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Mg-MOF-74@MnO2 koosh ball-like nanoparticles modified PLLA bone scaffold achieving mild-temperature photothermal
Pei Feng1, Lingxi Liu1, Feng Yang1
1State Key Laboratory of Precision Manufacturing for Extreme Service Performance, College of Mechanical and Electrical Engineering, Central South University, Changsha, 410083, China.
Abstract:
Regarding the issue that poly-L-lactic acid (PLLA) bone scaffold lacks antibacterial function, koosh ball-like nanoparticles, Mg-MOF-74@MnO2, have been synthesized by evenly in situ growing MnO2 nanowires on Mg-MOF-74 nanoparticles, and they were incorporated into PLLA matrix to fabricate bone scaffold with mild-temperature photothermal antibacterial activity. The results demonstrated that the Mg-MOF-74@MnO2 koosh ball-like nanoparticles generated hydroxyl radical (∙OH) synergistically due to redox reaction of the Mg-MOF-74 particles and enzyme-like activities of the MnO2 nanowires. The MnO2 nanowires can convert near-infrared (NIR) light energy into heat, and the in-situ growth enabled the MnO2 nanowires to disperse uniformly so as to better exert its photothermal property. After incorporation, the PLLA/Mg-MOF-74@MnO2 bone scaffold was fabricated via selective laser sintering (SLS). The bone scaffold reached a stable photothermal temperature of 40-45 °C under NIR irradiation, and had good ∙OH generating capacity. The generated∙OH inhibited bacterial adenosine triphosphate (ATP) level and weakened their thermotolerance without impairing osteoblasts, thereby enabling efficient bacterial killing under mild photothermal heating without damaging osteoblasts, endowing the scaffold with mild-temperature photothermal antibacterial function. As a result, the scaffold's in vitro antibacterial rates were 99.50% against Staphylococcus aureus and 99.88% against Escherichia coli. Implanted subcutaneously in the rats, the scaffold's in vivo antibacterial rate of the scaffold was 91.39%. Moreover, the PLLA/Mg-MOF-74@MnO2 bone scaffold also presented satisfying mechanical properties and biocompatibility.
