School of Pharmacy and Biomedical Sciences, University of Portsmouth, St Michael's Building, White Swan Road, Portsmouth, PO1 2DT, UK.
Centre for Enzyme Innovation, University of Portsmouth, Portsmouth, PO1 2DT, UK.
Nat Commun. 2022 Jul 7;13(1):3753. doi: 10.1038/s41467-022-31139-0.
The biomaterial with the highest known tensile strength is a unique composite of chitin and goethite (α-FeO(OH)) present in teeth from the Common Limpet (Patella vulgata). A biomimetic based on limpet tooth, with corresponding high-performance mechanical properties is highly desirable. Here we report on the replication of limpet tooth developmental processes ex vivo, where isolated limpet tissue and cells in culture generate new biomimetic structures. Transcriptomic analysis of each developmental stage of the radula, the organ from which limpet teeth originate, identifies sequential changes in expression of genes related to chitin and iron processing. We quantify iron and chitin metabolic processes in the radula and grow isolated radula cells in vitro. Bioinspired material can be developed with electrospun chitin mineralised by conditioned media from cultured radula cells. Our results inform molecular processes behind the generation of limpet tooth and establish a platform for development of a novel biomimetic with comparable properties.
已知拉伸强度最高的生物材料是一种独特的甲壳素和针铁矿(α-FeO(OH))复合材料,存在于普通帽贝(Patella vulgata)的牙齿中。人们非常希望能够基于帽贝牙齿仿生制造出具有相应高性能机械性能的材料。在这里,我们报告了体外复制帽贝牙齿发育过程的情况,在培养过程中,分离的帽贝组织和细胞会产生新的仿生结构。对构成帽贝牙齿的器官——齿舌的每个发育阶段进行转录组分析,确定了与甲壳素和铁处理相关的基因表达的顺序变化。我们定量分析了齿舌中的铁和甲壳素代谢过程,并在体外培养分离的齿舌细胞。可以使用从培养的齿舌细胞的条件培养基矿化的静电纺丝壳聚糖来开发仿生材料。我们的研究结果为帽贝牙齿生成背后的分子过程提供了信息,并为开发具有类似性能的新型仿生材料建立了平台。