利用微生物纳米技术生产抗逆作物

Alisha Shaikh, Monica Jamla, Shrushti Joshi, Suraj Patil, Uttara Oak, Vinay Kumar
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引用次数: 0

摘要

微生物纳米技术包括利用细菌、真菌、藻类和病毒等微生物合成和/或功能化各种类型的纳米粒子。微生物纳米技术提供了一种简便、可靠和环保的纳米粒子合成方法,在农业、生物医药、食品工业、环境和电子等不同领域有着巨大的应用前景。在农业方面,环境变化对全球作物生产产生了巨大影响。非生物(干旱、高温、盐碱、重金属、寒冷、紫外线辐射)和生物胁迫因素(细菌、真菌、寄生虫、杂草、昆虫)正在对作物的生长和发育产生负面影响。纳米技术被视为提高作物产量和抗逆性的有效工具。据报道,微生物合成的纳米粒子可在胁迫条件下减轻胁迫影响并促进植物生长。目前正在成功探索利用微生物资源合成不同类型的纳米粒子,包括碳基、金属和金属氧化物纳米粒子,以赋予作物植物抗逆性,或开发抗逆智能作物,使其能够承受胁迫条件,而产量不会受到太大影响。本综述重点介绍目前对利用微生物及其资源进行纳米粒子生物合成的理解和最新进展。本综述介绍了探索微生物纳米技术方法的成功案例以及相关优势,以提高生物和非生物胁迫耐受性,从而生产出抗逆智能作物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Microbial nanotechnology for producing stress smart crops

Microbial nanotechnology includes the synthesis and/or functionalization of various types of nanoparticles using microorganisms such as bacteria, fungi, algae, and viruses. Microbial nanotechnology provides an easy, reliable and eco-friendly method for nanoparticle synthesis which has tremendous applications in different fields such as agriculture, biomedicines, the food industry, the environment, and electronics. While considering the agricultural aspects, the environmental changes have dramatically impacted crop production globally. Abiotic (drought, heat, salinity, heavy metals, cold, UV-radiations) and biotic stress factors (bacteria, fungi, parasites, weeds, insects) are negatively affecting crop growth and development. Nanotechnologies are looked upon as a potent tool for crop improvements targeted at yield enhancements and stress-tolerance. Microbially synthesized nanoparticles have been reported to alleviate the stress impacts and promote plant growth under stress conditions. Different types of nanoparticles including carbon-based, metal and metal oxide nanoparticles synthesized with the help of microbial resources are being successfully explored for conferring stress tolerance in crop plants, or in developing stress-smart crops that can withstand stressful conditions without much yield penalties. The current review focuses on the current understandings and updates on biosynthesis of nanoparticles using microorganisms and their resources. Success stories on exploring the microbial nanotechnological approaches and associated advantages for increasing biotic and abiotic stress tolerance and thus producing stress-smart crops are presented.

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