It is suggested that metabolically altered bacterial states may be associated with quantitative differences in plant growth- and defense-associated transcriptional responses without altering their directional polarity, and support incorporating bacterial metabolic profiling alongside strain identity as a rational selection criterion for next-generation bioinoculant development in sustainable agriculture.
Abstract
Plant growth-promoting rhizobacteria (PGPR) enhance host fitness through phytohormone modulation, induced systemic resistance, and pathogen suppression, yet whether variation in bacterial metabolic state independently shapes plant transcriptional response pattern remains unresolved. Here, we compare genome-wide transcriptional responses of Nicotiana benthamiana to a characterized PGPR strain (JS) and a UV-induced mutant (MT) harboring mutations including frameshift disruptions affecting nadB and sacX, genes encoding enzymes involved in NAD⁺ biosynthesis and carbon catabolite regulation. MT-treated plants retained the directional framework of JS-induced transcriptional responses but exhibited attenuated amplitude and redistributed relative transcriptional contribution, consistent with preservation of transcriptional response directionality accompanied by reduced expression amplitude rather than qualitative regulatory replacement. JS exposure coordinated pathways associated with energy metabolism, terpenoid and phenylpropanoid biosynthesis, and plant-pathogen interaction, whereas MT redistributed metabolic emphasis toward carbon and lipid metabolism categories. Hormone-associated analyses revealed that JS promoted coordinated auxin-, gibberellin-, and jasmonate/ethylene-centered signaling, while MT exhibited differential salicylic acid- versus jasmonate-associated weighting, suggesting that bacterial metabolic configuration may contribute to variation in growth-defense hormonal balance. Transcription factor profiling identified reconfigured AP2/ERF, GRAS, Dof, and MADS-box family representation under MT, suggesting that metabolic perturbation is associated with altered representation of upstream regulatory components. Phenotypically, MT reduced shoot growth promotion while preserving root architecture and antifungal efficacy, revealing a functional decoupling between metabolically tunable growth-promoting outputs and resilient biocontrol traits. These findings suggest that metabolically altered bacterial states may be associated with quantitative differences in plant growth- and defense-associated transcriptional responses without altering their directional polarity, and support incorporating bacterial metabolic profiling alongside strain identity as a rational selection criterion for next-generation bioinoculant development in sustainable agriculture.
Rhizosphere-associated plant growth-promoting rhizobacteria (PGPR) critically enhance plant defense and growth. Our previous study identified Pseudomonas chlororaphis IRHB3 from the soybean rhizosphere and demonstrated its efficacy in suppressing soil-borne disease and promoting plant growth. However, the molecular mec...
Deng-Qin Wei, Ling Chen, Yu-Ping Li et al.· Plant Physiology· 0 citations
Plants continuously face fluctuating environmental conditions, requiring tightly coordinated regulatory systems to balance growth and stress responses. This review synthesizes current knowledge on phytohormones as central integrators of plant-microbiome interactions, highlighting their dual role as internal regulators...
A. S. F. Araujo, Ângela Celis de Almeida Lopes, L. Martins et al.· Journal of Experimental Bota...· 0 citations
It is suggested that StuPPO9 confers drought resilience through a multi-layered network involving optimized carbon allocation, reinforced cell wall integrity, and enhanced ROS scavenging capacity.
Ming-Kun Chi, Bo Liu, Heng-Zhao Yang et al.· Plants· 0 citations
Aphids are one of the important agricultural pests causing substantial yield losses in crops grown across the globe. Aphids are known to cause direct feeding damages and indirect losses due to sooty mold development and plant virus transmission. Plants respond to these attacks by mounting a complex defense response at...
V. Patil, Rizwana Rehsawla, Apurba K. Barman· Stress Biology· 0 citations
Plants establish intimate associations with rhizosphere microorganisms that profoundly influence their growth, development, and stress resilience. Among these, plant-growth-promoting rhizobacteria (PGPR) enhance nutrient acquisition, modulate phytohormone homeostasis and reshape root system architecture, thereby improv...
Victoria Berdion Gabarain, Ignacio Llamedo, P. D. Cáceres et al.· Plant physiology and biochem...· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.