Sung Baeckkyoung, Kim Min-Ho
Liquid Crystal Institute and Chemical Physics Interdisciplinary Program, Kent State University, Kent, OH 44242, USA.
Department of Biological Sciences, Kent State University, Kent, OH 44242, USA.
Beilstein J Nanotechnol. 2018 Jan 18;9:205-215. doi: 10.3762/bjnano.9.22. eCollection 2018.
Hierarchical orders are found throughout all levels of biosystems, from simple biopolymers, subcellular organelles, single cells, and macroscopic tissues to bulky organs. Especially, biological tissues and cells have long been known to exhibit liquid crystal (LC) orders or their structural analogues. Inspired by those native architectures, there has recently been increased interest in research for engineering nanobiomaterials by incorporating LC templates and scaffolds. In this review, we introduce and correlate diverse LC nanoarchitectures with their biological functionalities, in the context of tissue engineering applications. In particular, the tissue-mimicking LC materials with different LC phases and the regenerative potential of hard and soft tissues are summarized. In addition, the multifaceted aspects of LC architectures for developing tissue-engineered products are envisaged. Lastly, a perspective on the opportunities and challenges for applying LC nanoarchitectures in tissue engineering fields is discussed.
分级秩序存在于生物系统的各个层面,从简单的生物聚合物、亚细胞器、单细胞、宏观组织到庞大的器官。特别是,生物组织和细胞长期以来就被认为具有液晶(LC)秩序或其结构类似物。受这些天然结构的启发,最近通过纳入液晶模板和支架来设计纳米生物材料的研究兴趣日益浓厚。在这篇综述中,我们在组织工程应用的背景下,介绍并关联了不同的液晶纳米结构及其生物学功能。特别总结了具有不同液晶相的组织模拟液晶材料以及硬组织和软组织的再生潜力。此外,还设想了用于开发组织工程产品的液晶结构的多方面情况。最后,讨论了在组织工程领域应用液晶纳米结构的机遇和挑战。