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Toppe, D.

Publications and source records attributed to Toppe, D..

5 recordsLinked to original sources

Active zone remodeling by Bruchpilot couples synaptic architecture to Kv1/Shaker excitability control

Presynaptic active zones are known to undergo state-dependent remodeling across sleep, circadian, and experience-dependent conditions, yet how such structural changes influence synaptic computation and excitability has remained unclear. Here, we address this gap by examining the functional consequences of physiological upscaling of the active zone scaffold Bruchpilot (BRP), within the range previously observed during natural state-dependent plasticity. We show that moderate BRP elevation expands the number of functional release sites while surprisingly reducing vesicle release probability, thereby establishing a presynaptic operating mode with selectively enhanced transmission at intermediate firing frequencies. This remodeled mode depends on Kv1/Shaker potassium channels, which normally constrain the increased structural capacity generated by BRP; accordingly, perturbation of Shaker abolishes BRP-dependent reductions in release probability and unmasks an enlarged synaptic output capacity. To test the functional relevance of this coupling, we examined sleepless mutants, in which Kv1/Shaker channels are destabilized and presynaptic remodeling is compromised. We show that direct, physiological-level BRP upscaling selectively restores the Shaker/Hyperkinetic channel complex from near-undetectable levels toward normal abundance without inducing global proteomic changes, and correspondingly rescues excitability balance, oxidative stress resistance, lifespan, and mid-term memory. Together, these findings identify a mechanistic coupling between active zone architecture and intrinsic excitability control and demonstrate how presynaptic structural plasticity shapes frequency-dependent transmission and functional robustness under stress.

neuroscience↗

Autophagy-driven Presynaptic Reorganization as a Molecular Signature of Brain Resilience.

Neural circuits must remain functionally stable while responding flexibly to changing demands, stressors, and aging-related decline. While this balance is thought to be maintained through plasticity programs that integrate molecular, metabolic, and activity-dependent signals to reconfigure synapses structurally and functionally, direct mechanistic models of how such adaptations are orchestrated remain scarce. Here, we show that targeted impairment of autophagy in the Drosophila mushroom body (MB), a key sleep-regulatory and integrative center in the fly brain, triggers a brain-wide remodeling at presynaptic active zones (AZ). Quantitative proteomics revealed a specific upregulation of AZ scaffold proteins (including BRP, RIM, and Unc13A), accompanied by reduced levels of calcium channel subunits and increased Shaker-type potassium channels. These changes occurred largely independent of transcription and highlight a coordinated, excitability-tuning response centered on the AZ. Behaviorally, MB-specific autophagy impairment increased sleep and modestly extended lifespan. These adaptations resembled a previously described resilience program termed PreScale, which promotes restorative sleep homeostasis in response to sleep deprivation and early, still reversible brain aging. Conversely, overexpression of Atg5 in the MB delayed the onset of PreScale. Notably, autophagic disruption confined to MB neurons also caused widespread, non-cell autonomous accumulation of Ref(2)P and ATG8a-positive aggregates across the brain, revealing systemic propagation of proteostatic stress. Together, our findings identify MB autophagy as a key regulator of synaptic architecture and sleep-associated resilience. Such early acting programs may actively preserve circuit function and behavioral output by regulating synaptic plasticity, and define a genetically tractable model for how local stress signals can orchestrate brain-wide adaptation via post-transcriptional synaptic reprogramming.

neuroscience↗

An active Unc13A is Reboundless in sleep homeostasis

One of the major characteristics of sleep is homeostatic sleep rebound following sleep loss. While the molecular mechanisms of baseline sleep regulation have been intensively studied, a specific molecular understanding of sleep rebound remains elusive. Here, we show that a constitutively active form of the Munc13-family presynaptic release factor Unc13A, which lacks the inhibitory Ca2+/calmodulin interaction domain (Unc13AWRWR), dominantly suppressed sleep rebound upon acute sleep deprivation, leading to a nearly complete elimination of recovery sleep ("reboundless"). In contrast, baseline sleep remained largely normal. Through a genetic modifier screen, we found that this dominant "reboundless" phenotype of Unc13AWRWR was rescued by a partial loss of Snap, a cofactor of NSF required for disassembly and recycling of post-fusion cis-SNARE complex. Given that Unc13A promotes fusion-competent trans-SNARE complex formation, these findings suggest that sleep rebound may depend on a delicate balance between SNARE complex assembly and recycling. Additionally, we found that expression of a human disease-associated active Unc13A (Unc13APL) variant attenuated baseline and rebound sleep. Since both Unc13AWRWR and Unc13APL were shown to promote presynaptic release probability (Pr), we speculate that Unc13A suppresses recovery sleep likely by increasing Pr and subsequently enhancing synaptic transmission, probably through elevated trans-SNARE formation and efficient cis-SNARE recycling. Taken together, our data demonstrate a fundamental role of Unc13A and SNARE dynamics in sleep homeostasis.

neuroscience↗

Non-cell autonomous control of presynaptic remodeling by the hypothalamic autophagy/NPY axis

Macroautophagy/autophagy, a critical cellular degradation pathway essential for maintaining neuronal proteostasis, declines with age and has been increasingly implicated in the regulation of synaptic integrity and circuit resilience. Neuropeptide Y (NPY), the most abundantly expressed neuropeptide in the mammalian brain, has emerged as a key modulator of both autophagy and aging-related processes. In Drosophila, the NPY-family peptide short Neuropeptide F (sNPF) has been shown to causally influence aging-associated changes in synaptic architecture and function, particularly at the presynaptic active zone (AZ), via non-cell autonomous mechanisms. Extending this concept to mammals, we investigated whether NPY and autophagy interact within NPY-secreting neurons to regulate age-related AZ remodeling. Our results indicate that hypothalamic NPY/AgRP neurons may exert geroprotective effects through the release of NPY and potentially other signaling molecules, thereby influencing both metabolic homeostasis and brain-wide synaptic function. These data suggest a conserved role for autophagy in maintaining presynaptic organization and resilience during aging.

neuroscience↗

Cognitive hyperplasticity drives insomnia

Sleep is vital for maintenance of cognitive functions and lifespan across the animal kingdom. Here, we report our surprising findings that insomniac (inc) Drosophila short sleep mutants, which lack a crucial adaptor protein for the autism-associated Cullin-3 ubiquitin ligase, exhibited excessive olfactory memory. Through a genetic modifier screen, we find that a mild attenuation of Protein Kinase A (PKA) signaling specifically rescued the sleep and longevity phenotypes of inc mutants. Surprisingly, this mild PKA signaling reduction further boosted the excessive memory in inc mutants, coupled with further exaggerated mushroom body overgrowth phenotypes. We propose that an intrinsic hyperplasticity scenario genuine to inc mutants enhances cognitive functions. Elevating PKA signaling seems to serve as a checkpoint which allows to constrain the excessive memory and mushroom body overgrowth in these animals, albeit at the sacrifice of sleep and longevity. Our data offer a mechanistic explanation for the sleep deficits of inc mutants, which challenges traditional views on the relation between sleep and memory, and suggest that behavioral hyperplasticity, e.g., prominent in autistic patients, can provoke sleep deficits.

neuroscience↗