Regulation of both excitatory and inhibitory synaptic transmission is critical for proper nervous system function. Aberrant synaptic signaling, including altered excitatory to inhibitory balance, is observed in numerous neurological diseases. The ubiquitin enzyme system controls the abundance of many synaptic proteins and thus plays a key role in regulating synaptic transmission. The Anaphase-Promoting Complex (APC) is a multi-subunit ubiquitin ligase that was originally discovered as a key regulator of protein turnover during the cell cycle. More recently, the APC has been shown to function in postmitotic neurons, where it regulates diverse processes such as synapse development and synaptic transmission at glutamatergic synapses. Here we r...
The C. elegans ortholog of mammalian calsyntenins, CASY-1, is an evolutionarily conserved type-I tra...
Ubiquitination occurs at synapses, yet its role remains unclear. Previous studies demonstrated that ...
Acetylcholine (ACh) receptors (AChR) regulate neural circuit activity in multiple contexts. In human...
Neurons communicate at specialized junctions called synapses. Tightly regulation of synapses is vita...
AbstractThe anaphase-promoting complex (APC) is a multisubunit E3 ubiquitin ligase that targets key ...
AbstractNeuronal plasticity relies on tightly regulated control of protein levels at synapses. One m...
Neuronal plasticity relies on tightly regulated control of protein levels at synapses. One mechanism...
Neurons communicate at specialized cell junctions called synapses by releasing chemical neurotransmi...
SummaryGABA synapses play a critical role in many aspects of circuit development and function. For e...
Healthy nervous system function requires a balance of excitatory and inhibitory (E:I) neuronal signa...
Establishing and maintaining the appropriate number of GABA synapses is key for balancing excitation...
Ubiquitination controls the activity of many proteins and has been implicated in almost every aspect...
The regulation of fundamental aspects of neurobiological function has been linked to the ubiquitin s...
The neurotransmitter GABA has been proposed to play a role during nervous system development. We sho...
Changing receptor abundance at synapses is an important mechanism for regulating synaptic strength. ...
The C. elegans ortholog of mammalian calsyntenins, CASY-1, is an evolutionarily conserved type-I tra...
Ubiquitination occurs at synapses, yet its role remains unclear. Previous studies demonstrated that ...
Acetylcholine (ACh) receptors (AChR) regulate neural circuit activity in multiple contexts. In human...
Neurons communicate at specialized junctions called synapses. Tightly regulation of synapses is vita...
AbstractThe anaphase-promoting complex (APC) is a multisubunit E3 ubiquitin ligase that targets key ...
AbstractNeuronal plasticity relies on tightly regulated control of protein levels at synapses. One m...
Neuronal plasticity relies on tightly regulated control of protein levels at synapses. One mechanism...
Neurons communicate at specialized cell junctions called synapses by releasing chemical neurotransmi...
SummaryGABA synapses play a critical role in many aspects of circuit development and function. For e...
Healthy nervous system function requires a balance of excitatory and inhibitory (E:I) neuronal signa...
Establishing and maintaining the appropriate number of GABA synapses is key for balancing excitation...
Ubiquitination controls the activity of many proteins and has been implicated in almost every aspect...
The regulation of fundamental aspects of neurobiological function has been linked to the ubiquitin s...
The neurotransmitter GABA has been proposed to play a role during nervous system development. We sho...
Changing receptor abundance at synapses is an important mechanism for regulating synaptic strength. ...
The C. elegans ortholog of mammalian calsyntenins, CASY-1, is an evolutionarily conserved type-I tra...
Ubiquitination occurs at synapses, yet its role remains unclear. Previous studies demonstrated that ...
Acetylcholine (ACh) receptors (AChR) regulate neural circuit activity in multiple contexts. In human...