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Updated: Feb 7, 2026

Measuring Neural Mechanisms Underlying Sleep-Dependent Memory Consolidation During Naps in Early Childhood
Published on: October 2, 2019
A voltage-dependent switch underlies efficient yet specific learning and memory
Julia E Manoim Wolkovitz1, Ibrahim A Tunc2, Merav Tauber3
1Department of Physiology and Pharmacology, Gray Faculty of Medical and Health Sciences, Tel Aviv University, Tel Aviv 69978, Israel.
None:
Learning is vital for animal survival, but it must balance two conflicting demands: sensitivity (to avoid false negatives) and specificity (to avoid false positives). Improving one often worsens the other. Using Drosophila olfactory learning, we unravel how animals successfully perform both tasks. In Drosophila, odors are sparsely represented by cholinergic Kenyon cells (KCs). KCs form lateral axonal connections mediated by the muscarinic type-B receptor (mAChR-B), which suppresses non-specific learning. Using functional imaging, behavior, electrophysiology, and mathematical modeling, we show that mAChR-B is voltage dependent, switching between high- and low-activity states. In its high-activity state, it blocks plasticity in inactive KCs, whereas in its low-activity state, it permits plasticity in active KCs. This voltage-dependent switch enables differential neuromodulation, allowing learning to be both efficient and specific, minimizing both error types. Our findings reveal a novel mechanism for precise neuromodulatory control, reshaping our understanding of neuronal communication.
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