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用于探索病毒衣壳结构的3D打印自组装螺旋模型。

3D-Printed Self-Assembling Helical Models for Exploring Viral Capsid Structures.

作者信息

Plante Donald, Unzen Keegan, Jungck John R

机构信息

Department of Applied Engineering & Sciences, University of New Hampshire at Manchester, Manchester, NH 03101, USA.

Departments of Biological Sciences and Mathematical Sciences, University of Delaware, Newark, DE 19716, USA.

出版信息

Biomimetics (Basel). 2024 Dec 16;9(12):763. doi: 10.3390/biomimetics9120763.

Abstract

This work presents a novel application of additive manufacturing in the design of self-assembling helical viral capsids using 3D-printed components. Expanding on prior work with 3D-printed self-assembling spherical capsids, we developed helical models that integrate geometric parameters and magnetic interactions to mimic key features of the assembly process of helical viral capsids. Using dual-helix phyllotactic patterns and simplified electrostatic simulations, these models consistently self-assemble into a cylinder, providing unique insights into the structural organization and stability of helical capsids. This accessible 3D-printed approach demonstrates the potential of additive manufacturing for research in mesoscale self-assembling models and in the education of complex biological assembly processes, promoting hands-on exploration of viral architecture and self-assembly mechanisms.

摘要

这项工作展示了增材制造在使用3D打印组件设计自组装螺旋病毒衣壳方面的新应用。在先前关于3D打印自组装球形衣壳的工作基础上进行拓展,我们开发了螺旋模型,该模型整合了几何参数和磁相互作用,以模拟螺旋病毒衣壳组装过程的关键特征。利用双螺旋叶序模式和简化的静电模拟,这些模型始终能自组装成一个圆柱体,为螺旋衣壳的结构组织和稳定性提供了独特的见解。这种易于实现的3D打印方法展示了增材制造在中尺度自组装模型研究以及复杂生物组装过程教育中的潜力,促进了对病毒结构和自组装机制的实践探索。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e07d/11673919/d5f6259c713c/biomimetics-09-00763-g001.jpg

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