MDGA1 negatively regulates amyloid precursor protein-mediated synapse inhibition in the hippocampus

Jinhu Kim1, Seungjoon Kim1, Hyeonho Kim1

  • 1Department of Brain and Cognitive Sciences, Daegu Gyeongbuk Institute of Science and Technology, Daegu 42988, Korea.

Insights

The study reveals how amyloid precursor protein (APP) and MDGA1 (meprin, A-5 protein, and receptor protein-tyrosine phosphatase mu [MAM] domain-containing glycosylphosphatidylinositol anchor protein 1) interact to regulate brain inhibition. This APP-MDGA1 complex influences synaptic function and memory in the hippocampus.

Area of Science:

  • Neuroscience
  • Molecular Biology
  • Synaptic Plasticity

Background:

  • Balanced synaptic inhibition is crucial for brain function, regulated by synaptic adhesion proteins.
  • MDGA1 suppresses synaptic inhibition, but its precise molecular mechanisms are unclear.

Purpose of the Study:

  • To elucidate the molecular mechanisms of MDGA1-mediated regulation of GABAergic synapses.
  • To investigate the role of the MDGA1-APP interaction in synaptic function and memory.

Main Methods:

  • Investigated the interaction between MDGA1's MAM domain and APP's extension domain.
  • Utilized genetic manipulation (APP down-regulation/deletion) in hippocampal neurons.
  • Administered MDGA1 MAM protein infusion and overexpressed MDGA1 variants in mice.

Main Results:

  • MDGA1's MAM domain directly binds to APP.
  • MDGA1-mediated synaptic disinhibition requires the MAM domain and affects distal dendrites.
  • APP down-regulation in GABAergic interneurons selectively reduced GABAergic transmission.
  • APP deletion had differential effects on interneuron subtypes, altering inhibition and excitability.
  • MDGA1 overexpression impaired novel object recognition memory.

Conclusions:

  • APP-MDGA1 complexes play unique roles in hippocampal neural circuits.
  • These complexes mediate trans-synaptic regulation of neuronal compartment-specific synaptic inhibition.
  • Findings offer insights into the molecular basis of synaptic inhibition and memory.