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Evaluating Intracellular Location and ROS Scavenging by Manganese Dioxide Nanoparticles in Chondrocytes
Jessica Aldrich1, Gengfu Dong2, Arjun Panicker1
1J. Crayton Pruitt Family Department of Biomedical Engineering, Herbert Wertheim College of Engineering, University of Florida, 1275 Center Dr., Gainesville, Florida 32611, United States.
Abstract:
Oxidative stress, the imbalance between reactive oxygen species (ROS) and antioxidant function, is a key contributor to the development and progression of osteoarthritis (OA). ROS-scavenging nanomaterials, which overcome stability and bioavailability limitations of conventional antioxidants, are an emerging class of potential therapies for osteoarthritis. Previously, we reported on engineering manganese dioxide nanoparticles (MnO2), which catalyze the breakdown of hydrogen peroxide (H2O2), and have properties favorable for cartilage localization and subsequent chondroprotection against inflammation. The objective of this study was to determine the mechanisms of MnO2 uptake, intracellular fate, and ROS scavenging functions in chondrocytes at the subcellular level. Uptake mechanisms were evaluated in bovine chondrocytes based on temperature dependence and selective chemical inhibition of endocytic pathways. The overall ROS scavenging functions of the MnO2 were determined in both acellular and cellular systems. To determine compartment-specific ROS scavenging, genetically encoded H2O2 sensors (HyPer7) were employed to detect H2O2 in the mitochondria and cytosol of chondrocytes with and without MnO2 treatment. MnO2 produced catalase-like effects and decreased global levels of oxidative stress in chondrocytes exposed to exogenous H2O2. When coincubated with bovine chondrocytes at 4 or 37 °C, MnO2 leveraged both energy-dependent and independent uptake mechanisms to enter cells. Once inside the cells, MnO2 scavenged H2O2 in the mitochondrial matrix, mitochondrial inner membrane space, and cytosol, corresponding to MnO2 localization in the mitochondria. Importantly, colocalization of MnO2 with mitochondria did not adversely impact mitochondrial respiration in healthy chondrocytes. This study is the first to utilize HyPer7 probes to measure ROS scavenging in chondrocytes, which could be a promising strategy for interrogating oxidative stress mechanisms in OA. This study provides mechanistic insights into how MnO2 localize within chondrocytes and scavenge H2O2 in compartment-specific subcellular regions, thereby advancing a promising strategy for mitigating oxidative stress in chondrocytes.
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