Integrated omics approach reveals the molecular pathways activated in tomato by Kocuria rhizophila, a soil plant growth-promoting bacterium

生物化学 细菌 铁载体 次生代谢 新陈代谢 生物 氨基酸 化学 生物合成 基因 遗传学
作者
Antonio Mauceri,Guglielmo Puccio,Teresa Faddetta,Loredana Abbate,Giulia Polito,Ciro Caldiero,Giovanni Renzone,Margot Lo Pinto,Pasquale Alibrandi,Edoardo Vaccaro,Maria Rosa Abenavoli,Andrea Scaloni,Francesco Sunseri,Vincenzo Cavalieri,Antonio Palumbo Piccionello,Giuseppe Gallo,Francesco Mercati
出处
期刊:Plant Physiology and Biochemistry [Elsevier BV]
卷期号:210: 108609-108609 被引量:6
标识
DOI:10.1016/j.plaphy.2024.108609
摘要

Plant microbial biostimulants application has become a promising and eco-friendly agricultural strategy to improve crop yields, reducing chemical inputs for more sustainable cropping systems. The soil dwelling bacterium Kocuria rhizophila was previously characterized as Plant Growth Promoting Bacteria (PGPB) for its multiple PGP traits, such as indole-3-acetic acid production, phosphate solubilization capability and salt and drought stress tolerance. Here, we evaluated by a multi-omics approach, the PGP activity of K. rhizophila on tomato, revealing the molecular pathways by which it promotes plant growth. Transcriptomic analysis showed several up-regulated genes mainly related to amino acid metabolism, cell wall organization, lipid and secondary metabolism, together with a modulation in the DNA methylation profile, after PGPB inoculation. In agreement, proteins involved in photosynthesis, cell division, and plant growth were highly accumulated by K. rhizophila. Furthermore, "amino acid and peptides", "monosaccharides", and "TCA" classes of metabolites resulted the most affected by PGPB treatment, as well as dopamine, a catecholamine neurotransmitter mediating plant growth through S-adenosylmethionine decarboxylase (SAMDC), a gene enhancing the vegetative growth, up-regulated in tomato by K. rhizophila treatment. Interestingly, eight gene modules well correlated with differentially accumulated proteins (DAPs) and metabolites (DAMs), among which two modules showed the highest correlation with nine proteins, including a nucleoside diphosphate kinase, and cytosolic ascorbate peroxidase, as well as with several amino acids and metabolites involved in TCA cycle. Overall, our findings highlighted that sugars and amino acids, energy regulators, involved in tomato plant growth, were strongly modulated by the K. rhizophila-plant interaction.

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