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Preparation of Oligomeric β-amyloid1-42 and Induction of Synaptic Plasticity Impairment on Hippocampal Slices
Published on: July 14, 2010
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.
Abstract:
Balanced synaptic inhibition, controlled by multiple synaptic adhesion proteins, is critical for proper brain function. MDGA1 (meprin, A-5 protein, and receptor protein-tyrosine phosphatase mu [MAM] domain-containing glycosylphosphatidylinositol anchor protein 1) suppresses synaptic inhibition in mammalian neurons, yet the molecular mechanisms underlying MDGA1-mediated negative regulation of GABAergic synapses remain unresolved. Here, we show that the MDGA1 MAM domain directly interacts with the extension domain of amyloid precursor protein (APP). Strikingly, MDGA1-mediated synaptic disinhibition requires the MDGA1 MAM domain and is prominent at distal dendrites of hippocampal CA1 pyramidal neurons. Down-regulation of APP in presynaptic GABAergic interneurons specifically suppressed GABAergic, but not glutamatergic, synaptic transmission strength and inputs onto both the somatic and dendritic compartments of hippocampal CA1 pyramidal neurons. Moreover, APP deletion manifested differential effects in somatostatin- and parvalbumin-positive interneurons in the hippocampal CA1, resulting in distinct alterations in inhibitory synapse numbers, transmission, and excitability. The infusion of MDGA1 MAM protein mimicked postsynaptic MDGA1 gain-of-function phenotypes that involve the presence of presynaptic APP. The overexpression of MDGA1 wild type or MAM, but not MAM-deleted MDGA1, in the hippocampal CA1 impaired novel object-recognition memory in mice. Thus, our results establish unique roles of APP-MDGA1 complexes in hippocampal neural circuits, providing unprecedented insight into trans-synaptic mechanisms underlying differential tuning of neuronal compartment-specific synaptic inhibition.
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.

