4.4 Article

Alterations in the root phenylpropanoid pathway and root-shoot vessel system as main determinants of the drought tolerance of a soybean genotype

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SPRINGER
DOI: 10.1007/s12298-023-01307-7

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Water use efficiency; Grafting assays; Phytohormones; Proteome; Phosphoproteome; Xylem caliber

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Climate change increases precipitation variability, especially in savanna environments. We conducted a study comparing the molecular and physiological parameters between drought-tolerant and sensitive genotypes to understand the mechanisms of drought tolerance. Our findings suggest alterations in the root-shoot system, including water absorption capacity, hormone levels, proteomic profiles, and phenylpropanoid pathways, play crucial roles in promoting drought tolerance. Additionally, we found that the root system has a more significant impact on drought tolerance than shoots. This study provides a comprehensive overview of the genetic, molecular, and physiological traits involved in drought tolerance mechanisms.
Climate change increases precipitation variability, particularly in savanna environments. We have used integrative strategies to understand the molecular mechanisms of drought tolerance, which will be crucial for developing improved genotypes. The current study compares the molecular and physiological parameters between the drought-tolerant Embrapa 48 and the sensitive BR16 genotypes. We integrated the root-shoot system's transcriptome, proteome, and metabolome to understand drought tolerance. The results indicated that Embrapa 48 had a greater capacity for water absorption due to alterations in length and volume. Drought tolerance appears to be ABA-independent, and IAA levels in the leaves partially explain the higher root growth. Proteomic profiles revealed up-regulated proteins involved in glutamine biosynthesis and proteolysis, suggesting osmoprotection and explaining the larger root volume. Dysregulated proteins in the roots belong to the phenylpropanoid pathways. Additionally, PR-like proteins involved in the biosynthesis of phenolics may act to prevent oxidative stress and as a substrate for modifying cell walls. Thus, we concluded that alterations in the root-shoot conductive vessel system are critical in promoting drought tolerance. Moreover, photosynthetic parameters from reciprocal grafting experiments indicated that the root system is more essential than the shoots in the drought tolerance mechanism. Finally, we provided a comprehensive overview of the genetic, molecular, and physiological traits involved in drought tolerance mechanisms.

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