Hyperactive MEK1 signaling in cortical GABAergic neurons causes embryonic parvalbumin-neuron death and defects in behavioral inhibition
Holter, M. C.; Hewitt, L. T.; Nishimura, K. J.; Bjorklund, G. R.; Shah, S.; Fry, N. R.; Rees, K. P.; Gupta, T. A.; Daniels, C. W.; Li, G.; Marsh, S.; Treiman, D. M.; Olive, M. F.; Anderson, T. R.; Sanabria, F.; Snider, W. D.; Newbern, J. M.
Show abstract
Abnormal ERK/MAPK pathway activity is an important contributor to the neuropathogenesis of many disorders including Fragile X, Rett, 16p11.2 Syndromes, and the RASopathies. Individuals with these syndromes often present with intellectual disability, ADHD, autism, and epilepsy. However, the pathological mechanisms that underly these deficits are not fully understood. Here, we examined whether hyperactivation of MEK1 signaling modifies the development of GABAergic cortical interneurons (CINs), a heterogeneous population of inhibitory neurons necessary for cortical function. We show that GABAergic-neuron specific MEK1 hyperactivation in vivo leads to increased cleaved caspase-3 labeling in a subpopulation of immature neurons in the embryonic subpallium. Adult mutants displayed a significant loss of mature parvalbumin-expressing (PV) CINs, but not somatostatin-expressing CINs, during postnatal development and a modest reduction in perisomatic inhibitory synapse formation on excitatory neurons. Surviving mutant PV-CINs maintained a typical fast-spiking phenotype and minor differences in intrinsic electrophysiological properties. These changes coincided with an increased risk of seizure-like phenotypes. In contrast to other mouse models of PV-CIN loss, we discovered a robust increase in the accumulation of perineuronal nets, an extracellular structure thought to restrict plasticity in the developing brain. Indeed, we found that mutants exhibit a significant impairment in the acquisition of a behavioral test that relies on behavioral response inhibition, a process linked to ADHD-like phenotypes. Overall, our data suggests PV-CIN development is particularly sensitive to hyperactive MEK1 signaling which may underlie neurological deficits frequently observed in ERK/MAPK-linked syndromes.\n\nSignificance StatementThe RASopathies are a family of neurodevelopmental syndromes caused by mutations that lead to increased RAS/RAF/MEK/ERK signaling and are associated with intellectual disability, epilepsy, and ADHD. We do not fully understand how distinct neuronal subtypes are affected in these syndromes. Here, we show that increased MEK signaling in developing mice promotes the embryonic death of a specific subset of cortical inhibitory neurons that express parvalbumin. Surviving mutant parvalbumin neurons also show significant changes in crucial maturation processes, which coincide with increased seizure susceptibility and profound deficits in behavioral inhibition. These data suggest that deficits in inhibitory circuit development contribute to RASopathy neuropathogenesis and indicate that therapeutic strategies targeting inhibitory interneuron dysfunction may be beneficial for these individuals.
Matching journals
The top 2 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Neurexin1α differentially regulates synaptic efficacy within striatal circuits 96%
- Biphasic impact of prenatal inflammation and macrophage depletion on the wiring of neocortical inhibitory circuits 96%
- Distinct disease mutations in DNMT3A result in a spectrum of behavioral, epigenetic, and transcriptional deficits 95%
Similar papers in this journal
- Ankyrin-R regulates fast-spiking interneuron excitability through perineuronal nets and Kv3.1b K+ channels 97%
- Emergence of Non-Canonical Parvalbumin-Containing Interneurons in Hippocampus of a Murine Model of Type I Lissencephaly 97%
- Experience-dependent weakening of callosal synaptic connections in the absence of postsynaptic FMRP 96%
Similar papers in this journal
- The gamma-Protocadherins regulate the survival of GABAergic interneurons during developmentally-regulated cell death. 97%
- Shared and distinct functional effects of patient-specific Tbr1 mutations on cortical development 96%
- Neuropilin 2 signaling mediates corticostriatal transmission, spine maintenance, and goal-directed learning in mice 96%
Similar papers in this journal
Similar papers in this journal
- Genetic expression of 4E-BP1 in juvenile mice alleviates mTOR-induced neuronal dysfunction and epilepsy 95%
- Enhanced mGluR1 function causes motor deficits and region-specific Purkinje cell dysfunction 94%
- Defective cyclophilin A induces TDP-43 proteinopathy: implications for amyotrophic lateral sclerosis and frontotemporal dementia 93%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.