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Published on: October 19, 2021
Deficiency of pnkp in zebrafish causes microcephaly, seizures, and developmental delay through mitochondrial
Gui-Hua Wang1, Ling-Lu Xiao1, Wei-Min Jia1
1Key Laboratory of Molecular Biophysics of the Ministry of Education, College of Life Science and Technology and Center for Human Genome Research, Huazhong University of Science and Technology, Wuhan, Hubei 430074, China.
Abstract:
Variants in PNKP cause a severe neurodevelopmental disorder characterized by microcephaly, seizures, and developmental delay (MCSZ). Despite clear clinical significance, the pathological mechanisms underlying this condition remain incompletely understood. In this study, CRISPR/Cas9 genome editing was applied to generate a zebrafish pnkp knockout model ( pnkp -/- ), overcoming limitations associated with previously reported mouse models that exhibited postnatal lethality. The pnkp -/- zebrafish faithfully recapitulated key phenotypic traits observed in human PNKP deficiency, facilitating in-depth exploration of the molecular mechanisms contributing to disease. Loss of PNKP function resulted in mitochondrial DNA damage, accompanied by disruption of mitochondrial ultrastructure and bioenergetic function, increased apoptosis, and reduced autophagic activity, collectively leading to pronounced cerebral neurodevelopmental abnormalities. Transcriptomic analysis based on RNA sequencing identified marked down-regulation of gamma-aminobutyric acid (GABA) receptor-related genes. Pharmacological activation of GABA A receptors with muscimol partially rescued hyperactive behavior in pnkp -/- zebrafish, suggesting a potential link between GABAergic signaling and seizure-related phenotypes. Drug screening performed using the pnkp -/- zebrafish model further identified lamotrigine as a comparatively effective compound for seizure control associated with PNKP mutations. These findings clarify mechanistic links between PNKP deficiency and MCSZ pathology, identify candidate therapeutic agents, and provide an experimental framework for investigation of disorders associated with defective DNA repair.
Insights
Genetic variants in PNKP cause microcephaly, seizures, and developmental delay (MCSZ). A new zebrafish model reveals PNKP deficiency impairs mitochondrial function and GABA signaling, offering therapeutic insights for this severe neurodevelopmental disorder.
Area of Science:
- Genetics
- Neuroscience
- Molecular Biology
Background:
- Mutations in PNKP lead to a severe neurodevelopmental disorder (MCSZ) with microcephaly, seizures, and developmental delay.
- The precise pathological mechanisms of PNKP deficiency remain unclear, hindering therapeutic development.
Purpose of the Study:
- To establish a robust zebrafish model for PNKP deficiency to investigate disease mechanisms.
- To identify potential therapeutic targets and compounds for MCSZ.
Main Methods:
- CRISPR/Cas9 genome editing was used to create a zebrafish pnkp knockout model (pnkp-/-).
- Phenotypic characterization, transcriptomic analysis (RNA sequencing), and drug screening were performed.
- Mitochondrial function, apoptosis, autophagy, and GABAergic signaling were assessed.
Main Results:
- The pnkp-/- zebrafish model recapitulated key MCSZ phenotypes, including neurodevelopmental abnormalities.
- PNKP loss resulted in mitochondrial DNA damage, impaired mitochondrial function, increased apoptosis, and reduced autophagy.
- Down-regulation of GABA receptor genes was observed, and GABAergic signaling modulation showed therapeutic potential.
- Lamotrigine was identified as a promising drug for seizure control in this model.
Conclusions:
- PNKP deficiency causes MCSZ through mitochondrial dysfunction and altered GABAergic signaling.
- The zebrafish model provides a valuable platform for studying MCSZ and screening therapeutic agents.
- Targeting GABA receptors and utilizing compounds like lamotrigine may offer new treatment strategies for PNKP-related disorders.
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