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Aron Badin, R.

Publications and source records attributed to Aron Badin, R..

2 recordsLinked to original sources

Brain-specific PP1/LRRK2 interaction-targeting peptides as a novel strategy for Parkinson's disease treatment

The LRRK2 kinase has emerged as a priority therapeutic target due to its well-documented role in Parkinson-s diseases (PD). One of LRRK2s key partners is the phosphatase PP1, which dephosphorylates LRRK2. Therefore, modulating this protein/protein interaction represents a promising therapeutic strategy for PD. We have developed a bi-functional peptide, PEP 3, capable of crossing the blood-brain barrier (BBB) and disrupting the LRRK2/PP1 interaction. In vitro competition assays confirmed that PEP 3 specifically targets this interaction. The in vivo imaging demonstrated that the peptide remains detectable in the mouse brain up to 6 hours or retro-orbital vein post-injection. The PEP 3 peptide does not show chronic toxicity in CD1 mice and is resistant to degradation by mouse, human, dog and monkey serum proteases. In mouse models overexpressing alpha-synuclein, repeated intraperitoneal injections of PEP 3 for 15 and 30 days were well tolerated. Immunohistochemistry revealed a significant reduction of dopaminergic cell death in the substantia nigra, and quantification of phosphorylated pathological alpha-synuclein showed decreased levels in the PEP 3-treated group compared to controls. These findings support the potential of PEP 3 as a therapeutic agent for Parkinsons disease.

neuroscience↗

AAV-mediated allele-specific silencing alleviates neuropathology in a novel non-human primate model of Spinocerebellar ataxia type 3

Spinocerebellar ataxia type 3 (SCA3), also known as Machado-Joseph disease (MJD), is an autosomal dominant neurodegenerative disorder caused by an abnormal expansion of the cytosine-adenine-guanine (CAG) repeats in the ATXN3 gene. This mutation results in the production of an Ataxin-3 protein with an extended polyglutamine sequence, contributing to the diseases neuropathology. Currently, no treatment is available that can slow or halt the progression of SCA3. Gene-targeted therapies have gained significant attention for their potential to address the root cause of SCA3. Preliminary studies in transgenic mice using adeno-associated viral vector serotype 9 (AAV9) encoding artificial microRNAs targeting the mutant ATXN3 allele (AAV9-miR-ATXN3) have shown promising results. However, to advance this therapeutic approach toward clinical application, further studies in an animal model that more closely resembles human biology are essential. In this exploratory study, we assessed the biodistribution and target engagement of AAV9-miR-ATXN3 delivered via intracisterna magna (ICM) injection in non-human primates (NHPs). Using a lentiviral vector (LV) to introduce a mutant Ataxin-3 cDNA with 72 glutamines (LV-mutATXN3-Q72) into the NHP cerebellum, we successfully overexpressed SCA3 in the NHP brain. SCA3 NHP exhibited Ataxin-3 aggregation in the cerebellum, recruitment of inflammatory cells and reduced cerebellar volume. ICM administration of AAV9-miR-ATXN3 effectively directed transgene expression to key brain regions impacted by SCA3 pathology and enabled specific, dose-dependent silencing of mutant Ataxin-3. Furthermore, the therapeutic dose prevented the cerebellar morphological and biochemical alterations induced by the overexpression of mutant ATXN3. These proof-of-concept experiments are crucial, not only for advancing AAV9-miR-ATXN3 toward clinical use but also for establishing a valuable platform for validating future therapeutic interventions.

molecular biology↗