Munyemana Jean Claude, He Huixia, Ding Shenglong, Yin Jie, Xi Pinxian, Xiao Jianxi
State Key Laboratory of Applied Organic Chemistry, Key Laboratory of Nonferrous Metal Chemistry and Resources Utilization of Gansu Province, College of Chemistry and Chemical Engineering, Lanzhou University Lanzhou 730000 P. R. China
RSC Adv. 2018 Jan 12;8(5):2708-2713. doi: 10.1039/c7ra12628j. eCollection 2018 Jan 9.
Construction of protein-inorganic hybrid materials with hierarchical nanostructures is critical for the creation of advanced multi-functional materials. We herein for the first time report the synthesis of protein-manganese phosphate hybrid nanomaterials by environmentally amiable biomineralization approach. We have demonstrated that collagen provides an excellent biotemplate to modulate the morphology of the hybrid materials, leading to exquisite nanoflowers with branched petals. In this time-dependent biomineralization process, collagen played an essential role in the production of protein-manganese phosphate hybrid materials by inducing the nucleation of manganese phosphates to form a scaffold as well as serving as a glue to hold the petals together. The as-prepared CL-Mn(PO) nanoflowers exhibited good catalytic activity towards water oxidation. The unique (Gly-X-Y) amino acid sequences and triple helix structure may provide extraordinary capability for collagen to create hybrid nanomaterials collagen-templated biomineralization. The single-size and high purity may endow recombinant collagen as a powerful strategy to establish superior biotemplates. This facile and green approach to produce collagen-manganese phosphate hybrid nanoflowers greatly advances our capability to construct manganese phosphates-based functional materials.
构建具有分级纳米结构的蛋白质-无机杂化材料对于创制先进的多功能材料至关重要。我们在此首次报道了通过环境友好的生物矿化方法合成蛋白质-磷酸锰杂化纳米材料。我们已经证明,胶原蛋白提供了一个出色的生物模板来调节杂化材料的形态,从而形成具有分支花瓣的精致纳米花。在这个时间依赖性的生物矿化过程中,胶原蛋白在蛋白质-磷酸锰杂化材料的制备中发挥了重要作用,它通过诱导磷酸锰的成核形成支架,以及作为胶水将花瓣固定在一起。所制备的CL-Mn(PO)纳米花对水氧化表现出良好的催化活性。独特的(甘氨酸-X-Y)氨基酸序列和三螺旋结构可能为胶原蛋白通过模板化生物矿化来创制杂化纳米材料提供非凡能力。单一尺寸和高纯度可能赋予重组胶原蛋白作为建立优质生物模板的有力策略。这种制备胶原蛋白-磷酸锰杂化纳米花的简便绿色方法极大地提升了我们构建基于磷酸锰的功能材料的能力。