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微波辅助生物功能化氧化锌纳米粒子的纳米引发作用,以增强[具体作物名称]在水分胁迫下的生长。 (注:原文中“in.”后面应该有具体作物名称等信息,但未完整给出)

Nanopriming Action of Microwave-Assisted Biofunctionalized ZnO Nanoparticles to Enhance the Growth under Moisture Stress in .

作者信息

Kalimuthu Raja, Meenachi Sellan Kumuthan, Antony Dhivya, Rajaprakasam Sudhagar, Chokkalingam Vanniarajan, Chidambaram Prabu, Kanagarajan Selvaraju

机构信息

Anbil Dharmalingam Agricultural College & Research Institute, TNAU, Trichy 620027, Tamil Nadu, India.

Department of Nano Science & Technology, TNAU, Coimbatore 641003, India.

出版信息

ACS Omega. 2023 Jul 27;8(31):28143-28155. doi: 10.1021/acsomega.3c01329. eCollection 2023 Aug 8.

Abstract

Bare and stabilized zinc oxide nanoparticles (ZnO NPs) were prepared by a microwave-assisted method and used as a priming agent to improve the morphological, physiological, and biochemical quality of . The priming action was made under normal and moisture stress conditions. A microwave reactor of 850 watts power was used to heat 30 mL of a nanocolloidal solution at 140 °C for 20 min. The stable spherical ZnO NPs at 50.4 mV with 28.2 nm particle size were generated and capped with different biomolecules, cysteine and PVA, to get biostabilized ZnO NPs at 48.8 and 108.5 nm with ζ potentials of -56.2 and -52.0 mV, respectively, holding distinct morphology. The nanopriming effect was studied in seeds for bare ZnO and capped ZnO NPs under normal and moisture stress environments. Cysteine-capped ZnO NPs at 250 ppm showed improved germination (90 and 76%), radicle growth (7.6 and 3.6 cm), seedling Vigor (3064 and 1816), dry matter production (145.06 and 96.92 mg/25 seedlings), and hydrolytic (α-amylase and protease) and antioxidant (peroxidase and superoxide dismutase) enzyme activity under normal and moisture stress conditions. The improved priming action of cysteine-capped ZnO NPs is due to increased cell elongation and cell division in the radicle. The uptake and translocation of ZnO NPs in the root are evidenced by the presence of an 11.4 ppm zinc level, which was also supported by EDAX and FITC labeling results.

摘要

通过微波辅助法制备了裸露的和稳定的氧化锌纳米颗粒(ZnO NPs),并将其用作引发剂以改善[具体对象]的形态、生理和生化质量。引发作用在正常和水分胁迫条件下进行。使用功率为850瓦的微波反应器在140℃下加热30 mL纳米胶体溶液20分钟。生成了粒径为28.2 nm、ζ电位为50.4 mV的稳定球形ZnO NPs,并用不同的生物分子(半胱氨酸和聚乙烯醇)进行包覆,得到粒径分别为48.8和108.5 nm、ζ电位分别为-56.2和-52.0 mV的生物稳定的ZnO NPs,具有不同的形态。研究了在正常和水分胁迫环境下,裸露的ZnO NPs和包覆的ZnO NPs对[具体种子]的纳米引发效果。250 ppm的半胱氨酸包覆的ZnO NPs在正常和水分胁迫条件下,发芽率提高(分别为90%和76%)、胚根生长(分别为7.6和3.6 cm)、幼苗活力(分别为3064和1816)、干物质产量(分别为145.06和96.92 mg/25株幼苗)以及水解酶(α-淀粉酶和蛋白酶)和抗氧化酶(过氧化物酶和超氧化物歧化酶)活性均有所提高。半胱氨酸包覆的ZnO NPs引发作用的改善归因于胚根中细胞伸长和细胞分裂的增加。根中ZnO NPs的吸收和转运通过11.4 ppm的锌含量得以证明,能量散射X射线光谱(EDAX)和异硫氰酸荧光素(FITC)标记结果也支持了这一点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ae51/10413846/c8703395e672/ao3c01329_0002.jpg

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