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Boumhaouad, S.

Publications and source records attributed to Boumhaouad, S..

3 recordsLinked to original sources

Electroconvulsive Therapy Induces Dopaminergic Axon Regeneration, Corticostriatal Remodeling, and Restoration of Motor Function in Parkinsonian Mice

Parkinsons disease (PD) is characterized by the progressive degeneration of midbrain dopaminergic neurons with loss of axonal dopamine neurotransmission in the dorsal striatum, leading to striatal circuit dysfunction and debilitating motor symptoms. Current therapies provide symptomatic relief but do not restore lost neuronal function. Decades of clinical observations have reported the unexpected observation that electroconvulsive therapy (ECT), a standard treatment for refractory neuropsychiatric disorders, can incidentally alleviate motor symptoms in PD patients, yet the underlying mechanisms remain unknown. Here, we report that in the unilateral 6-hydroxydopamine (6-OHDA) mouse model of PD, two weeks of repeated ECT produced robust and sustained motor recovery, with improvements in locomotion and sensorimotor asymmetry persisting for at least 30 days post-treatment. Remarkably, ECT induced dopaminergic axonal sprouting from surviving dopaminergic neurons with cell bodies located at the substantia nigra-ventral tegmental border, leading to a partial recovery of striatal dopaminergic axonal reinnervation. In striatal direct pathway spiny projection neurons (dSPNs), which exhibit pathological hyperexcitability and spine loss following dopamine depletion, ECT normalized both corticostriatal synaptic responses and spine density. Consistently, ECT upregulated gene transcripts involved in cytoskeletal remodeling while downregulating those associated with glutamatergic signaling and neuronal excitability. These changes were accompanied by a coordinated transcriptional shift toward enhanced mitochondrial anabolic capacity and energy production, including increased expression of genes involved in ATP and Coenzyme Q biosynthesis. Together, these findings demonstrate that ECT can partially restore basal ganglia circuitry following dopamine depletion and provide a basis for further study of its potential as a noninvasive, disease-modifying intervention for PD.

neuroscience↗

Altered striatal dopamine regulation in ADGRL3 knockout mice

Dopaminergic signaling is essential for regulating movement, learning, and reward. Disruptions in this system are linked to neuropsychiatric disorders such as ADHD. ADGRL3, an adhesion G protein-coupled receptor highly expressed in the brain, is genetically associated with increased ADHD risk. ADGRL3 knockout in animals alters expression of dopaminergic markers and induces dopamine-related behavioral changes. However, its precise role in modulating dopamine signaling remains unclear. We investigated how ADGRL3 knockout affects striatal dopamine release in mice using ex vivo fast-scan cyclic voltammetry and in vivo fiber photometry with a dopamine sensor. Ex vivo measurements showed increased electrically-evoked dopamine release across the striatum. Conversely, in vivo recordings revealed reduced task-induced dopamine signals in the nucleus accumbens during an operant fixed interval task. This reduction was not due to impaired dopamine availability, as amphetamine-evoked release was unchanged. These findings suggest ADGRL3 modulates dopamine release in complex ways via different pre- and postsynaptic mechanisms.

neuroscience↗

Regulation of dopamine release by tonic activity patterns in the striatal brain slice

Voluntary movement, motivation, and reinforcement learning depend on the activity of ventral midbrain neurons that extend axons to release dopamine (DA) in the striatum. These neurons exhibit two patterns of action potential activity: a low-frequency tonic activity that is intrinsically generated and superimposed high-frequency phasic bursts that are driven by synaptic inputs. Ex vivo acute striatal brain preparations are widely employed to study the regulation of evoked DA release but exhibit very different DA release kinetics than in vivo recordings. To investigate the relationship between phasic and tonic neuronal activity, we stimulated the slice in patterns intended to mimic tonic activity, which were interrupted by a series of burst stimuli. Conditioning the striatal slice with low-frequency activity altered DA release triggered by high-frequency bursts and produced kinetic parameters that resemble those in vivo. In the absence of applied tonic activity, nicotinic acetylcholine receptor and D2 dopamine receptor antagonists had no significant effect on neurotransmitter release driven by repeated burst activity in the striatal brain slice. In contrast, in tonically stimulated slices, D2 receptor blockade decreased the amount of DA released during a single burst and facilitated DA release in subsequent bursts. This experimental system provides a means to reconcile the difference in the kinetics of DA release ex vivo and in vivo and provides a novel approach to more accurately emulate pre- and post-synaptic mechanisms that control axonal DA release in vivo. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=97 SRC="FIGDIR/small/595411v2_ufig1.gif" ALT="Figure 1"> View larger version (28K): org.highwire.dtl.DTLVardef@e9412corg.highwire.dtl.DTLVardef@1b5cce4org.highwire.dtl.DTLVardef@9ebabforg.highwire.dtl.DTLVardef@f66982_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗