Javascript must be enabled to continue!
Mosaic and non-mosaic protocadherin 19 mutation leads to neuronal hyperexcitability in zebrafish
View through CrossRef
Abstract
Epilepsy is one of the most common neurological disorders. The X-linked gene
PCDH19
is associated with sporadic and familial epilepsy in humans, typically with early-onset clustering seizures and intellectual disability in females but not in so-called ‘carrier’ males, suggesting that mosaic PCDH19 expression is required to produce epilepsy. To characterize the role of loss of PCDH19 function in epilepsy, we generated zebrafish with truncating
pcdh19
variants. Evaluating zebrafish larvae for electrophysiological abnormalities, we observed hyperexcitability phenotypes in both mosaic and non-mosaic
pcdh19
+/-
and
pcdh19
-/-
mutant larvae. Thus, we demonstrate that the key feature of epilepsy—network hyperexcitability—can be modeled effectively in zebrafish, even though overt spontaneous seizure-like swim patterns were not observed. Further, zebrafish with non-mosaic
pcdh19
mutation displayed reduced numbers of inhibitory interneurons suggesting a potential cellular basis for the observed hyperexcitability. Our findings in both mosaic and non-mosaic
pcdh19
mutant zebrafish challenge the prevailing theory that mosaicism governs all PCDH19-related phenotypes and point to interneuron-mediated mechanisms underlying these phenotypes.
Title: Mosaic and non-mosaic protocadherin 19 mutation leads to neuronal hyperexcitability in zebrafish
Description:
Abstract
Epilepsy is one of the most common neurological disorders.
The X-linked gene
PCDH19
is associated with sporadic and familial epilepsy in humans, typically with early-onset clustering seizures and intellectual disability in females but not in so-called ‘carrier’ males, suggesting that mosaic PCDH19 expression is required to produce epilepsy.
To characterize the role of loss of PCDH19 function in epilepsy, we generated zebrafish with truncating
pcdh19
variants.
Evaluating zebrafish larvae for electrophysiological abnormalities, we observed hyperexcitability phenotypes in both mosaic and non-mosaic
pcdh19
+/-
and
pcdh19
-/-
mutant larvae.
Thus, we demonstrate that the key feature of epilepsy—network hyperexcitability—can be modeled effectively in zebrafish, even though overt spontaneous seizure-like swim patterns were not observed.
Further, zebrafish with non-mosaic
pcdh19
mutation displayed reduced numbers of inhibitory interneurons suggesting a potential cellular basis for the observed hyperexcitability.
Our findings in both mosaic and non-mosaic
pcdh19
mutant zebrafish challenge the prevailing theory that mosaicism governs all PCDH19-related phenotypes and point to interneuron-mediated mechanisms underlying these phenotypes.
Related Results
Piece by piece: Collaborative mosaic-making for inclusive policy development
Piece by piece: Collaborative mosaic-making for inclusive policy development
This report sets out the findings from one of four projects commissioned by Wellcome Policy Lab to pilot creative approaches to policy development. In this project, Scientia Script...
Alternatives in Animal Research: The Zebrafish Option
Alternatives in Animal Research: The Zebrafish Option
The utilisation of animals in scientific research has been a longstanding subject of debate, with concerns about animal welfare and ethics. In response, researchers have been inves...
Metabolically induced neuronal differentiation
Metabolically induced neuronal differentiation
In recent years, several neuronal differentiation protocols were published that circumvent the requirement of embryoid body (EB) formation under serum-deprivation and simplified me...
Functional Neurophysiological Biomarkers of Early‐Stage Alzheimer’s Disease: An Experimental Perspective of Network Hyperexcitability in Disease Progression and Pharmacological Interventions
Functional Neurophysiological Biomarkers of Early‐Stage Alzheimer’s Disease: An Experimental Perspective of Network Hyperexcitability in Disease Progression and Pharmacological Interventions
AbstractBackgroundNeuronal network hyperexcitability and related alterations in the excitation‐inhibition balance hold promise as early functional biomarkers of network dysfunction...
Abstract 1273: Adaptive immunity in a zebrafish model of melanoma.
Abstract 1273: Adaptive immunity in a zebrafish model of melanoma.
Abstract
The recent success of the anti-CLTA-4 antibody, ipilimumab, for late stage metastatic melanoma, provides proof of principle that stimulating the immune syst...
Abstract 1581: Tumor suppressor functions of the zebrafish ink4ab: a novel cyclin-dependent kinase inhibitor.
Abstract 1581: Tumor suppressor functions of the zebrafish ink4ab: a novel cyclin-dependent kinase inhibitor.
Abstract
The human INK4b-ARF-INK4a genetic locus encodes two closely related members of the INK4 family of cyclin dependent kinase inhibitors, p15INK4b and p16INK4a ...
Abstract B007: Patterns and quantitation of migration and metastasis in a zebrafish xenograft model of ewing sarcoma
Abstract B007: Patterns and quantitation of migration and metastasis in a zebrafish xenograft model of ewing sarcoma
Abstract
Ewing sarcoma (ES) is one of the most common and lethal pediatric cancers with a 5-year survival rate of less than 30% for those with metastatic disease. Ap...
Rearranged zebrafish genomic DNA induces zebrafish mutant after microinjection into fertilized egg and preliminary study of the mechanism
Rearranged zebrafish genomic DNA induces zebrafish mutant after microinjection into fertilized egg and preliminary study of the mechanism
Abstract
Genomic DNA of zebrafish was first digested incompletely with
Msp I
, and then the fragments were jo...

