Nanotechnology at the Molecular Level

G. A. Nasir, Iman Abbas Khudhair, M. A. Najm, Huda Mahmood
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Abstract

Materials with external dimensions of one or more nanometers are referred to as nanomaterials. These structures result from a number of manufacturing processes. They are used in many industries, including pharmaceuticals, which is the most significant one. Numerous variables, including size, shape, surface morphology, crystallinity, solubility, etc., affect physical properties. While new physical and chemical processes are being created constantly, the biological method is the ideal strategy for synthesizing nanoparticles since it is straightforward, safe, and economical. Different kinds of nanoparticles can be metabolically synthesized by a wide variety of biological sources, including plants, bacteria, fungi, and yeast. There are many biomolecules, including proteins and coenzymes, that can change the metal salts into the necessary nanoparticles. There were numerous techniques for creating RNA nanoparticles. The first tactic makes use of the natural RNA nanoparticles' collection process. The second strategy entails extending the widely used DNA nanotechnology approach to the field of RNA; the third strategy uses computational methods to produce RNA nanoparticles; and the fourth strategy uses preexisting RNA structures or those with known properties as fundamental building blocks in the synthesis of RNA nanoparticles. The purpose of this paper is to give an overview of the significance of RNA nanotechnology, a novel idea in the field of nanotechnology.
纳米技术在分子水平
外部尺寸为一个或多个纳米的材料称为纳米材料。这些结构是由许多制造过程产生的。它们被用于许多行业,包括最重要的制药行业。许多变量,包括尺寸,形状,表面形貌,结晶度,溶解度等,影响物理性质。虽然新的物理和化学工艺不断被创造出来,但生物方法是合成纳米粒子的理想策略,因为它简单、安全、经济。不同种类的纳米颗粒可以通过多种生物来源代谢合成,包括植物、细菌、真菌和酵母。有许多生物分子,包括蛋白质和辅酶,可以把金属盐变成必要的纳米粒子。有许多制造RNA纳米颗粒的技术。第一种策略是利用天然RNA纳米颗粒的收集过程。第二个策略需要将广泛使用的DNA纳米技术方法扩展到RNA领域;第三种策略使用计算方法生产RNA纳米颗粒;第四种策略使用预先存在的RNA结构或已知性质的RNA结构作为合成RNA纳米颗粒的基本构建块。本文的目的是概述RNA纳米技术的意义,这是纳米技术领域的一个新思路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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