MEF2 (A–D) transcription factors govern development, differentiation and maintenance of various cell types including neurons. The role of MEF2 isoforms in the brain has been studied using in vitro manipulations with only MEF2C examined in vivo. In order to understand specific as well as redundant roles of the MEF2 isoforms, we generated brain-specific deletion of MEF2A and found that Mef2aKO mice show normal behavior in a range of paradigms including learning and memory. We next generated Mef2a and Mef2d brain-specific double KO (Mef2a/dDKO) mice and observed deficits in motor coordination and enhanced hippocampal short-term synaptic plasticity, however there were no alterations in learning and memory, Schaffer collateral pathway long-term ...
Members of the myocyfe enhancer factor 2 (MEF2) gene family are expressed in a dynamic pattern durin...
The highly complex and specialized functions of the mammalian cortex rely on precise temporal develo...
Although many transcription factors are known to control important aspects of neural development, th...
MEF2 (A-D) transcription factors govern development, differentiation and maintenance of various cell...
The family of myocyte enhancer factor 2 (MEF2) transcription factors comprises four highly conserved...
The synaptic remodeling of neural circuits is thought to underly memory formation. Both long-term m...
Medium spiny neurons (MSNs) are the major projection of the striatum and are the neurons predominant...
Point mutations and structural variants that directly disrupt the coding sequence of MEF2C have been...
Myocyte enhancer factor (Mef)‐2 transcription factors are implicated in activity‐dependent neuronal ...
The transcription factors of the myocyte enhancer factor 2 family (MEF2 A-D) are highly expressed in...
Numerous genetic variants associated with MEF2C are linked to autism, intellectual disability (ID) a...
Summary: The MEF2 family of transcription factors restricts excitatory synapse number in an activity...
Numerous brain disorders arise from disruptions in one or more genetically-regulated processes that ...
Although many transcription factors are known to control important aspects of neural development, th...
SummaryAlthough many transcription factors are known to control important aspects of neural developm...
Members of the myocyfe enhancer factor 2 (MEF2) gene family are expressed in a dynamic pattern durin...
The highly complex and specialized functions of the mammalian cortex rely on precise temporal develo...
Although many transcription factors are known to control important aspects of neural development, th...
MEF2 (A-D) transcription factors govern development, differentiation and maintenance of various cell...
The family of myocyte enhancer factor 2 (MEF2) transcription factors comprises four highly conserved...
The synaptic remodeling of neural circuits is thought to underly memory formation. Both long-term m...
Medium spiny neurons (MSNs) are the major projection of the striatum and are the neurons predominant...
Point mutations and structural variants that directly disrupt the coding sequence of MEF2C have been...
Myocyte enhancer factor (Mef)‐2 transcription factors are implicated in activity‐dependent neuronal ...
The transcription factors of the myocyte enhancer factor 2 family (MEF2 A-D) are highly expressed in...
Numerous genetic variants associated with MEF2C are linked to autism, intellectual disability (ID) a...
Summary: The MEF2 family of transcription factors restricts excitatory synapse number in an activity...
Numerous brain disorders arise from disruptions in one or more genetically-regulated processes that ...
Although many transcription factors are known to control important aspects of neural development, th...
SummaryAlthough many transcription factors are known to control important aspects of neural developm...
Members of the myocyfe enhancer factor 2 (MEF2) gene family are expressed in a dynamic pattern durin...
The highly complex and specialized functions of the mammalian cortex rely on precise temporal develo...
Although many transcription factors are known to control important aspects of neural development, th...