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CH, R.

Publications and source records attributed to CH, R..

2 recordsLinked to original sources

Brain lipidomics identifies mitochondrial redox dysfunction and metabolic trade-offs associated with Parkinsons disease-like pathology induced by Nanoplastics exposure

Growing nanoplastics exposure raises concern for neurotoxicity, particularly given recent evidence of plastic accumulation within human brain tissue-a highly lipid enriched organ, yet effects on brain lipid metabolism remains poorly understood. Here, we employed high-resolution untargeted lipidomics to map brain lipid perturbations in Drosophila melanogaster chronically exposed to environmentally relevant levels of polystyrene nanoplastics (NPs). Polystyrene NPs accumulated in fly brains and induced dose-dependent remodeling of mitochondrial membrane lipids, notably cardiolipins and phosphatidylethanolamines, accompanied by increased diacylglycerols/triacylglycerols and monounsaturated fatty acids and by lipid droplet expansion. Guided by these lipidomic signatures, targeted biochemical assays demonstrated depolarized mitochondrial membrane potential, elevated mitochondrial reactive-oxygen species, inhibition of respiratory-chain complexes I and IV, and a shift in NAD(H) and NADP(H) redox couples toward a reduced state and increasing lipid peroxidation. This redox imbalance was accompanied by decreased tyrosine-hydroxylase expression, dopamine depletion, and impaired locomotor behavior, hallmarks of PD-like neurodegeneration. Dopaminergic neurochemistry was impaired (tyrosine hydroxylase and dopamine decreased), with concomitant reduction of GABA, and locomotor and circadian deficits emerged. Remarkbly, co-treatment with the antioxidant N-acetylcysteine (NAC) restored mitochondrial membrane potential, reduced mitochondrial ROS and lipid peroxidation, normalized neutral lipid and MUFA accumulation, and rescued neurotransmitter levels and behavior. Stable-isotope tracing confirmed disrupted TCA cycle flux after NP exposure that was rescued by NAC. Collectively, these findings reveal lipidomic remodeling as a critical link between environmental nanoplastic exposure and PD-like pathology, highlighting mitochondrial redox-lipid interactions as early determinants and support redox-directed interventions to mitigate risk.

neuroscience↗

Exposure to rotenone triggers redox driven systemwide lipidome alterations and metabolic tradeoffs linked to Parkinsons disease

With the global rise in aging populations, the increasing incidence of neurodegenerative diseases underscores concerns about brain health, with pesticides like rotenone, emerging as key environmental hazardous. The precise mechanism by which chronic environmental concentration of rotenone exposure causes Parkinson-like phenotype is not understood. Previous studies showed that rotenone induces depletion of dopaminergic neurons by influencing mitochondrial functions. Mitochondrial dysfunction alters lipid homeostasis; therefore, brain lipids can be potential targets for the early risk assessment and prognosis of Parkinsons disease (PD). However, the specific lipidome changes and associated biomarkers of chronic rotenone in vivo exposure causing PD are largely unknown. This study investigates the lipid profile disruptions and biomarkers induced by environmentally relevant concentrations of chronic rotenone exposure using the neuro-model Drosophila melanogaster. An untargeted LC-HRAMS-based lipidomics identified that lipid classes, GP, SP, FA and GL were significantly altered. Furthermore, system-wide loss of cross talk of mitochondrial and peroxisome lipids by altering their redox homeostasis causing PD was observed. Additionally, lipid oxidative stress markers, and behavior abnormalities correlated with altered lipids linked to PD. The findings highlight the rotenone induced complex metabolic trade-offs, prioritizing brains neural integrity at the expense of peripheral lipid levels, leading to PD. Environmental implicationThis study highlights the environmental risks of chronic rotenone exposure, commonly used in agriculture. The findings show that even low concentrations of rotenone disrupt lipid metabolism, particularly in the brain, affecting mitochondrial and peroxisomal functions, contributing to depleting dopaminergic neurons, which are linked to neurodegenerative diseases like Parkinsons. The study also identify lipid markers linked to rotenone induced PD and reveals metabolic trade-offs, where the brain prioritizes neural integrity over peripheral lipid balance. These lipidome changes and redox-driven shifts threaten both individual health and ecosystem stability, emphasizing the need for policies to regulate pesticide use and minimize exposure risks. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=145 SRC="FIGDIR/small/637453v1_ufig1.gif" ALT="Figure 1"> View larger version (48K): org.highwire.dtl.DTLVardef@145133aorg.highwire.dtl.DTLVardef@1f1612forg.highwire.dtl.DTLVardef@2360f0org.highwire.dtl.DTLVardef@b161f9_HPS_FORMAT_FIGEXP M_FIG Graphical abstract C_FIG

neuroscience↗