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Retinal Explant of the Adult Mouse Retina as an Ex Vivo Model for Studying Retinal Neurovascular Diseases
Published on: December 9, 2022
Manganese dioxide nanoparticles attenuate pathological retinal angiogenesis by inhibiting the PLK1/AKT/FOXO1
Min Zhao1, Yongxuan Liu1, Cheng-Yue Ding1
1Department of Ophthalmology, The First Affiliated Hospital of Naval Medical University, Department of Ophthalmology, Shanghai Changhai Hospital, Naval Medical University, Shanghai 200433, People's Republic of China, Shanghai, Shanghai, 200433, China.
Abstract:
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.
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