Jehle Franziska, Priemel Tobias, Strauss Mike, Fratzl Peter, Bertinetti Luca, Harrington Matthew J
Department of Chemistry, McGill University, 801 Sherbrooke Street West, Montreal, Quebec H3A 0B8, Canada.
Max Planck Institute of Colloids and Interfaces, Department of Biomaterials, Am Mühlenberg 1, 14476 Potsdam, Germany.
ACS Nano. 2021 Apr 27;15(4):6829-6838. doi: 10.1021/acsnano.0c10457. Epub 2021 Apr 1.
Protein-based biological materials are important role models for the design and fabrication of next generation advanced polymers. Marine mussels ( spp.) fabricate hierarchically structured collagenous fibers known as byssal threads bottom-up supramolecular assembly of fluid protein precursors. The high degree of structural organization in byssal threads is intimately linked to their exceptional toughness and self-healing capacity. Here, we investigated the hypothesis that multidomain collagen precursor proteins, known as preCols, are stored in secretory vesicles as a colloidal liquid crystal (LC) phase prior to thread self-assembly. Using advanced electron microscopy methods, including scanning TEM and FIB-SEM, we visualized the detailed smectic preCol LC nanostructure in 3D, including various LC defects, confirming this hypothesis and providing quantitative insights into the mesophase structure. In light of these findings, we performed an in-depth comparative analysis of preCol protein sequences from multiple Mytilid species revealing that the smectic organization arises from an evolutionarily conserved ABCBA pentablock copolymer-like primary structure based on demarcations in hydropathy and charge distribution as well as terminal pH-responsive domains that trigger fiber formation. These distilled supramolecular assembly principles provide inspiration and strategies for sustainable assembly of nanostructured polymeric materials for potential applications in engineering and biomedical applications.
基于蛋白质的生物材料是下一代先进聚合物设计与制造的重要典范。海洋贻贝(贻贝属)通过流体蛋白质前体的自下而上超分子组装制造出具有层次结构的胶原纤维,即足丝。足丝中高度的结构组织与其卓越的韧性和自我修复能力密切相关。在此,我们研究了一种假说,即在足丝自组装之前,被称为前胶原(preCols)的多结构域胶原前体蛋白以胶体液晶(LC)相的形式储存在分泌小泡中。使用先进的电子显微镜方法,包括扫描透射电子显微镜(TEM)和聚焦离子束扫描电子显微镜(FIB-SEM),我们以三维方式可视化了近晶前胶原LC纳米结构的详细情况,包括各种LC缺陷,证实了这一假说,并对中间相结构提供了定量见解。鉴于这些发现,我们对多种贻贝科物种的前胶原蛋白质序列进行了深入的比较分析,结果表明,近晶组织源于一种基于亲水性和电荷分布划分以及触发纤维形成的末端pH响应域的进化保守的ABCBA五嵌段共聚物样一级结构。这些提炼出的超分子组装原理为纳米结构聚合物材料的可持续组装提供了灵感和策略,有望应用于工程和生物医学领域。