Neuron-to-glia signaling drives critical period experience-dependent synapse pruning

Nichalas Nelson1, Kendal Broadie2,3,4,5,6

  • 1Department of Biological Sciences, Vanderbilt University and Medical Center, Nashville, TN, 37235, USA.

Scientific Reports
|July 16, 2025
PubMed

Insights

Early brain development relies on critical periods for synaptic refinement. This study reveals phosphatidylserine signaling and glial insulin receptors orchestrate experience-dependent synapse elimination in Drosophila.

Area of Science:

  • Neuroscience
  • Developmental Biology
  • Cell Biology

Background:

  • Critical periods are essential for optimizing early-life synaptic connectivity through sensory experience.
  • The Drosophila olfactory circuit, with its short critical period, provides a model for studying experience-dependent synapse remodeling.
  • Understanding the intercellular signaling pathways governing synapse elimination during critical periods is crucial.

Purpose of the Study:

  • To dissect the intercellular signaling pathways from neurons to glial phagocytes that mediate synapse elimination during critical periods.
  • To identify the molecular mechanisms underlying experience-dependent synaptic pruning in the Drosophila olfactory circuit.

Main Methods:

  • Investigated phosphatidylserine (PS) exposure in olfactory sensory neuron (OSN) synaptic glomeruli following critical period experience.
  • Utilized genetic manipulation, including knockdown of phosphatidylserine synthase and analysis of trans-heterozygous mutants for phosphatidylserine synthase and Draper.
  • Examined the role of glial insulin receptors in mediating glial infiltration and phagocytosis.

Main Results:

  • Critical period experience induces dose-dependent externalization of phosphatidylserine (PS) on activated OSN synaptic glomeruli.
  • Genetic knockdown of phosphatidylserine synthase and the interaction between phosphatidylserine synthase and Draper (a glial engulfment receptor) inhibit experience-dependent pruning.
  • Glial insulin receptor signaling was identified as a key regulator of experience-dependent glial phagocytosis and synapse pruning.

Conclusions:

  • Phosphatidylserine externalization, regulated by a specific OSN scramblase, is rate-limiting for experience-dependent synaptic pruning.
  • Coupled intercellular signaling pathways involving neuronal phosphatidylserine exposure and glial insulin receptor activation orchestrate experience-dependent synapse elimination.
  • This study elucidates novel molecular mechanisms linking neuronal signaling to glial phagocytosis for synaptic refinement during critical developmental periods.

Related Concept Videos

Synaptic Signaling01:09

Synaptic Signaling

Neurons communicate at synapses, or junctions, to excite or inhibit the activity of other neurons or target cells, such as muscles. Synapses may be chemical or electrical.
Most synapses are chemical, meaning an electrical impulse or action potential spurs the release of chemical messengers called neurotransmitters. The neuron sending the signal is called the presynaptic neuron, and the neuron receiving the signal is the postsynaptic neuron.
The presynaptic neuron fires an action potential that...
5.8K
Neuroplasticity01:01

Neuroplasticity

Neuroplasticity reflects the brain's remarkable capacity to adapt and evolve, responding dynamically to learning, experiences, or injury by reorganizing its neural circuitry. This reorganization involves creating new neural connections and refining old ones through a series of biological processes that contribute to the brain's lifelong development and adaptability.
791
Neuronal Communication01:28

Neuronal Communication

Neurons, the fundamental units of the brain and nervous system, communicate through complex electrochemical signals that underpin all cognitive and bodily functions. This communication is primarily facilitated by a process involving the generation and propagation of an action potential along the axon of the neuron. When the internal electrical charge of a neuron surpasses a certain threshold, an action potential is triggered. This rapid change in voltage travels swiftly along the axon to the...
1.5K
The Synapse02:47

The Synapse

Neurons communicate with one another by passing on their electrical signals to other neurons. A synapse is the location where two neurons meet to exchange signals. At the synapse, the neuron that sends the signal is called the presynaptic cell, while the neuron that receives the message is called the postsynaptic cell. Note that most neurons can be both presynaptic and postsynaptic, as they both transmit and receive information.
127.4K
Neurogenesis and Regeneration of Nervous Tissue01:15

Neurogenesis and Regeneration of Nervous Tissue

In the CNS, neurogenesis, the birth of new neurons from stem cells, is limited to the hippocampus in adults. In other regions of the brain and spinal cord, neurogenesis is almost non-existent due to inhibitory influences from neuroglia, especially oligodendrocytes, and the absence of growth-stimulating cues. The myelin produced by oligodendrocytes in the CNS inhibits neuronal regeneration. Furthermore, astrocytes proliferate rapidly after neuronal damage, forming scar tissue that physically...
1.0K
Ligand-Gated Ion Channel Receptor: Gating Mechanism01:30

Ligand-Gated Ion Channel Receptor: Gating Mechanism

Ligand-gated ion channels are transmembrane proteins that play a vital role in intercellular communication and functions of the nervous system. They allow the influx of ions across the membrane once the neurotransmitter binds, allowing the subsequent transmission of electrical excitation across the neurons. Other ligand-gated ion channels, like the γ-aminobutyric acid (GABA) receptor, permit anions like chloride into the cells on the binding of the GABA molecule. Their entry into the cell...
2.6K