Membrane-derived phospholipids control synaptic neurotransmission and plasticity
Identificadores
URI: http://hdl.handle.net/10498/30961
DOI: 10.1371/JOURNAL.PBIO.1002153
ISSN: 1544-9173
ISSN: 1545-7885
Ficheros
Estadísticas
Métricas y Citas
Metadatos
Mostrar el registro completo del ítemFecha
2015-09Departamento/s
Biomedicina, Biotecnología y Salud PúblicaFuente
PLoS biology - 2015, Vol. 13 n.5 pp. 1-30Resumen
Synaptic communication is a dynamic process that is key to the regulation of neuronal excitability
and information processing in the brain. To date, however, the molecular signals controlling
synaptic dynamics have been poorly understood. Membrane-derived bioactive
phospholipids are potential candidates to control short-term tuning of synaptic signaling, a
plastic event essential for information processing at both the cellular and neuronal network
levels in the brain. Here, we showed that phospholipids affect excitatory and inhibitory neurotransmission
by different degrees, loci, and mechanisms of action. Signaling triggered
by lysophosphatidic acid (LPA) evoked rapid and reversible depression of excitatory and
inhibitory postsynaptic currents. At excitatory synapses, LPA-induced depression depended
on LPA1/Gαi/o-protein/phospholipase C/myosin light chain kinase cascade at the
presynaptic site. LPA increased myosin light chain phosphorylation, which is known to trigger
actomyosin contraction, and reduced the number of synaptic vesicles docked to active
zones in excitatory boutons. At inhibitory synapses, postsynaptic LPA signaling led to dephosphorylation,
and internalization of the GABAAγ2 subunit through the LPA1/Gα12/13-protein/
RhoA/Rho kinase/calcineurin pathway. However, LPA-induced depression of
GABAergic transmission was correlated with an endocytosis-independent reduction of
GABAA receptors, possibly by GABAAγ2 dephosphorylation and subsequent increased lateral
diffusion. Furthermore, endogenous LPA signaling, mainly via LPA1, mediated activitydependent
inhibitory depression in a model of experimental synaptic plasticity. Finally, LPA
signaling, most likely restraining the excitatory drive incoming to motoneurons, regulated
performance of motor output commands, a basic brain processing task. We propose that
lysophospholipids serve as potential local messengers that tune synaptic strength to precedent
activity of the neuron.
Materias
LPA; motoneurona; GABAColecciones
- Artículos Científicos [11777]






