通过蒸发诱导三维工艺获得基于手性 M13 噬菌体的螺旋混合纳米结构

Nanomaterials Pub Date : 2024-07-16 DOI:10.3390/nano14141208
Thanh Mien Nguyen, Sung-Jo Kim, Daegon Ryu, Jae Hun Chung, S. Lee, Sun-Hwi Hwang, Cheol Woong Choi, Jin‐Woo Oh
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引用次数: 0

摘要

使用具有手性的天然有机材料(如 M13 噬菌体)具有引人入胜的意义,尤其是在纳米技术领域。噬菌体的手性特性已在大量研究中得到证实,特别是在液晶相变分析中,开发出了具体的应用。然而,探索如何利用 M13 噬菌体作为模板,为光学和传感器应用创建手性纳米结构却面临着巨大挑战。在本研究中,通过蒸发诱导的三维(3D)打印过程,将 M13 噬菌体的手性与纳米粒子相结合,将其作为生成螺旋混合结构的宝贵工具。利用 M13 噬菌体的自组装特性,金属纳米粒子在 M13 噬菌体的影响下在半月板界面上被组织成螺旋链。研究表明,纳米颗粒的形状、噬菌体与纳米颗粒的比例以及拉伸速度等外部参数是影响螺旋纳米结构制造的关键因素。本研究旨在通过利用 M13 噬菌体的手性和操纵外部参数来控制所产生的混合结构的特性,从而探索手性纳米结构制造的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Helical Hybrid Nanostructure Based on Chiral M13 Bacteriophage via Evaporation-Induced Three-Dimensional Process
The use of naturally sourced organic materials with chirality, such as the M13 bacteriophage, holds intriguing implications, especially in the field of nanotechnology. The chirality properties of bacteriophages have been demonstrated through numerous studies, particularly in the analysis of liquid crystal phase transitions, developing specific applications. However, exploring the utilization of the M13 bacteriophage as a template for creating chiral nanostructures for optics and sensor applications comes with significant challenges. In this study, the chirality of the M13 bacteriophage was leveraged as a valuable tool for generating helical hybrid structures by combining it with nanoparticles through an evaporation-induced three-dimensional (3D) printing process. Utilizing on the self-assembly property of the M13 bacteriophage, metal nanoparticles were organized into a helical chain under the influence of the M13 bacteriophage at the meniscus interface. External parameters, including nanoparticle shape, the ratio between the bacteriophage and nanoparticles, and pulling speed, were demonstrated as crucial factors affecting the fabrication of helical nanostructures. This study aimed to explore the potential of chiral nanostructure fabrication by utilizing the chirality of the M13 bacteriophage and manipulating external parameters to control the properties of the resulting hybrid structures.
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