Amity Institute of Biotechnology, Amity University, Maharajpura, Dang, Gwalior, India, 474005.
Curr Microbiol. 2024 Mar 16;81(5):118. doi: 10.1007/s00284-024-03619-7.
Synthesizing nanoparticles through a green synthesis approach is common nowadays. Cyanobacteria have attained great importance in the field of biosynthesis of nanoparticles as there is no use of toxic chemicals as reducing or capping agents for the synthesis of metal oxide nanoparticles. Micronutrient-based nano-formulations have become a topic of great interest in recent times due to their various advantageous properties and applications in agriculture. The current study aims to exploit the potential cyanobacterial strains isolated from different locations such as freshwater and soil ecosystems. The potential cyanobacterial isolates were screened based on their multiple plant growth promoting (PGP) attributes such as Indol acetic acid (IAA) production, siderophores, and phosphate solubilization. After the screening of cyanobacteria based on multiple PGP activities, the cyanobacterial strain was identified at the species level as Pseudanabaena foetida RJ1, based on microscopy and molecular characterization using 16S rRNA gene sequencing. The cyanobacterial biomass extract and cell-free extracts are utilized for the synthesis of CuO micronutrient Nanoparticles (NPs). The cyanobacterial strain Pseudanabaena foetida RJ1 possesses plant growth-promoting (PGP) attributes that provide reduction and capping for CuO NPs. The synthesized NPs were characterized and subjected to make a nano-formulation, utilizing the cyanobacteria-mediated CuO NPs along with low-cost zeolite as an adsorbent. The application of cyanobacterial biomass extract and cell-free extract provided an excellent comparative aspect in terms of micronutrient NP synthesis. The NPs in the form of formulations were applied to germinated paddy seeds (Pusa Basmati -1509) with varying concentrations (5, 10, 15 mg/l). Effects of cyanobacteria based CuO NPs on hydroponically grown paddy crops were analyzed. The application of nano-formulations has shown a significant increase in plant growth promotion in rice plants under hydroponics conditions. There is no such type of comparative investigation reported earlier, and NPs of micronutrients can be utilized as a new economic nanofertilizer and can be applied to plants for their growth promotion.
通过绿色合成方法合成纳米粒子在当今很常见。由于在合成金属氧化物纳米粒子时不使用有毒化学物质作为还原剂或稳定剂,因此蓝藻在纳米粒子生物合成领域具有重要意义。基于微量营养素的纳米制剂因其在农业中的各种有利特性和应用而成为近年来的热门话题。本研究旨在利用从淡水和土壤生态系统等不同地点分离出的潜在蓝藻菌株。根据其多种植物生长促进 (PGP) 特性,如吲哚乙酸 (IAA) 生产、铁载体和磷酸盐溶解,对潜在的蓝藻分离物进行筛选。在基于多种 PGP 活性筛选蓝藻后,根据显微镜检查和基于 16S rRNA 基因测序的分子特征,将蓝藻菌株鉴定为 Pseudanabaena foetida RJ1。利用蓝藻生物量提取物和无细胞提取物合成 CuO 微量元素纳米颗粒 (NPs)。蓝藻菌株 Pseudanabaena foetida RJ1 具有植物生长促进 (PGP) 特性,可为 CuO NPs 提供还原和稳定作用。合成的 NPs 进行了表征,并制成纳米制剂,利用蓝藻介导的 CuO NPs 以及低成本沸石作为吸附剂。蓝藻生物质提取物和无细胞提取物的应用在微量元素 NP 合成方面提供了一个极好的比较方面。以不同浓度(5、10、15mg/l)将制剂形式的 NPs 施用于发芽的水稻种子(Pusa Basmati -1509)。分析了蓝藻基 CuO NPs 对水培水稻作物的影响。纳米制剂的应用表明,在水培条件下,水稻植株的生长促进作用显著增加。以前没有报道过这种类型的比较研究,微量元素的 NPs 可以用作新型经济纳米肥料,并可应用于植物以促进其生长。