Quintas-Nunes Francisco, Brandão Pedro R, Barreto Crespo Maria T, Glick Bernard R, Nascimento Francisco X
iBET, Instituto de Biologia Experimental e Tecnológica, Apartado 12, 2781-901 Oeiras, Portugal.
Instituto de Tecnologia Química e Biológica António Xavier, Universidade Nova de Lisboa, Av. da República, 2780-157 Oeiras, Portugal.
Plants (Basel). 2023 Feb 1;12(3):651. doi: 10.3390/plants12030651.
Microalgae are important members of the soil and plant microbiomes, playing key roles in the maintenance of soil and plant health as well as in the promotion of plant growth. However, not much is understood regarding the potential of different microalgae strains in augmenting plant growth, or the mechanisms involved in such activities. In this work, the functional and genomic characterization of strain NFX-FRZ, a eukaryotic microalga belonging to the genus that was isolated from the rhizosphere of a plant growing in a natural environment in Portugal, is presented and analyzed. The results obtained demonstrate that strain NFX-FRZ (i) belongs to a novel species, termed sp. nov.; (ii) can effectively bind to tomato plant tissues and promote its growth; (iii) can synthesize a wide range of plant growth-promoting compounds, including phytohormones such as indole-3-acetic acid, salicylic acid, jasmonic acid and abscisic acid; and (iv) contains multiple genes involved in phytohormone biosynthesis and signaling. This study provides new insights regarding the relevance of eukaryotic microalgae as plant growth-promoting agents and helps to build a foundation for future studies regarding the origin and evolution of phytohormone biosynthesis and signaling, as well as other plant colonization and plant growth-promoting mechanisms in soil/plant-associated
微藻是土壤和植物微生物群落的重要成员,在维持土壤和植物健康以及促进植物生长方面发挥着关键作用。然而,对于不同微藻菌株在促进植物生长方面的潜力,或此类活动所涉及的机制,人们了解得并不多。在这项工作中,我们展示并分析了菌株NFX-FRZ的功能和基因组特征,该菌株是一种真核微藻,属于从葡萄牙自然环境中生长的植物根际分离出的一个属。获得的结果表明,菌株NFX-FRZ:(i)属于一个新物种,命名为 sp. nov.;(ii)能够有效地与番茄植株组织结合并促进其生长;(iii)能够合成多种促进植物生长的化合物,包括吲哚-3-乙酸、水杨酸、茉莉酸和脱落酸等植物激素;(iv)含有多个参与植物激素生物合成和信号传导的基因。这项研究为真核微藻作为植物生长促进剂的相关性提供了新的见解,并有助于为未来关于植物激素生物合成和信号传导的起源与进化,以及土壤/植物相关的其他植物定殖和植物生长促进机制的研究奠定基础。