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Beuschel, C.

Publications and source records attributed to Beuschel, C..

2 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↗

A brain-wide form of presynaptic active zone plasticity orchestrates resilience to brain aging in Drosophila

The brain as a central regulator of stress integration determines what is threatening, stores memories and regulates physiological adaptations across the aging trajectory. While sleep homeostasis is linked to brain resilience, how age-associated changes intersect to adapt brain resilience remains enigmatic. We here provide evidence that a brain-wide form of presynaptic active zone plasticity ("PreScale") promotes resilience by coupling sleep, longevity and memory during aging. PreScale increased until mid-age and contributed to the age-adaption of sleep patterns, in effect promoting longevity but not memory of aging flies. Mechanistically, imaging and electrophysiology suggest that genetically-encoded PreScale reprograms neuronal activity, membrane firing patterns and excitability of the sleep-promoting dorsal fan-shaped body neurons, qualitatively similar to aging. Flies metabolically reprogrammed by spermidine towards extended longevity and preserved memory skipped PreScale and subsequently age-associated sleep pattern changes. Acute deep sleep induction in mid-age flies reset PreScale back to juvenile levels and restored memory. Taken together, early along aging trajectory, PreScale seems to steer trade-offs between longevity and memory, illustrating how life strategy manifests on circuit and synaptic plasticity levels. GRAPHIC ABSTRACT Presynaptic plasticity at the active zone (AZ) during early aging triggers sleep pattern changes, and subsequently steers trade-offs between memory formation and longevity. Interventions like spermidine (Spd) and Gaboxadol (THIP) supplementation suppress PreScale and allow for new memory formation and lifespan extension. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=127 SRC="FIGDIR/small/498204v1_ufig1.gif" ALT="Figure 1"> View larger version (25K): org.highwire.dtl.DTLVardef@fa9a69org.highwire.dtl.DTLVardef@af6a27org.highwire.dtl.DTLVardef@62331aorg.highwire.dtl.DTLVardef@109029f_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗