Root transcriptomic provides insights on molecular mechanisms involved in the tolerance to water deficit in Pisum sativum inoculated with Pseudomonas sp.

被引:1
|
作者
Schillaci, Martino [1 ]
Zampieri, Elisa [1 ]
Brunetti, Cecilia [2 ]
Gori, Antonella [3 ]
Sillo, Fabiano [1 ]
机构
[1] CNR, Inst Sustainable Plant Protect, Str Cacce 73, Turin, Italy
[2] CNR, Inst Sustainable Plant Protect, Via Madonna Piano 10, Sesto Fiorentino, Italy
[3] Univ Florence, Dept Agr Food Environm & Forestry DAGRI, I-50019 Florence, Italy
关键词
ABA; Pisum sativum; Pseudomonas; RNA-seq; Roots; Water deficiency; GENE-EXPRESSION; SOYBEAN SEEDLINGS; DROUGHT-TOLERANT; STRESS TOLERANCE; PROLINE; L; RECEPTORS; RESISTANCE; RESPONSES; GENOME;
D O I
10.1007/s00425-023-04310-0
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Drought already affects agriculture in large areas of the globe and, due to climate change, these areas are predicted to become increasingly unsuitable for agriculture. For several years, plant growth-promoting bacteria (PGPB) have been used to improve legume yields, but many aspects of this interaction are still unclear. To elucidate the mechanisms through which root-associated PGPB can promote plant growth in dry environments, we investigated the response of pea plants inoculated with a potentially beneficial Pseudomonas strain (PK6) and subjected to two different water regimes. Combined biometric, biochemical, and root RNA-seq analyses revealed that PK6 improved pea growth specifically under water deficit, as inoculated plants showed an increased biomass, larger leaves, and longer roots. Abscisic acid (ABA) and proline quantification, together with the transcriptome analysis, suggested that PK6-inoculated plant response to water deficit was more diversified compared to non-inoculated plants, involving alternative metabolic pathways for the detoxification of reactive oxygen species (ROS) and the preservation of the ABA stress signaling pathway. We suggest that the metabolic response of PK6-inoculated plants was more effective in their adaptation to water deprivation, leading to their improved biometric traits. Besides confirming the positive role that PGPB can have in the growth of a legume crop under adverse conditions, this study offers novel information on the mechanisms regulating plant-bacteria interaction under varying water availability. These mechanisms and the involved genes could be exploited in the future for the development of legume varieties, which can profitably grow in dry climates.
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页数:16
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