Department of Forest Mycology and Plant Pathology, Uppsala BioCenter, SLU, SE-75007, Uppsala, Sweden.
The Bashan Institute of Science 1730 Post Oak Court, Auburn, AL, 36830, USA.
Sci Rep. 2018 Jan 12;8(1):617. doi: 10.1038/s41598-017-18939-x.
A novel use of nanotitania (TNs) as agents in the nanointerface interaction between plants and colonization of growth promoting rhizobacteria (PGPR) is presented. The effectiveness of PGPRs is related to the effectiveness of the technology used for their formulation. TNs produced by the Captigel patented SolGel approach, characterized by the transmission and scanning electron microscopy were used for formulation of the harsh environment PGPR strains. Changes in the biomass of wheat seedlings and in the density of single and double inoculants with and without TNs were monitored during two weeks of stress induced by drought salt and by the pathogen Fusarium culmorum. We show that double inoculants with TNs can attach stably to plant roots. Regression analysis indicates that there is a positive interaction between seedling biomass and TN-treated second inoculant colonization. We conclude that TN treatment provides an effectual platform for PGPR rational application via design of root microbial community. Our studies illustrate the importance of considering natural soil nanoparticles for PGPR application and thereby may explain the generally observed inconsistent behavior of PGPRs in the field. These new advancements importantly contribute towards solving food security issues in changing climates. The model systems established here provide a basis for new PGPR nanomaterials research.
提出了一种将纳米二氧化钛(TNs)作为植物与促生根际细菌(PGPR)定植的纳米界面相互作用的新型制剂。PGPR 的有效性与用于其配方的技术的有效性有关。使用 Captigel 专利 SolGel 方法生产的 TNs 通过透射电子显微镜和扫描电子显微镜进行了表征,用于配制恶劣环境的 PGPR 菌株。在干旱盐和病原体镰刀菌引起的两周胁迫期间,监测了小麦幼苗生物量的变化,以及有无 TNs 的单接种剂和双接种剂的密度变化。我们表明,带 TNs 的双接种剂可以稳定地附着在植物根系上。回归分析表明,幼苗生物量与经 TN 处理的第二接种剂定殖之间存在正相互作用。我们得出结论,TN 处理为通过设计根际微生物群落来合理应用 PGPR 提供了一个有效的平台。我们的研究表明,考虑将天然土壤纳米颗粒用于 PGPR 应用的重要性,从而可以解释通常观察到的 PGPR 在田间不一致的行为。这些新的进展重要地有助于解决气候变化下的粮食安全问题。这里建立的模型系统为新的 PGPR 纳米材料研究提供了基础。