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ALLIMUTHU, D.

Publications and source records attributed to ALLIMUTHU, D..

2 recordsLinked to original sources

A Novel Mouse Model of Parkinson's Disease for Investigating Progressive Pathology and Neuroprotection

Developing animal models that successfully recapitulate the features of progressive Parkinsons disease (PD) is crucial for understanding disease progression mechanisms and creating effective therapeutic interventions. In this study, we created a mouse model of PD by overexpressing -synuclein through a combined injection of AAV6--synuclein and preformed fibrils (PFFs) into the medial and lateral substantia nigra (SN). We also demonstrated that chronic administration of the c-Abl inhibitor PD180970 provides neuroprotection in this model. Mice injected with the AAV6--synuclein and PFF combination showed a progressive loss of dopaminergic (DA) neurons in the SN and their projections in the striatum over 24 weeks. This neuronal loss coincided with a time-dependent accumulation of phosphorylated -synuclein (p-syn) in the SN. The p-syn aggregates spread to synaptically connected DARPP-32-positive neurons in the striatum and further extended to the cortex. We also observed a contralateral spread of p-syn aggregates. Additionally, -synuclein overexpression led to a significant increase in activated microglia and astrocytes at all timepoints, with the strongest activation occurring early and gradually diminishing over time. Daily administration of PD180970 significantly reduced the loss of DA neurons caused by -synuclein injection and decreased the accumulation of p-syn in the SN. PD180970 treatment also reduced the neuroinflammation significantly. Overall, the combined injection of AAV6--synuclein and preformed fibrils into the mouse brain establishes a robust PD model, enabling detailed mechanistic studies of the disease. We further demonstrate the models utility for chronic neuroprotection studies using the potential drug PD180970, highlighting its broad applicability. Significance StatementThis study establishes a robust mouse model of Parkinsons disease (PD) by combining AAV6-mediated -synuclein overexpression and preformed fibrils (PFFs) to replicate key features of PD, such as progressive dopaminergic neuron loss, phosphorylated -synuclein accumulation, and neuroinflammation. The model captures the spread of pathological aggregates to synaptically connected brain regions, closely mimicking the human disease. By testing the c-Abl inhibitor PD180970, we demonstrate its neuroprotective effects, including reduced neuronal loss, decreased -synuclein accumulation, and neuroinflammation highlighting its therapeutic potential. This model offers a valuable platform for investigating PD mechanisms and evaluating novel interventions, bridging the gap between preclinical and clinical applications.

neuroscience↗

Small molecule promoters of endogenous lipid droplet accumulation drive lysophagy

Lipid droplets (LDs) play a central role in regulating metabolism in stress-induced conditions, including one triggered by nutrient deprivation. Unravelling the protein networks involved in the biogenesis of LDs and their causative and functional roles in health and disease continue to evolve. To this cause, genetic manipulation of the lipid metabolic network or supplementation of high fat diet/ oleic acid (OA) are the traditional routes for voluntarily triggering LDs formation in cells and animals. We developed a screening platform for the identification of new LDs inducers, and our primary screening of various fatty acids identified linoleic acid (LOA, DUFA) as a better tool than OA (MUFA) in promoting LDs formation. The screening and validation discovered new small molecule-based tools for promoting a rapid organization of endogenous lipids into droplets in multiple cell types. Notably, our mass spectral lipidomics analysis presented the overproduction of phosphatidylcholines and small triglycerides, a hallmark of LDs. Mechanistic investigations of our lead molecules highlighted lipid peroxidation and ATP depletion through mitochondrial impairment in cells, which could serve as chemical cues for driving the fusion of cellular lipids into LDs. Finally, we uncovered the abrupt levels of LDs formation induced by our molecules promoted lysophagy in cancer cells to prevent their proliferation. Collectively, our work introduces new small molecules as powerful tools for reliably promoting LDs accumulation for studying their roles in biology, and we demonstrate the over accumulation of LDs prevent cancer cell proliferation, movement, and colonization.

cancer biology↗