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Uytterhoeven, V.

Publications and source records attributed to Uytterhoeven, V..

2 recordsLinked to original sources

Presynaptic Release Probability Determines the Need for Sleep

Sleep is universal among animals with synapses, yet the synaptic functions determining the need for sleep remain elusive. By directly measuring synaptic transmission at anatomically defined synapses in Drosophila, we found that synaptic strength remained stable or declined after sleep deprivation in a circuit-specific manner. In contrast, presynaptic release probability (Pr) consistently decreased with sleep loss across circuits and species, stemming from reduced Ca2+ influx or weakened vesicle-channel coupling at presynaptic terminals, and recovered after sleep. Bidirectional manipulations of Pr altered sleep pressure, establishing a causal relationship between presynaptic function and sleep need. Non-synaptic sleep-regulatory signaling pathways consistently modulate Pr but not synaptic strength. Thus, our findings identify Pr, rather than synaptic strength, as the conserved synaptic substrate underlying sleep need.

neuroscience↗

Soma-centered control of synaptic autophagy by Rab39-regulated anterograde trafficking of Atg9

Presynaptic terminals can be located far from the neuronal cell body and are thought to independently regulate protein and organelle turnover. In this work, we report a soma-centered mechanism that regulates autophagy-driven protein turnover at distant presynaptic terminals in Drosophila. We show that this system is regulated by Rab39, whose human homolog is mutated in Parkinsons disease. Although Rab39 is localized in the soma, its loss of function causes increased autophagy at presynaptic terminals, resulting in faster synaptic protein turnover and neurodegeneration. Using a large-scale unbiased genetic modifier screen, we identified genes encoding cytoskeletal and axonal organizing proteins, including Shortstop (Shot), as suppressors of synaptic autophagy. We demonstrate that Rab39 controls Shot-and Unc104/KIF1a-mediated transport of autophagy-related Atg9 vesicles to synapses. Under starvation conditions, Rab39 in the soma shifts its localization from endosomes to lysosomes, thereby controlling the availability of Atg9 vesicles for trafficking to synapses. Our findings indicate that Rab39-mediated trafficking in the soma orchestrates a cross-compartmental mechanism that regulates the abundance of autophagy at synapses.

neuroscience↗