Synergistically enhanced photothermal transition of a polyoxometalate/peptide assembly improved the antibiofilm and antibacterial activities.

Wang, Yu; Chen, Gang; Liu, Rongrong; Fang, Xuexun; Li, Fei; Wu, Lixin; Wu, Yuqing · Soft Matter · 2022

basic_science · Level V

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Abstract

We successfully developed an antimicrobial assembly (Mo<sub>154</sub>/TK-14) using molybdenum-polyoxometalate and a positively charged peptide of TK-14. It was characterized and assayed using zeta-potential, dynamic light scattering (DLS), and TEM measurements. The Mo<sub>154</sub>/TK-14 assembly showed an enhanced 808 nm absorption and, therefore, improved the photothermal conversion efficiency of Mo<sub>154</sub> (30.3%) to 38.6%. Consequently, in comparison to 5 μM Mo<sub>154</sub> without irradiation, both the biofilm formation and bacterial viability of <i>S. aureus</i> were 24.6% and 20.2%, respectively, for the Mo<sub>154</sub>/TK-14 assembly; the biofilm formation and bacterial viability were further decreased to 7.7% and 4.4% under 808 nm irradiation, respectively. Therefore, the Mo<sub>154</sub>/TK-14 assembly reflects convincing antibacterial properties compared to Mo<sub>154</sub>. This is due to the synergistic effect between the peptide-binding enhanced 808 nm absorption and the improved PTT properties. The antimicrobial assembly offers a novel strategy for the rational design of light-responsive antibacterial materials.

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