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Verified CAS / Academic Author2 Decoded Studies

Prof. LI Xiaowei

School of Materials Science and Engineering, Shandong University of Technology

Research Publications & English Decoded Briefs

Showing 2 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-4056-1

A Layered Ferrous Silicate for Ion-Exchange-Driven Chemodynamic Therapy

Nanoparticle-based therapeutics have been intensively explored for tumor treatment. However, developing convenient and specific strategies that do not rely on exogenous energy-guided activation remains challenging. Herein, an ion-exchange-driven chemodynamic therapy is proposed based on the TME K+-mediated cation exchangeability of layered ferrous silicates (LFSs). LFSs were prepared by a facile "in situ 3D-to-2D structural transformation" strategy through valence bond transition from SiO–H–OSi to Fe–O, providing extensive convenience compared to conventional exfoliation methods. The structure-activity relationship and mechanism between surrounding TME ions and the cation exchange behavior of LFSs were revealed by both experimental investigation of the cation-exchange process and DFT calculations of the adsorption hydration behavior. As a result, the interlayered Fe ions were selectively and preferentially exchanged by TME K+ rather than surrounding TME Na+, Mg2+, Ca2+, or Cl−, thereafter activating specific Fenton reaction together with TME H+, H2O2, and glutathione, demonstrating highly precise catalytic therapeutic efficacy both in vitro and in vivo. This study proposes an original tumor-specific therapy modality with high precision and safety through taking advantage of ionic exchangeability of layered silicate, and provides enlightenment to reverse the TME K+ disorder.

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3434-y

Confined Electrophoretic Deposition of Uniformly Dispersed Nanoparticle-Integrated Hydrogels with Enhanced Mechanical and Enzyme-Like Properties for Antibacterial Therapy

Nanoparticle-integrated hydrogels combine the favorable properties of hydrogels and nanoparticles, yet conventional integration methods fail to ensure uniform dispersion and full exposure of nanoparticles, resulting in suboptimal performance. This study introduces a confined electrophoretic deposition (EPD) strategy to fabricate hydrogels uniformly deposited with MnSiO3 nanoparticles (designated MnSiO3-based E-gels). The density of cross-linking points and electrostatic attraction at the cathode critically govern nanoparticle deposition behavior. The confined EPD strategy enables ultra-uniform deposition of positively charged nanoparticles (Ag, ZnO, NiO, Fe3O4, MoS2, MnO2, CuO, and ZIF-8) within hydrogel micropores in less than one minute. Nanoparticles deposited under the electrostatic field exhibit equidistant distribution, superior dispersity, and enhanced binding stability. Consequently, the E-gels demonstrate significant improvements in mechanical strength, adhesion, enzyme-like activity, and in vitro and in vivo antibacterial efficacy compared to conventional hydrogels. This confined EPD approach offers a versatile and efficient protocol for integrating polymer-based hydrogel networks with functional nanoparticles, holding promise for biomedicine and materials science.