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Published on: June 14, 2018
Knockout of the fcsk gene in zebrafish causes neurodevelopmental defects
Zhen-Xing Liu1, Ting-Ting Zou1, Hui-Hui Liu1
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:
Congenital disorders of glycosylation (CDG) are a cluster of monogenic disorders resulting from defects in glycosylation. FCSK encodes fucokinase, an enzyme that catalyzes the phosphorylation of L-fucose to generate fucose-1-phosphate, an important step in fucosylation. Mutations in FCSK lead to CDG with an autosomal recessive inheritance pattern, primarily manifesting as developmental delay, hypotonia, and brain abnormalities. However, no fcsk mutant animal models have yet been established. This study constructed the first fcsk knockout ( fcsk -/-) zebrafish model using CRISPR/Cas9 technology. Notably, fcsk -/- zebrafish exhibited impaired growth, characterized by delayed epiboly and DNA accumulation during early embryonic development, as well as brain atrophy in adulthood. Larval-stage fcsk -/- zebrafish displayed locomotor deficits and increased susceptibility to pentylenetetrazole-induced seizures. In adulthood, fcsk -/- zebrafish showed neurodevelopmental abnormalities, including increased anxiety, decreased aggression, reduced social preference, and impaired memory. Additionally, total protein fucosylation was markedly reduced in fcsk -/- zebrafish, accompanied by decreased expression of pofut2, which encodes protein O-fucosyltransferase 2, an enzyme involved in the fucosylation salvage pathway. Apoptotic activity was elevated in the midbrain-hindbrain boundary (MHB) of fcsk -/- zebrafish. Supplementation with GDP-L-fucose or the human FCSK gene restored developmental defects and total protein fucosylation in fcsk -/- zebrafish. RNA sequencing revealed dysregulated gene expression associated with glycosylation, apoptosis, and neurodegenerative diseases. These findings suggest that fcsk -/- zebrafish exhibit neurodevelopmental disorders, providing the first fcsk gene knockout animal model and offering a platform for investigating the molecular underpinnings of the disease and facilitating drug screening efforts.
Insights
The first fucokinase (FCSK) knockout zebrafish model reveals neurodevelopmental disorders, including impaired growth and brain abnormalities, offering a new platform for studying congenital disorders of glycosylation.
Area of Science:
- Biochemistry
- Genetics
- Neuroscience
Background:
- Congenital disorders of glycosylation (CDG) are monogenic disorders impacting protein fucosylation.
- Mutations in the Fucokinase (FCSK) gene cause CDG with autosomal recessive inheritance, leading to developmental delay and brain abnormalities.
- No animal models for FCSK deficiency currently exist.
Purpose of the Study:
- To create the first zebrafish model of FCSK deficiency using CRISPR/Cas9 technology.
- To investigate the phenotypic consequences of FCSK deficiency in zebrafish.
- To establish a platform for studying CDG and facilitating drug discovery.
Main Methods:
- CRISPR/Cas9 gene editing was used to generate FCSK knockout (fcsk-/-) zebrafish.
- Phenotypic analyses included assessments of growth, embryonic development, locomotor activity, seizure susceptibility, and adult neurobehavior.
- Biochemical assays measured total protein fucosylation, and RNA sequencing analyzed gene expression patterns.
Main Results:
- FCSK knockout zebrafish exhibited impaired growth, delayed epiboly, DNA accumulation, and adult brain atrophy.
- Larval zebrafish showed locomotor deficits and increased seizure susceptibility, while adult zebrafish displayed anxiety, reduced social preference, and memory deficits.
- Reduced protein fucosylation, decreased pofut2 expression, and elevated apoptosis in the MHB were observed. Gene expression analysis revealed dysregulation in glycosylation, apoptosis, and neurodegenerative pathways.
Conclusions:
- The fcsk-/- zebrafish model recapitulates key features of FCSK-deficient CDG, including neurodevelopmental deficits.
- This model provides the first in vivo system for studying FCSK function and the pathogenesis of related disorders.
- The model serves as a valuable platform for screening therapeutic interventions for CDG.

