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利用 M13 噬菌体对自模板超分子原纤维进行的组织工程进化设计。

Evolutionary Design of Self-Templated Supramolecular Fibrils Using M13 Bacteriophage for Tissue Engineering.

机构信息

Department of Bioengineering, University of California, Berkeley, California 94720, United States.

Biological Systems and Engineering, Lawrence Berkeley National Laboratory, Berkeley, California 94720, United States.

出版信息

Nano Lett. 2024 Aug 21;24(33):10388-10395. doi: 10.1021/acs.nanolett.4c03231. Epub 2024 Aug 8.

Abstract

Biomaterials in nature form hierarchical structures and functions across various length scales through binding and assembly processes. Inspired by nature, we developed hierarchically organized tissue engineering materials through evolutionary screening and self-templating assembly. Leveraging the M13 bacteriophage (phage), we employed an evolutionary selection process against hydroxyapatite (HA) to isolate HA-binding phage (HAPh). The newly discovered phage exhibits a bimodal length, comprising 950 nm and 240 nm, where the synergistic effect of these dual lengths promotes the formation of supramolecular fibrils with periodic banded structures. The assembled HAPh fibrils show the capability of HA mineralization and the directional growth of osteoblast cells. When applied to a dentin surface, it induces the regeneration of dentin-like tissue structures, showcasing its potential applications as a scaffold in tissue engineering. The integration of evolutionary screening and self-templating assembly holds promise for the future development of hierarchically organized tissue engineering materials.

摘要

自然界中的生物材料通过结合和组装过程在不同的长度尺度上形成层次结构和功能。受自然启发,我们通过进化筛选和自模板组装开发了层次组织的组织工程材料。利用 M13 噬菌体(噬菌体),我们采用了针对羟基磷灰石(HA)的进化选择过程来分离 HA 结合噬菌体(HAPh)。新发现的噬菌体表现出双峰长度,包括 950nm 和 240nm,这两种长度的协同作用促进了具有周期性带状结构的超分子原纤维的形成。组装的 HAPh 原纤维显示出 HA 矿化和成骨细胞定向生长的能力。当应用于牙本质表面时,它诱导牙本质样组织结构的再生,展示了其作为组织工程支架的潜在应用。进化筛选和自模板组装的结合为未来层次组织的组织工程材料的发展提供了希望。

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