Department of Plant Protection, Faculty of Agriculture, Vali-e-Asr University of Rafsanjan, Iran.
Department of Plant Protection, Faculty of Agriculture, Vali-e-Asr University of Rafsanjan, Iran.
Int J Biol Macromol. 2019 Jul 15;133:603-613. doi: 10.1016/j.ijbiomac.2019.04.071. Epub 2019 Apr 17.
Nanotechnology is one of the most fascinating sciences with a great potential to improve many agricultural products. Use of nanoparticles in plant disease management is a novel area which may prove very effective in future. Use of nanomaterials and biocompatible compounds in nano-encapsulation of antagonist bacteria is an important step in enhancing the efficiency of these agents in adverse environmental conditions. Two strains of Pseudomonas fluorescens (VUPF5 and T17-4) were used for alginate-gelatin nanocomposite beads with different concentrations of gelatin. The moisture content, swelling, and releasing of encapsulated viable bacteria was investigated in vitro and in vivo conditions. The results of FT-IR and X-ray diffraction analysis revealed that when gelatin was added into sodium alginate, electrostatic interaction occurred. The swelling and moisture content of nanocomposite beads grew with gelatin enhancement. The maximum encapsulation efficiency at the gelatin concentration of 1.5% in VUPF5 and T17-4 was 91.23% and 87.23%, respectively. Further, the greenhouse experiment showed that inoculation of potato with bacterial strains and nanocomposite beads of these strains reduced disease incidence. The encapsulation method described in this study can be effectively used to protect the plant probiotic bacteria inoculum from harmful conditions of the soil for its successful establishment in the rhizosphere.
纳米技术是最迷人的科学之一,具有很大的潜力来改善许多农产品。将纳米粒子用于植物疾病管理是一个新颖的领域,在未来可能非常有效。在纳米封装中使用纳米材料和生物相容性化合物来封装拮抗菌是提高这些剂在不利环境条件下效率的重要步骤。使用两种荧光假单胞菌(VUPF5 和 T17-4)来制备不同浓度明胶的海藻酸钠-明胶纳米复合珠。在体外和体内条件下研究了包封活菌的水分含量、溶胀和释放。FT-IR 和 X 射线衍射分析的结果表明,当明胶加入海藻酸钠时,会发生静电相互作用。纳米复合珠的溶胀和水分含量随明胶的增强而增加。在 VUPF5 和 T17-4 中明胶浓度为 1.5%时,最大包封效率分别为 91.23%和 87.23%。此外,温室实验表明,用细菌菌株和这些菌株的纳米复合珠接种马铃薯可降低发病率。本研究中描述的封装方法可有效用于保护植物益生菌接种物免受土壤中有害条件的影响,以使其在根际成功定植。