SummaryNR3A is the only NMDA receptor (NMDAR) subunit that downregulates sharply prior to the onset of sensitive periods for plasticity, yet the functional importance of this transient expression remains unknown. To investigate whether removal/replacement of juvenile NR3A-containing NMDARs is involved in experience-driven synapse maturation, we used a reversible transgenic system that prolonged NR3A expression in the forebrain. We found that removal of NR3A is required to develop strong NMDAR currents, full expression of long-term synaptic plasticity, a mature synaptic organization characterized by more synapses and larger postsynaptic densities, and the ability to form long-term memories. Deficits associated with prolonged NR3A were revers...
Proper functioning of neuronal networks relies on the refinement of immature synaptic contacts, alth...
NR3 is a novel, developmentally regulated NMDA receptor (NMDAR) subunit that was previously known as...
Neurons in the brains of newborns are usually connected with many other neurons through weak synapse...
NR3A is the only NMDA receptor (NMDAR) subunit that down-regulates sharply prior to the onset of sen...
NR3A is the only NMDA receptor (NMDAR) subunit that down-regulates sharply prior to the onset of sen...
SummaryNR3A is the only NMDA receptor (NMDAR) subunit that downregulates sharply prior to the onset ...
Glutamatergic synapse maturation is critically dependent upon activation of NMDA-type glutamate rece...
Glutamatergic synapse maturation is critically dependent upon activation of NMDA-type glutamate rece...
Glutamatergic synapse maturation is critically dependent upon activation of NMDA-type glutamate rece...
Glutamatergic synapse maturation is critically dependent upon activation of NMDA-type glutamate rece...
Recent evidence suggests that presynaptic-acting NMDA receptors (preNMDARs) are important for neocor...
Subunit composition of N-methyl-D-aspartate–type glutamate recep-tors (NMDARs) dictates their functi...
NR3A is a developmentally regulated N-methyl-D-aspartate receptor (NMDAR) subunit that was previousl...
NR3A is a developmentally regulated N-methyl-D-aspartate receptor (NMDAR) subunit that was previousl...
Proper functioning of neuronal networks relies on the refinement of immature synaptic contacts, alth...
Proper functioning of neuronal networks relies on the refinement of immature synaptic contacts, alth...
NR3 is a novel, developmentally regulated NMDA receptor (NMDAR) subunit that was previously known as...
Neurons in the brains of newborns are usually connected with many other neurons through weak synapse...
NR3A is the only NMDA receptor (NMDAR) subunit that down-regulates sharply prior to the onset of sen...
NR3A is the only NMDA receptor (NMDAR) subunit that down-regulates sharply prior to the onset of sen...
SummaryNR3A is the only NMDA receptor (NMDAR) subunit that downregulates sharply prior to the onset ...
Glutamatergic synapse maturation is critically dependent upon activation of NMDA-type glutamate rece...
Glutamatergic synapse maturation is critically dependent upon activation of NMDA-type glutamate rece...
Glutamatergic synapse maturation is critically dependent upon activation of NMDA-type glutamate rece...
Glutamatergic synapse maturation is critically dependent upon activation of NMDA-type glutamate rece...
Recent evidence suggests that presynaptic-acting NMDA receptors (preNMDARs) are important for neocor...
Subunit composition of N-methyl-D-aspartate–type glutamate recep-tors (NMDARs) dictates their functi...
NR3A is a developmentally regulated N-methyl-D-aspartate receptor (NMDAR) subunit that was previousl...
NR3A is a developmentally regulated N-methyl-D-aspartate receptor (NMDAR) subunit that was previousl...
Proper functioning of neuronal networks relies on the refinement of immature synaptic contacts, alth...
Proper functioning of neuronal networks relies on the refinement of immature synaptic contacts, alth...
NR3 is a novel, developmentally regulated NMDA receptor (NMDAR) subunit that was previously known as...
Neurons in the brains of newborns are usually connected with many other neurons through weak synapse...