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Formulating and Characterizing an Exosome-based Dopamine Carrier System
Published on: April 4, 2022
Bioactive Selenium Peptides Rescue Dopaminergic Neurodegeneration via Coordinated Signal Remodeling and Redox
Xue Hou1,2, Lin Luo1,2, Ruojia Li1,2
1Hubei Engineering Research Center of Selenium Food Nutrition and Health Intelligent Technology, Hubei Minzu University, Enshi 445000, China.
Abstract:
Selenium-dependent antioxidant systems are critical for neuronal redox balance, but whether Parkinson's disease (PD) involves systemic selenium deficiency or selective utilization impairment remains unclear. Using Parkinson's Progression Markers Initiative (PPMI) proteomic data, we identified specific downregulation of glutathione peroxidase 3 (GPX3) in cerebrospinal fluid in PD, suggesting a compartment-specific alteration in GPX3-related antioxidant defense rather than a uniform systemic selenium deficit. Inorganic selenium sources suffer from low bioavailability and narrow therapeutic windows. We therefore developed a selenium-enriched peptide fraction (IPP-Se-F12) via controlled selenization of Idesia polycarpa Maxim. cake meal peptides, and characterized its selenium content, size distribution, and radical-scavenging activity. In SH-SY5Y and nematode models, IPP-Se-F12 attenuated 6-hydroxydopamine (6-OHDA)-induced cell death and rescued locomotor and dopamine-dependent behaviors more effectively than sodium selenite treatment. RNAseq further showed that IPP-Se-F12 treatment was associated with transcriptional changes in dephosphorylation, axon-guidance, and GPX3-centered antioxidant networks, including increased expression of gpx-3 and gpx-5. This study supports IPP-Se-F12 as a plant-derived selenium-associated peptide fraction with protective activity in cellular and nematode models and identifies GPX-related antioxidant regulation as a candidate mechanism for further investigation.
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