Aug 2026· Journal of Experimental Botany· 0 citations
Medicine
TL;DR
It is proposed that microbiome-driven hormonal regulation represents a key mechanism for plant adaptation to environmental stress and that its integration can offer promising opportunities to enhance resilience, reduce agrochemical dependence, and improve agricultural sustainability under climate change.
Abstract
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 and ecological gatekeepers that shape microbiome assembly and function. Phytohormones, such as auxins, cytokinins, gibberellins, abscisic acid, ethylene, salicylic acid, and jasmonates, dynamically regulate plant development, immunity, and rhizosphere chemistry, thereby influencing microbial recruitment and activity. In turn, plant-associated microbes actively modulate hormonal pathways through biosynthesis, degradation, and interference with signaling and transport processes, thereby reconfiguring plant physiological responses. Emerging evidence demonstrates that these interactions underpin microbial priming, enabling enhanced responsiveness to subsequent stresses without constitutive defense costs. Such primed states are frequently associated with epigenetic modifications, including DNA methylation and histone modifications, which contribute to stress memory and may persist across generations. We propose that microbiome-driven hormonal regulation represents a key mechanism for plant adaptation to environmental stress and that its integration can offer promising opportunities to enhance resilience, reduce agrochemical dependence, and improve agricultural sustainability under climate change.
Plant immunity is orchestrated through an intricate network of signaling pathways that enables plants to perceive, respond to, and adapt to a wide range of biotic and abiotic challenges. Increasing evidence indicates that phytohormones not only regulate immune responses but also mediate dynamic interactions between pla...
This review synthesizes current insights into the molecular and physiological roles of phyto‐oxylipins, emphasizing their potential in integrating plant defense mechanisms to enhance crop productivity amid abiotic and biotic challenges.
S. Mansoor, Nabila Bettache, M. Altaf et al.· Physiologia Plantarum : An I...· 0 citations
: This review focuses on the synergistic roles of plant growth-promoting rhizobacteria (PGPR) and plant growth-promoting fungi (PGPF) in horticultural systems, highlighting their mechanisms from physiological functions to molecular regulation and community-level synergy. PGPR and PGPF enhance nutrient acquisition, modu...
Yu-Meng Zhao, J. Tao, Yu-Han Tang· Phyton· 0 citations
Plants continuously encounter a wide range of biotic and abiotic stresses that adversely affect their growth, development, and productivity. Because they are sessile, plants cannot escape these unfavorable conditions and therefore rely on a diverse array of morpho-physiological, biochemical, and molecular adaptations t...
Shiva Sai Prasad, A. Singh, P. Ramteke et al.· Frontiers in Plant Science· 0 citations
The interaction between plants and microbes is a complex network of signaling pathways that plays a pivotal role in plant health and resilience to environmental stressors. Recently, polyamines (PAs), including putrescine, spermidine, and spermine, have emerged as crucial mediators in the crosstalk between plants and mi...
Y. Rezaee Danesh, E. La Bella, C. Cannata et al.· Frontiers in Plant Science· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.