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Bettler, B.

Publications and source records attributed to Bettler, B..

4 recordsLinked to original sources

Soluble amyloid-β precursor peptide does not regulate GABAB receptor activity

Amyloid-{beta} precursor protein (APP) regulates neuronal activity through the release of secreted APP (sAPP) acting at cell-surface receptors. APP and sAPP were reported to bind to the extracellular sushi domain 1 (SD1) of GABAB receptors (GBRs). A 17 amino-acid peptide (APP17) derived from APP was sufficient for SD1 binding and shown to mimic the inhibitory effect of sAPP on neurotransmitter release and neuronal activity. The functional effects of APP17 and sAPP were similar to those of the GBR agonist baclofen and blocked by a GBR antagonist. These experiments led to the proposal that sAPP activates GBRs to exert its neuronal effects. However, whether APP17 and sAPP indeed influence classical GBR signaling pathways in heterologous cells was not analyzed. Here, we confirm that APP17 binds to GBRs with nanomolar affinity. However, biochemical and electrophysiological assays indicate that APP17 does not influence GBR activity in heterologous cells. Moreover, we found no evidence for APP17 regulating K+ currents in cultured neurons, neurotransmitter release in brain slices, or neuronal activity in vivo. Our results show that APP17 is not a functional GBR ligand and indicate that sAPP exerts neuronal effects through receptors other than GBRs.

neuroscience↗

GABAB receptor/HCN channel complexes in VTA dopamine neurons limit synaptic inhibition and prevent anxiety-like behavior

Aversive stimuli inhibiting dopamine neurons in the ventral tegmental area (DAVTA neurons) induce anxiety-like behaviors. The inhibition of DAVTA neurons is prolonged by GABAB receptor (GBR)-activated K+-currents, which exhibit a rapid desensitization of unknown physiological relevance. We now report that GBRs associate via auxiliary KCTD16 subunits with HCN channels, which facilitates activation of hyperpolarization- activated currents (Ih) by GBR-activated K+ currents. Activation of Ih underlies rapid K+ current desensitization in DAVTA neurons and limits GBR-mediated inhibition. Disruption of the GBR/HCN complex in KCTD16-/- mice or blockade of Ih prolongs optogenetically driven inhibition of DAVTA neuron firing. KCTD16-/- mice exhibit an increased anxiety-like behavior in response to stressful stimuli, which is reproduced by in vivo CRISPR/Cas9-mediated KCTD16 ablation in DAVTA neurons or intra-VTA infusion of HCN antagonist to wild-type mice. Our data reveal that GBR-induced Ih protect DAVTA neurons from prolonged GBR- mediated inhibition in response to stressors, which moderates anxiety-like behaviors.

neuroscience↗

Impaired bidirectional communication between interneurons and oligodendrocyte precursor cells affects cognitive behavior

Cortical neural circuits are complex but very precise networks of balanced excitation and inhibition (E/I). Yet, the molecular and cellular mechanisms that form the E/I balance are just beginning to emerge. Here, using conditional GABAB receptor-deficient mice we identified a GABA/TNF-related cytokine (TNFSF12)-mediated bidirectional communication pathway between Parvalbumin-positive (PV+) fast spiking interneurons and oligodendrocyte precursor cells (OPCs) that determines the density and function of interneurons in the developing medial prefrontal cortex (mPFC). Interruption of the GABAergic signaling to OPCs resulted in reduced myelination and hypoactivity of interneurons, strong changes of cortical network activities and impaired cognitive behavior. In conclusion, glial transmitter receptors are pivotal elements in finetuning distinct brain functions.

neuroscience↗

GABAB receptor auxiliary subunits modulate Cav2.3-mediated release from medial habenula terminals

The connection from medial habenula (MHb) to interpeduncular nucleus is critical for aversion- and addiction-related behaviors. This pathway is unique in selective expression of R-type voltage-gated Ca2+ channels (Cav2.3) in its terminals, and robust potentiation of release via presynaptic GABAB receptors (GBRs). To understand the mechanism underlying this peculiar GBR effect, we examined the presynaptic localization and function of Cav2.3, GBR, and its auxiliary subunits, K+-channel tetramerization domain-containing (KCTD) proteins. We found selective co-expression of KCTD12b and Cav2.3 at the presynaptic active zone. GBR-mediated potentiation remained intact in KCTD12b KO mice but lasted significantly shorter. This impairment was associated with increased release and an insertion of KCTD8 into the active zone. In heterologous cells, we found direct binding of KCTD8 and KCTD12b to Cav2.3, and potentiation of Cav2.3 currents by KCTD8. The unexpected interaction of Cav2.3 with KCTDs therefore provides a means to scale synaptic strength independent of GBR activation.

neuroscience↗