Department of Materials Science and Engineering, University of Washington, Seattle, WA 98195.
Physical Sciences Division, Physical and Computational Sciences Directorate, Pacific Northwest National Laboratory, Richland, WA 99352.
Proc Natl Acad Sci U S A. 2022 May 10;119(19):e2106965119. doi: 10.1073/pnas.2106965119. Epub 2022 May 6.
Protein scaffolds direct the organization of amorphous precursors that transform into mineralized tissues, but the templating mechanism remains elusive. Motivated by models for the biomineralization of tooth enamel, wherein amyloid-like amelogenin nanoribbons guide the mineralization of apatite filaments, we investigated the impact of nanoribbon structure, sequence, and chemistry on amorphous calcium phosphate (ACP) nucleation. Using full-length human amelogenin and peptide analogs with an amyloid-like domain, films of β-sheet nanoribbons were self-assembled on graphite and characterized by in situ atomic force microscopy and molecular dynamics simulations. All sequences substantially reduce nucleation barriers for ACP by creating low-energy interfaces, while phosphoserines along the length of the nanoribbons dramatically enhance kinetic factors associated with ion binding. Furthermore, the distribution of negatively charged residues along the nanoribbons presents a potential match to the Ca–Ca distances of the multi-ion complexes that constitute ACP. These findings show that amyloid-like amelogenin nanoribbons provide potent scaffolds for ACP mineralization by presenting energetically and stereochemically favorable templates of calcium phosphate ion binding and suggest enhanced surface wetting toward calcium phosphates in general.
蛋白质支架指导无定形前体的组织,这些前体转化为矿化组织,但模板机制仍然难以捉摸。受牙釉质生物矿化模型的启发,在这些模型中,类淀粉的釉原蛋白纳米带引导磷灰石纤维的矿化,我们研究了纳米带结构、序列和化学对无定形磷酸钙 (ACP) 成核的影响。使用全长人釉原蛋白和具有类淀粉结构域的肽类似物,β-折叠纳米带的薄膜在石墨上自组装,并通过原位原子力显微镜和分子动力学模拟进行了表征。所有序列通过创建低能量界面,大大降低 ACP 的成核势垒,而纳米带长度上的磷酸丝氨酸则显著增强与离子结合相关的动力学因素。此外,纳米带中带负电荷的残基的分布与构成 ACP 的多离子配合物的 Ca–Ca 距离可能存在潜在匹配。这些发现表明,类淀粉的釉原蛋白纳米带通过提供有利的磷酸钙离子结合的能量和立体化学模板,为 ACP 矿化提供了有力的支架,并表明对一般的磷酸钙具有增强的表面润湿性。