Pichel, Júlia Farias, Vanessa Fernandes, Daniel Roush, Tami L Swenson, Suzanne M Kosina, Trent R Northen, Huansheng Cao, Samual Jaunin, Raju Kandel, Roberto Gaxiola
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引用次数: 0

摘要

有机体基因的表达决定了它在任何特定环境下的特性。在这项研究中,我们证明了转基因拟南芥植物的表型性状,旨在提高营养效率和产量,可以自然和容易地转移到邻近的野生型植物。我们的研究结果表明,转基因植物显著影响其根相关微生物组(RAM)的种群、组成和功能性状,导致与野生型植物相比,无论土壤类型如何,转基因植物都具有更大的种群,具有独特的组成和更高的功能潜力。这种现象似乎源于代谢物渗出模式的改变,从而促进了根系的补充。值得注意的是,RAM起着双重作用:它不仅有助于转基因植物的健壮表型,而且促进这些性状向邻近野生型植物的转移。在将野生型植物移植到转基因植物中,我们观察到转基因样表型的诱导。宏基因组和成分分析表明,这种转移与2,3-丁二醇(2,3- bd)发酵细菌的增加有关。此外,仅暴露于2,3- bd就足以在野生型植物中引发转基因表型。这些结果表明,植物组织外的因素,如根相关细菌及其挥发性代谢产物,在植物表型向邻近植物的可转移性中起着至关重要的作用。我们的发现强调了在转基因生物背景下评估微生物组相互作用的重要性,并为可能减少对转基因依赖的替代农业实践开辟了新的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Swift microbiome-mediated phenotype transfer from transgenic plants.

The expression of an organism's genes determines its own characteristics in any given environment. In this study, we demonstrate that the phenotypic traits of genetically modified transgenic Arabidopsis thaliana plants, designed for nutrient efficiency and enhanced yield, can be naturally and readily transferred to neighboring wild-type plants. Our findings reveal that the transgenic plants significantly influence the populational, compositional, and functional traits of their root-associated microbiome (RAM), resulting in a larger population, with distinct composition and high functional potential compared to wild-type plants, regardless of soil type. This phenomenon appears to stem from altered metabolite exudation patterns, which enhance root recruitment. Notably, the RAM plays a dual role: it not only contributes to the robust phenotype of the transgenic plants but also facilitates the transfer of these traits to adjacent wild-type plants. Upon transplanting wild-type plants into the presence of transgenics, we observed the induction of transgenic-like phenotypes. Metagenomic and compositional analyses indicate that this transfer is linked to an increase in 2,3-butanediol (2,3-BD) fermenting bacteria. Furthermore, exposure to 2,3-BD alone was sufficient to elicit transgenic phenotypes in wild-type plants. These results suggest that factors external to plant tissues, such as root-associated bacteria and their volatile metabolic products, play a crucial role in the transferability of plant phenotypes to neighboring plants. Our findings underscore the importance of evaluating microbiome interactions in the context of transgenic organisms and open new avenues for alternative agricultural practices that may reduce reliance on genetic modification.

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来源期刊
Journal of environmental quality
Journal of environmental quality 环境科学-环境科学
CiteScore
4.90
自引率
8.30%
发文量
123
审稿时长
3 months
期刊介绍: Articles in JEQ cover various aspects of anthropogenic impacts on the environment, including agricultural, terrestrial, atmospheric, and aquatic systems, with emphasis on the understanding of underlying processes. To be acceptable for consideration in JEQ, a manuscript must make a significant contribution to the advancement of knowledge or toward a better understanding of existing concepts. The study should define principles of broad applicability, be related to problems over a sizable geographic area, or be of potential interest to a representative number of scientists. Emphasis is given to the understanding of underlying processes rather than to monitoring. Contributions are accepted from all disciplines for consideration by the editorial board. Manuscripts may be volunteered, invited, or coordinated as a special section or symposium.
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