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  1. Using viruses to study the brain.
  2. Presynaptic Rac1 controls synaptic strength through the regulation of synaptic vesicle priming
  3. Presynaptic Rac1 controls synaptic strength through the regulation of synaptic vesicle priming
  4. Modeling the short-term dynamics of in vivo excitatory spike transmission
  5. Presynaptic mitochondria volume and abundance increase during development.
  6. Presynaptic mitochondria volume and abundance increase during development of a high-fidelity synapse
  7. Functional Development of Principal Neurons in the Anteroventral Cochlear Nucleus Extends Beyond Hearing Onset
  8. CaV2.1 α1 Subunit Expression Regulates Presynaptic CaV2.1 Abundance and Synaptic Strength at a Central Synapse
  9. Functional connectivity with short-term dynamics explains diverse patterns of excitatory spike transmission in vivo
  10. Signal integration at spherical bushy cells enhances representation of temporal structure but limits its range
  11. Inhibition in the auditory brainstem enhances signal representation and regulates gain in complex acoustic environments
  12. Slow Cholinergic Modulation of Spike Probability in Ultra-Fast Time-Coding Sensory Neurons
  13. Inhibition Shapes Acoustic Responsiveness in Spherical Bushy Cells
  14. Activity-dependent modulation of inhibitory synaptic kinetics in the cochlear nucleus
  15. Dynamic Fidelity Control to the Central Auditory System: Synergistic Glycine/GABAergic Inhibition in the Cochlear Nucleus