Brain inflammation induces post-synaptic changes during early synapse formation in adult-born hippocampal neurons

Deepti Chugh1, Per Nilsson, Seyedeh-Atiyeh Afjei

  • 1Inflammation and Stem Cell Therapy Group, Wallenberg Neuroscience Center, Division of Clinical Neurophysiology, Lund University, SE-221 84 Lund, Sweden; Epilepsy Center, Department of Clinical Sciences, Lund University, SE-221 84 Lund, Sweden.

Experimental Neurology
|September 20, 2013
PubMed

Insights

Brain inflammation during early synapse development alters new hippocampal neurons. This impacts excitatory and inhibitory connections, potentially disrupting memory formation and brain disease roles.

Area of Science:

  • Neuroscience
  • Neuroinflammation
  • Neurogenesis

Background:

  • Brain inflammation, characterized by microglial activation, influences adult neurogenesis.
  • Hippocampal neurogenesis is crucial for memory but its role in disease is unclear.
  • Previous work showed brain inflammation affects new hippocampal neuron integration.

Purpose of the Study:

  • To determine if new hippocampal neurons are susceptible to brain inflammation during specific synaptic development periods.
  • To investigate the impact of lipopolysaccharide (LPS)-induced inflammation on excitatory and inhibitory synaptogenesis in adult-born neurons.

Main Methods:

  • Adult mice received retroviral vector injection (RV-GFP) to label newborn hippocampal neurons.
  • Lipopolysaccharide (LPS) was administered intra-hippocampally at 1 or 4 weeks post-RV-GFP injection to induce inflammation.
  • Changes in dendritic spine morphology, synaptic protein expression (PSD-95, N-cadherin, gephyrin, NL-2, neurofascin, GABAAR-α2), and microglial activation were analyzed.

Main Results:

  • LPS-induced inflammation persisted for at least 3 weeks, altering microglial morphology and cytokine release without affecting overall cytoarchitecture or causing cell death.
  • Inflammation during early synaptogenesis increased thin dendritic spines and PSD-95 clusters, suggesting enhanced excitatory connectivity.
  • Alterations in inhibitory synapses included decreased gephyrin and increased NL-2, neurofascin, and GABAAR-α2 specifically in newborn neurons, indicating potential GABAergic transmission imbalance.

Conclusions:

  • Adult-born hippocampal neurons are vulnerable to inflammation during early synaptogenesis.
  • Brain inflammation during this critical period leads to region-specific changes in excitatory and inhibitory synaptic integration.
  • These inflammatory-induced synaptic alterations in new neurons may impair hippocampal function and contribute to neurological disorders.