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Jian-Ming Xie

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Review Open access Sep 2026

Arbuscular Mycorrhizal Fungi and Plant Resilience: Mechanisms of Drought and Salinity Stress Tolerance.

Terrestrial plants are frequently exposed to fluctuating abiotic stresses throughout their life cycle, and mycorrhizae can markedly enhance host plant resistance to such challenges. This review summarizes recent advances in our understanding of how arbuscular mycorrhizal fungi (AMF) enhance host plant tolerance through multiple mechanisms. AMF promote stress tolerance through diverse mechanisms, including nutrient solubilization, polyamine accumulation, reactive oxygen species scavenging, physiological improvements, maintenance of ultrastructural stability via membrane integrity, accumulation of osmolytes such as trehalose, proline, polyamine, and glycine betaine, and activation of antioxidant enzymes to alleviate oxidative stress. While substantial progress has been made, the underlying AMF-mediated stress tolerance mechanisms remain underexplored. Future research should focus on dissecting how signaling pathways interact to regulate gene expression in mycorrhizal plants and elucidating the complex regulatory networks operating at the plant-AMF interface. We also outline key research directions for clarifying plant-AMF interactions under stress conditions, as current research highlights the use of beneficial soil microbes to mitigate stress and enhance crop resilience.

Wen-Jing Rui, Jiangtao Du, Jing Li et al. · 0 citations
Open access Aug 2026

Comprehensive analysis of the effects of foliar application of the synthetic strigolactone analog GR24 during the growth period on postharvest quality and metabolic indicators of pak choi

Strigolactones (SLs) regulate plant growth and metabolism, but their concentration-dependent effects on leafy vegetable quality remain unclear. We investigated how the synthetic SL analog GR24 affects physiological and metabolic processes in pak choi (Brassica rapa subsp. chinensis). Mantel correlation analysis and partial least squares structural equation modeling (PLS-SEM) revealed distinct response patterns. The 1 μmol·L−1 treatment (T2) enhanced photosynthesis, carbon‑nitrogen assimilation, mineral accumulation, and GA3, ZT, ABA, and JA levels, whereas the 10 μmol·L−1 treatment (T3) promoted carotenoid and phenolic accumulation, including rutin, ferulic acid, and caffeic acid. Multivariate analysis linked phenolic acid accumulation mainly to nitrogen and amino acid metabolism, with additional associations with P status. Overall, T2 broadly enhanced primary metabolism and nutrition, whereas T3 favored secondary and antioxidant-related metabolism, providing a framework for optimizing GR24 application in high-quality leafy vegetable production.

Yufeng Ma, Qitong Cai, Cheng Wang et al. · 0 citations

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