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Updated: May 27, 2025

Author Spotlight: Investigating Neural Activity of Dentate Gyrus Granule Cells with Miniature Microscope
Published on: August 2, 2024
The correct connectivity of the DG-CA3 circuits involved in declarative memory processes depends on Vangl2-dependent
Noémie Depret1, Marie Gleizes1, Maïté Marie Moreau1
1Univ. Bordeaux, Inserm, Neurocentre Magendie, U1215, Bordeaux F-33000, France.
Abstract:
In the hippocampus, dentate gyrus granule cells connect to CA3 pyramidal cells via their axons, the mossy fibers (Mf). The synaptic terminals of Mfs (Mf boutons, MfBs) form large and complex synapses with thorny excrescences (TE) on the proximal dendrites of CA3 pyramidal cells (PCs). MfB/TE synapses have distinctive "detonator" properties due to low initial release probability and large presynaptic facilitation. The molecular mechanisms shaping the morpho-functional properties of MfB/TE synapses are still poorly understood, though alterations in their morphology are associated with Down syndrome, intellectual disabilities, and Alzheimer's disease. Here, we identify the core PCP gene Vangl2 as essential to the morphogenesis and function of MfB/TE synapses. Vangl2 colocalises with the presynaptic heparan sulfate proteoglycan glypican 4 (GPC4) to stabilise the postsynaptic orphan receptor GPR158. Embryonic loss of Vangl2 disrupts the morphology of MfBs and TEs, impairs ultrastructural and molecular organisation, resulting in defective synaptic transmission and plasticity. In adult, the early loss of Vangl2 results in a number of hippocampus-dependent memory deficits including characteristic flexibility of declarative memory, organisation and retention of working / everyday-like memory. These deficits also lead to abnormal generalisation of memories to salient cues and diminished ability to form detailed contextual memories. Together, these results establish Vangl2 as a key regulator of DG-CA3 connectivity and functions.
Insights
The planar cell polarity gene Vangl2 is crucial for hippocampus synaptic development and function. Loss of Vangl2 impairs memory formation and generalization, highlighting its role in dentate gyrus-CA3 connectivity.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- The hippocampus, particularly the dentate gyrus (DG) to CA3 region, is vital for memory.
- Mossy fiber (Mf) boutons and thorny excrescences (TE) form unique synapses with poorly understood molecular regulation.
- Synaptic alterations are linked to cognitive disorders like Alzheimer's disease.
Purpose of the Study:
- To investigate the molecular mechanisms governing the morpho-functional properties of MfB/TE synapses.
- To identify key genes regulating DG-CA3 synapse development and function.
- To understand the role of Vangl2 in synaptic plasticity and memory.
Main Methods:
- Utilized genetic manipulation to study Vangl2 function in vivo.
- Employed electron microscopy for ultrastructural analysis of synapses.
- Assessed synaptic transmission and plasticity using electrophysiological techniques.
- Evaluated hippocampus-dependent memory performance in behavioral tasks.
Main Results:
- Vangl2 is essential for the morphogenesis of MfBs and TEs.
- Vangl2 interacts with GPC4 and stabilizes GPR158 at synapses.
- Loss of Vangl2 leads to impaired synaptic ultrastructure, transmission, and plasticity.
- Vangl2 deficiency causes significant hippocampus-dependent memory deficits, including impaired generalization and contextual memory formation.
Conclusions:
- Vangl2 is a critical regulator of DG-CA3 synapse development and function.
- Vangl2's role extends to memory flexibility, organization, and contextual detail.
- These findings establish Vangl2 as a key player in neural circuit formation and cognitive processes.
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