Min Zhao, Yongxuan Liu, Cheng-Yue Ding, Xian-Hui Wu, Zheng Nie, Huimin Zhu, Wen Zhou, Hao-Tian Xue, Hong-Ying Wang, Ling-Yun Ma, Jia-Wei Zhao, Wei Shen
Pathological retinal neovascularization (RNV) is a primary etiology of irreversible vision loss in debilitating conditions such as diabetic retinopathy and retinal vein occlusion. While metaloxide nanomaterials have emerged as potent candidates for anti-angiogenic intervention, their clinical translation remains constrained by persistent biosafety concerns and inherent cytotoxicity. Manganese dioxide nanoparticles (MnO₂ NPs), distinguished by their robust enzyme-mimetic activity and microenvironment-responsive properties, have demonstrated substantial therapeutic promise in oncology; however, their specific function and underlying mechanisms in RNV remain largely uncharacterized. This study provides a systematic investigation into the anti-angiogenic efficacy of MnO₂ NPs and offers a comprehensive elucidation of the core molecular pathways involved. Our results demonstrate that MnO₂ NPs possess exceptional biocompatibility both in vitro and in vivo. These nanoparticles exert a potent, dose-dependent inhibitory effect on the proliferation, migration, and sprouting of human umbilical vein endothelial cells (HUVECs). Moving to in vivo validation, MnO₂ NPs demonstrate a distinct capacity to modulate physiological retinal vascular development in neonatal mice and, more critically, markedly attenuate pathological neovascularization in an oxygen-induced retinopathy (OIR) model. Mechanistically, integrated transcriptomic analysis revealed a significant modulation of angiogenesis-related gene clusters, which-along with Western blot validation-confirmed that MnO₂ NPs exert their effects by targeting the PLK1/AKT/FOXO1 signaling axis. In conclusion, MnO₂ NPs emerge as a compelling and innovative therapeutic candidate for managing vision-threatening ocular vascular disorders. These findings not only offer a targeted pharmacological intervention for retinal diseases but also provide a mechanistic blueprint for the rational design of next-generation multifunctional nanomedicines.