Linrong Li, Shihao Su, Zhishan Wang, Shuguo Sun, Y. Wang, Haoyu Xu, Xin Long, Tao Yin, Jun Zhao
Irreversible electroporation (IRE) is an ablative treatment for pancreatic cancer. It utilizes high-intensity pulsed electric field (PEF) to eliminate cancer cells by irreversibly disrupting cell membranes. However, PEF intensity is distributed unevenly; and cancer cells may survive in regions where it falls below the threshold of complete ablation. We find that iron-base metal organic framework nanoparticles (MOF-Fe) sensitize pancreatic cancer cells to PEF by inducing iron overload and ferroptosis. But their efficacy is diminished by the upregulation of ferritin heavy chain 1 (FTH1), a cellular response to restore iron homeostasis. C20U4V, a proteolysis targeting chimera (PROTAC) derived from arachidonic acid, degrades FTH1 and potentiates MOF-Fe-induced ferroptosis. It is then encapsulated in reactive oxygen species (ROS)-responsive micelles. The resulting M-C20U4V, when combined with MOF-Fe, efficiently induces ferroptosis and boosts PEF ablation efficacy. Therefore, disruption of iron homeostasis represents a potential strategy to lower the risk of tumor recurrence after IRE. Irreversible electroporation (IRE) is a treatment for pancreatic cancer, but its efficacy is limited by uneven electric field distribution. Here, the authors show that combining iron-based nanoparticles and PROTAC-mediated degradation of ferritin heavy chain 1 (FTH1) enhances IRE efficacy by inducing ferroptosis.