Microbially Catalyzed Biomaterials for Bone Regeneration.

Li, Mengmeng; Ma, Hongshi; Han, Fei; Zhai, Dong; Zhang, Bingjun; Sun, Yuhua; Li, Tian; Chen, Lei et al. · Adv Mater · 2021

basic_science · Level V

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Abstract

Bone is a complex mineralized tissue composed of various organic (proteins, cells) and inorganic (hydroxyapatite, calcium carbonate) substances with micro/nanoscale structures. To improve interfacial bioactivity of bone-implanted biomaterials, extensive efforts are being made to fabricate favorable biointerface via surface modification. Inspired by microbially catalyzed mineralization, a novel concept to biologically synthesize the micro/nanostructures on bioceramics, microbial-assisted catalysis, is presented. It involves three processes: bacterial adhesion on biomaterials, production of CO<sub>3</sub> <sup>2-</sup> assisted by bacteria, and nucleation and growth of CaCO<sub>3</sub> nanocrystals on the surface of bioceramics. The microbially catalyzed biominerals exhibit relatively uniform micro/nanostructures on the surface of both 2D and 3D α-CaSiO<sub>3</sub> bioceramics. The topographic and chemical cues of the grown micro/nanostructures present excellent in vitro and in vivo bone-forming bioactivity. The underlying mechanism is closely related to the activation of multiple biological processes associated with bone regeneration. The study offers a microbially catalytic concept and strategy of fabricating micro/nanostructured biomaterials for tissue regeneration.

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