Yan Zou, Yu Mo, Jieqiong Yang, Jiyue Wu, Biao He, Shuang He, Yizheng Bao, Zengli Miao, Han Lin, Genshui Wang, Xudong Zhao
Glioblastoma (GBM) remains clinically challenging due to its pronounced resistance to conventional chemotherapy. Ferroptosis, an iron-dependent form of programmed cell death, has emerged as a promising alternative, yet its efficacy is limited by the hypoxic tumor microenvironment and adaptive mitochondrial defenses. To overcome these limitations, we developed a piezoelectric nanoplatform (V-BT@PDA@PMS) comprising double-vacancy-engineered barium titanate (BaTiO 3 ) nanoparticles, coated with polydopamine (PDA), and loaded with peroxymonosulfate (PMS). This platform constructs a “Dual-Channel Electron Expressway” to significantly amplify ultrasound (US)-triggered generation of sulfate radicals (⋅SO 4 − ). Internally, barium and oxygen vacancies within the BaTiO 3 lattice facilitate charge carrier separation; externally, the tumor-acid-responsive PDA coating optimizes PMS adsorption and activation via imino protonation. The resulting massive ⋅SO 4 − yield exerts a dual-pronged effect: it directly initiates lipid peroxidation to drive ferroptosis and precipitates intracellular Ca 2+ as CaSO 4 . This localized Ca 2+ depletion triggers profound mitochondrial Ca 2+ efflux and the irreversible opening of the mitochondrial permeability transition pore (mPTP). The subsequent structural collapse facilitates a secondary iron influx, establishing a self-amplifying cycle of reactive oxygen species (ROS) generation via Fenton-like reactions. By systematically dismantling mitochondrial defenses against ferroptosis, this cascade achieves a 2.9-fold enhancement in temozolomide (TMZ) chemosensitivity in vitro and demonstrates significant tumor inhibition in chemoresistant in vivo models. Overall, this study elucidates a physical-biochemical mechanism for electron-transport-mediated mitochondrial destabilization, offering a rational design strategy for piezocatalytic nanotherapeutics against drug-resistant malignancies.