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◆ International journal of molecular sciences2026-08-05

Seed Biopriming for Climate Stress Resilience: Molecular, Physiological, and Epigenetic Mechanisms.

Iman Janah, Fatima-Ezzahra Soussani, Fatima-Zahra Akensous, Mohamed Ait-El-Mokhtar, Raja Ben-Laouane, Abdelilah Meddich, Marouane Baslam

一句话结论 · In one sentence

Seed biopriming involves applying beneficial microorganisms to seeds before sowing to enhance germination, seedling establishment, and stress resilience by inducing molecular reprogramming of the seed's metabolome, proteome, and epigenome. Seed biopriming promotes the accumulation of osmoprotectants, strengthens antioxidant defenses, enhances secondary metabolism, and generates priming-specific proteomic responses, leading to improved plant adaptation to climate stress. Seed biopriming shows promise for sustainable agriculture under climate change but faces challenges in field performance, formulation stability, and regulatory issues.

原始摘要(英文原文)· Original abstract
The mutualistic association between plants and their seed-associated microbiota has emerged as a key determinant of crop productivity, influencing plant nutrition, immunity, and tolerance to abiotic stress. Seed biopriming, the controlled application of beneficial microorganisms to seeds before sowing, exploits this interaction to enhance germination, seedling establishment, and stress resilience. Unlike conventional chemical priming, seed biopriming induces coordinated molecular reprogramming through changes in the seed metabolome, proteome, and epigenome. This review synthesizes current evidence demonstrating that seed biopriming promotes the accumulation of osmoprotectants, strengthens antioxidant defenses, enhances secondary metabolism, and generates priming-specific proteomic responses. We further examine how these changes interact with phytohormonal signaling networks and epigenetic mechanisms, including DNA methylation, histone modification, and small RNA-mediated regulation, to establish stress memory and improve plant adaptation. The review also discusses recent advances in synthetic microbial communities and nanobiotechnology for improving inoculant stability and efficacy. Despite promising progress, large-scale application remains constrained by inconsistent field performance, formulation stability, and regulatory challenges. Finally, we highlight the integration of multi-omics and artificial intelligence as promising approaches to improve mechanistic understanding, optimize microbial selection, and accelerate the development of reliable seed biopriming strategies for sustainable agriculture under climate change.
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Seed Biopriming for Climate Stress Resilience: Molecular, Physiological, and Epigenetic Mechanisms. — 科研速览 Science Skim