Acetaminophen (APAP) overdose is the leading cause of acute liver failure worldwide, yet existing therapy relies solely on N-acetylcysteine (NAC), whose efficacy diminishes markedly beyond an 8-10 h therapeutic window. The underlying pathology involves a self-amplifying cycle of reactive oxygen species (ROS) overproduction and macrophage-mediated inflammation, and strategies that concurrently scavenge ROS, reprogram macrophage polarization, and attenuate hepatocyte apoptosis remain lacking. Itaconate (ITA), an endogenous anti-inflammatory metabolite, suffers from poor membrane permeability and lacks intrinsic ROS-scavenging capacity. Herein, we constructed BiOCl@ITA by integrating defect-engineered bismuth oxychloride (BiOCl) with surface-loaded ITA. Oxygen vacancy engineering confers intrinsic superoxide dismutase (SOD)- and catalase (CAT)-mimicking activities under stimulus-free conditions. BiOCl@ITA showed rapid accumulation in the liver within 0.5 h after intraperitoneal administration and was efficiently internalized by both hepatocytes and macrophages in vitro. Moreover, BiOCl@ITA virtually eliminated intracellular ROS and attenuated APAP-induced hepatocyte injury, while also reprogramming LPS-stimulated macrophages from M1 toward an M2 phenotype, consistently outperforming free ITA across all endpoints. In a murine APAP-induced ALI model, BiOCl@ITA-treated mice showed near-complete thermal recovery by 24 h, accompanied by substantially reduced serum hepatic injury markers and attenuated histopathological damage. Hepatic molecular and tissue-level analyses further demonstrated restoration of antioxidant defenses, favorable regulation of BAX/BCL-2 expression, and sustained M1-to-M2 macrophage polarization in vivo. These findings demonstrate that BiOCl@ITA synergistically integrates catalytic ROS detoxification with ITA-mediated macrophage reprogramming, offering a promising therapeutic approach for APAP-induced acute liver injury.
Junli Huang, Huan Huang, Ke Huang et al.· ACS Applied Materials and In...· 0 citations
Colorectal cancer (CRC) is a major global malignant tumor with high morbidity and mortality, and current clinical therapies have limited curative effects and obvious adverse reactions. Genistein, a key bioactive isoflavone derived from soybeans, has shown prominent anti-tumor activity, whereas its exact molecular mechanism against CRC remains unclear. This study evaluated the anti-CRC effects of genistein using in vitro cell experiments and a nude mouse xenograft model, focusing on the LINC00355/miR-150/SGK1 axis and its downstream EGFR/PI3K/AKT and MAPK signaling pathways to explore the underlying regulatory mechanism. The results revealed that genistein dose-dependently inhibited CRC cell proliferation without obvious cytotoxicity to normal colon cells. It also induced cell cycle arrest and cancer cell apoptosis, and suppressed tumor migration and invasion. Mechanistically, genistein inhibited the activation of downstream oncogenic pathways by regulating the expression of the target molecular axis. In vivo assays further confirmed that genistein effectively repressed tumor growth with good safety. This study provides reliable experimental evidence for the development of genistein as a potential adjuvant therapeutic agent for CRC treatment.