Please use this identifier to cite or link to this item: https://dspace.ncfu.ru/handle/123456789/34194
Title: Molybdenum Trioxide Nanoparticles Enhance Wheat Tolerance to Salinity and Temperature Stress by Promoting Rhizobacterial Phytohormone Production and Preserving Photosynthetic Pigments
Authors: Nagdalian, A. A.
Нагдалян, А. А.
Rekhman, Z. A.
Рехман, З. А.
Askerova, A. S.
Аскерова, А. С.
Pirogov, M. A.
Пирогов, М. А.
Golik, D. B.
Голик, Д. Б.
Golik, A. B.
Голик, А. Б.
Blinov, A. V.
Блинов, А. В.
Keywords: Abiotic stress;Climate resilience;Gibberellic acid;Indole-3-acetic acid;Methylcellulose;Plant growth-promoting rhizobacteria;Seed nanopriming;Siderophores
Issue Date: 2026
Publisher: Springer
Citation: Nagdalian A., Rekhman Z., Askerova A., Pirogov M., Asyakina L., Serazetdinova Y., Golik D., Golik A., Blinov A. Molybdenum Trioxide Nanoparticles Enhance Wheat Tolerance to Salinity and Temperature Stress by Promoting Rhizobacterial Phytohormone Production and Preserving Photosynthetic Pigments // BioNanoScience. - 2026. - 16 (8). - art. no. 497. - DOI: 10.1007/s12668-026-02736-w
Series/Report no.: BioNanoScience
Abstract: Climate-driven soil salinization and temperature extremes increasingly threaten global wheat production, yet conventional mitigation strategies are limited by poor bioavailability and environmental trade-offs. This study synthesized molybdenum trioxide nanoparticles (MoO₃NPs) stabilized with four chemically distinct agents (amylopectin, methylcellulose, lysine, cocamidopropyl betaine) and systematically evaluated their stabilizer-dependent effects on a rhizobacterial consortium (Ensifer meliloti, E. mexicanus, Rhizobium tropici) and on wheat (Triticum aestivum) under salinity (-5% NaCl) and temperature (-10 °C to + 50 °C) stress. Density functional theory calculations revealed binding energies > 70 kcal/mol for all stabilizers, with methylcellulose (MC) showing optimal electronic coupling (η ≈ 0.07 eV). FTIR and SEM confirmed stabilizer-specific surface functionalization and morphology. MC-MoO3NPs uniquely enhanced bacterial growth and metabolite production, increasing indole-3-acetic acid by u to 95%, gibberellic acidby 139%, and siderophore by 25% without toxicity. Wheat seed priming with MC-MoO3NPs (1.0 µg/mL) significantly improved germination, stem length, biomass, and photosynthetic pigments (chlorophyll a/b, carotenoids) under stress conditions At 2.5% NaCl, treated plants sowed 55% longer stem and 90% higher biomass than controls; at -10 °C and + 50 °C, stem length increase by 125 and 83%, respectively. Correlation clustermaps confirmed tight coupling between preserved photosynthetic capacity and growth. MC-MoO3NPs could represent a sustainable nano-biostimulant for climate-resilient wheat production.
URI: https://dspace.ncfu.ru/handle/123456789/34194
Appears in Collections:Статьи, проиндексированные в SCOPUS, WOS

Files in This Item:
File Description SizeFormat 
scopusresults 4076.pdf
  Restricted Access
122.22 kBAdobe PDFView/Open
WoS 2375.pdf
  Restricted Access
112.34 kBAdobe PDFView/Open


Items in DSpace are protected by copyright, with all rights reserved, unless otherwise indicated.