Widespread horizontal gene transfer between plants and bacteria

IF 5.1 Q1 ECOLOGY ISME communications Pub Date : 2024-05-13 DOI:10.1093/ismeco/ycae073
Shelly Haimlich, Yulia Fridman, H. Khandal, S. Savaldi-Goldstein, Asaf Levy
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Abstract

Plants host a large array of commensal bacteria that interact with the host. The growth of both bacteria and plants is often dependent on nutrients derived from the cognate partners, and the bacteria fine-tune host immunity against pathogens. This ancient interaction is common in all studied land plants and is critical for proper plant health and development. We hypothesized that the spatial vicinity and the long-term relationships between plants and their microbiota may promote cross-kingdom horizontal gene transfer (HGT), a phenomenon that is relatively rare in nature. To test this hypothesis we analyzed the Arabidopsis thaliana genome and its extensively sequenced microbiome to detect events of horizontal transfer of full length genes that transferred between plants and bacteria. Interestingly, we detected 75 unique genes that were horizontally transferred between plants and bacteria. Plants and bacteria exchange in both directions genes that are enriched in carbohydrate metabolism functions, and bacteria transferred to plants genes that are enriched in auxin biosynthesis genes. Next we provided a proof of concept for the functional similarity between a horizontally transferred bacterial gene and its Arabidopsis homologue in planta. The Arabidopsis DET2 gene is essential for biosynthesis of the brassinosteroid phytohormones and loss-of-function of the gene leads to dwarfism. We found that expression of the DET2 homologue from Leifsonia bacteria of the Actinobacteria phylum in the Arabidopsis det2 background complements the mutant, and leads to normal plant growth. Together, these data suggest that cross-kingdom horizontal gene transfer events shape the metabolic capabilities and interactions between plants and bacteria.
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植物和细菌之间广泛的水平基因转移
植物寄生着大量与宿主相互作用的共生细菌。细菌和植物的生长通常都依赖于同源伙伴提供的养分,细菌还能微调宿主的免疫力,以抵御病原体。这种古老的相互作用在所有研究过的陆生植物中都很常见,对植物的正常健康和发育至关重要。我们假设,植物及其微生物群之间的空间邻近性和长期关系可能会促进跨领域水平基因转移(HGT),而这种现象在自然界中相对罕见。为了验证这一假设,我们分析了拟南芥基因组及其广泛测序的微生物组,以检测植物和细菌之间的全长基因水平转移事件。有趣的是,我们检测到 75 个独特的基因在植物和细菌之间进行了水平转移。植物和细菌双向交流了富含碳水化合物代谢功能的基因,细菌向植物转移了富含辅助素生物合成基因的基因。接下来,我们证明了横向转移的细菌基因与其拟南芥同源基因在植物体内的功能相似性。拟南芥的 DET2 基因对于黄铜类植物激素的生物合成至关重要,该基因功能缺失会导致矮小症。我们发现,在拟南芥 det2 背景下表达放线菌门 Leifsonia 细菌中的 DET2 同源物可补充突变体,并导致植物正常生长。这些数据共同表明,跨领域水平基因转移事件塑造了植物与细菌之间的代谢能力和相互作用。
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