Login / Signup

Secreted amyloid-β precursor protein functions as a GABABR1a ligand to modulate synaptic transmission.

Heather C RiceDaniel de MalmazetAn SchreursSamuel FrereInge Van MolleAlexander N VolkovEline CreemersIrena VertkinJulie NysFanomezana M RanaivosonDavide ComolettiJeffrey N SavasHan RemautDetlef BalschunKeimpe D B WierdaInna SlutskyKarl FarrowBart De StrooperJoris de Wit
Published in: Science (New York, N.Y.) (2019)
Amyloid-β precursor protein (APP) is central to the pathogenesis of Alzheimer's disease, yet its physiological function remains unresolved. Accumulating evidence suggests that APP has a synaptic function mediated by an unidentified receptor for secreted APP (sAPP). Here we show that the sAPP extension domain directly bound the sushi 1 domain specific to the γ-aminobutyric acid type B receptor subunit 1a (GABABR1a). sAPP-GABABR1a binding suppressed synaptic transmission and enhanced short-term facilitation in mouse hippocampal synapses via inhibition of synaptic vesicle release. A 17-amino acid peptide corresponding to the GABABR1a binding region within APP suppressed in vivo spontaneous neuronal activity in the hippocampus of anesthetized Thy1-GCaMP6s mice. Our findings identify GABABR1a as a synaptic receptor for sAPP and reveal a physiological role for sAPP in regulating GABABR1a function to modulate synaptic transmission.
Keyphrases
  • prefrontal cortex
  • amino acid
  • binding protein
  • type diabetes
  • metabolic syndrome
  • cognitive decline
  • adipose tissue
  • dna methylation
  • cognitive impairment
  • skeletal muscle
  • single cell
  • insulin resistance