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Duret, L. C.

Publications and source records attributed to Duret, L. C..

2 recordsLinked to original sources

NATO3 protects dopaminergic neurons in mouse in vivo and human in vitro Parkinson's disease models

Parkinsons disease (PD) is a devastating neurodegenerative disorder primarily characterized by the progressive and unstoppable loss of dopaminergic (DA) neurons in the substantia nigra. We previously identified NATO3 (FERD3L), a conserved developmental transcription factor, as essential for maintaining DA neuron function during aging. Here, we show that AAV-mediated Nato3 gene transfer into the mouse substantia nigra prevents DA neuron degeneration in both MPTP-induced and -synuclein (-Syn) overexpression PD models. This neuroprotective effect is achieved by improving autophagic flux and -Syn clearance. Furthermore, lentiviral-mediated NATO3 overexpression in human midbrain DA neurons, derived from induced pluripotent stem cells carrying the pathological -Syn A53T mutation, effectively reversed key disease hallmarks. These include -Syn accumulation, aberrant mitochondrial morphology, autophagic impairments, and compromised neurite structure. Collectively, these in vivo and in vitro findings highlight NATO3s role in safeguarding DA neurons against pathological cellular events, positioning NATO3 as a therapeutic target for PD.

neuroscience↗

Circadian clock disruption promotes the degeneration of dopaminergic neurons

Sleep and circadian rhythm disruptions are frequent comorbidities of Parkinsons disease (PD), a disorder characterized by the progressive loss of dopaminergic (DA) neurons in the substantia nigra. Although sleep/circadian disturbances can be observed years before diagnosing PD, it remains unclear whether circadian clocks have a causal role in the degenerative process. We demonstrated here that circadian clocks regulate the rhythmicity and magnitude of the vulnerability of DA neurons to oxidative stress in Drosophila. Circadian pacemaker neurons are presynaptic to a subset of DA neurons and rhythmically modulate their susceptibility to degeneration. The arrhythmic period (per) gene null mutation exacerbates the age-dependent loss of DA neurons and, in combination with brief oxidative stress, causes premature animal death. These findings suggest that circadian clock disruption promotes dopaminergic neurodegeneration.

neuroscience↗