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Integrating epigenetic memory and plant growth-promoting rhizobacteria-mediated signaling for climate-resilient agriculture

R. Z. SayyedDepartment of Microbiology, PSGVP Mandal’s Shri S I Patil Arts, G B Patel Science and STKV Sangh Commerce College , Shahada 425409 ,Mohammed Al-zharaniIslamic UniversityMohammed MubarakBiology Department, College of Science, Imam Mohammad Ibn Saud Islamic University (IMSIU) , Riyadh 11623 ,Nicoleta Anca ŞuţanDepartment of Natural Sciences, National University of Science and Technology POLITEHNICA Bucharest, Pitești University Center , 1st Târgul din Vale Str., Pitești 110040 ,Dilfuza EgamberdievaNational University of Uzbekistan, Faculty of Biology , Tashkent 100174 ,Abhishek SharmaAmity Food and Agriculture Foundation, Amity University , Noida 201313 ,Nazih Y RebouhInstitute of Environmental Engineering, RUDN University , 6 Miklukho-Maklaya St.,117198 Moscow ,Jayanthi BarasarathiINTI International University, Faculty of Health and Life Sciences (FHLS) , Nilai, Negeri Sembilan, 71800 ,
2026en
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Abstract

AIMS: Climate change is shifting agriculture toward multifactorial abiotic stresses (drought, heat, and salinity). This study aims to characterize emergent, non-additive plant responses to combined stresses and to define the epigenetic and microbial frameworks that govern environmental memory and adaptive plasticity. METHODS AND RESULTS: We conducted a meta-synthesis of molecular and ecological studies, evaluating high-throughput data on DNA methylation, histone modifications, and ncRNA profiles. We further analyzed the plant holobiont to determine how rhizosphere and endosphere microbiota influence host stress imprinting. The analysis revealed that stress combinations trigger distinct transcriptomic and metabolic signatures, which are stabilized by an "epigenetic toolkit" such as RNA-directed DNA methylation and chromatin remodeling. Furthermore, plant-associated microbiota serve as an extrinsic regulatory layer, modulating host epigenetic states to prime plants for compound stress. While translational pathways such as epigenetic editing, Clustered Regularly Interspaced Short Palindromic Repeats (CRISPR) mediated epigenome editing, and microbiome engineering show promise, their field-scale stability remains context-dependent. CONCLUSION: Building climate resilience requires a paradigm shift from traditional single-trait breeding toward multi-scale regulatory approaches. Harnessing the synergy between the plant epigenome and the microbiome enables the development of 'primed' crop varieties-an integrated strategy vital for safeguarding global food security amid intensifying environmental volatility.

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