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Shirane, M.

Publications and source records attributed to Shirane, M..

2 recordsLinked to original sources

PDZD8 deficiency drives lipid accumulation in SNr and dopaminergic disinhibition

The basal ganglia-thalamo-cortical loop regulates motor, cognitive, and emotional behaviors and plays central roles in action selection, decision-making, habit formation, and reward learning. The substantia nigra pars reticulata (SNr), a major output nucleus of the basal ganglia, exerts temporally precise control over behavior through tonic inhibitory output mediated by parvalbumin (PV)-positive GABAergic neurons. Accumulating evidence implicates abnormalities in cholesterol metabolism in neurological disorders; however, how cholesterol metabolic dysfunction affects basal ganglia circuit regulation remains largely unknown. In our previous studies, we demonstrated brain-specific cholesteryl ester accumulation and attention-deficit/hyperactivity disorder (ADHD)-like behavioral abnormalities in mice lacking PDZD8. Here, we show that PDZD8 deficiency is associated with selective lipofuscin-like lipid accumulation in SNr-PV neurons, accompanied by reduced SNr projections to thalamic and midbrain dopaminergic targets and increased striatonigral connectivity from caudate-putamen neurons. We propose that lipid accumulation may impair SNr-PV neuron function, potentially leading to relative disinhibition of SNr target regions and disruption of the basal ganglia-thalamo-cortical loop. These circuit abnormalities are likely to disrupt action selection and contribute to ADHD-like behavioral phenotypes. Together, our findings identify SNr-PV neurons as a previously unrecognized site of vulnerability to cholesterol metabolic dysfunction and provide a potential mechanistic link between impaired cholesterol homeostasis, basal ganglia circuit disruption, and ADHD-like behaviors. More broadly, our findings highlight an important role for cholesterol metabolism in maintaining basal ganglia circuitry involved in action selection.

neuroscience↗

TMEM55B controls lipolysis via lysosomal pH and ER lysosome calcium signaling

The lipid transfer protein PDZD8 promotes cholesterol metabolism by facilitating endosomal maturation at membrane contact sites (MCSs) between the endoplasmic reticulum (ER) and endolysosomal compartments. Endosomal maturation is closely associated with lysosomal acidification and calcium signaling; however, the molecular mechanisms linking PDZD8 to these processes remain unclear. Here, we identified TMEM55B as a lysosomal PDZD8-associated protein and a candidate regulator of cholesterol metabolism. TMEM55B has been reported to interact with the v-ATPase complex, suggesting a role in lysosomal function. Suppression of TMEM55B expression reduced lysosomal acidification and impaired lipid droplet turnover. In addition, TMEM55B depletion attenuated lysosomal Ca2+ release and reuptake and diminished ATP-induced Ca2+ responses in the ER, consistent with impaired calcium-induced calcium release (CICR) at ER-lysosome MCSs. By contrast, mitochondrial Ca2+ dynamics were unaffected. These findings identify TMEM55B as a regulator of lysosomal acidification and calcium dynamics and suggest that the PDZD8-TMEM55B axis promotes lipolysis and cholesterol metabolism through coordinated regulation of lysosomal function at ER-lysosome membrane contact sites.

cell biology↗