» Articles » PMID: 17542649

Mutations in Gfpt1 and Skiv2l2 Cause Distinct Stage-specific Defects in Larval Melanocyte Regeneration in Zebrafish

Overview
Journal PLoS Genet
Specialty Genetics
Date 2007 Jun 5
PMID 17542649
Citations 25
Authors
Affiliations
Soon will be listed here.
Abstract

The establishment of a single cell type regeneration paradigm in the zebrafish provides an opportunity to investigate the genetic mechanisms specific to regeneration processes. We previously demonstrated that regeneration melanocytes arise from cell division of the otherwise quiescent melanocyte precursors following larval melanocyte ablation with a small molecule, MoTP. The ease of ablating melanocytes by MoTP allows us to conduct a forward genetic screen for mechanisms specific to regeneration from such precursors or stem cells. Here, we reported the identification of two mutants, eartha(j23e1) and julie(j24e1) from a melanocyte ablation screen. Both mutants develop normal larval melanocytes, but upon melanocyte ablation, each mutation results in a distinct stage-specific defect in melanocyte regeneration. Positional cloning reveals that the eartha(j23e1) mutation is a nonsense mutation in gfpt1 (glutamine:fructose-6-phosphate aminotransferase 1), the rate-limiting enzyme in glucosamine-6-phosphate biosynthesis. Our analyses reveal that a mutation in gfpt1 specifically affects melanocyte differentiation (marked by melanin production) at a late stage during regeneration and that gfpt1 acts cell autonomously in melanocytes to promote ontogenetic melanocyte darkening. We identified that the julie(j24e1) mutation is a splice-site mutation in skiv2l2 (superkiller viralicidic activity 2-like 2), a predicted DEAD-box RNA helicase. Our in situ analysis reveals that the mutation in skiv2l2 causes defects in cell proliferation, suggesting that skiv2l2 plays a role in regulating melanoblast proliferation during early stages of melanocyte regeneration. This finding is consistent with previously described role for cell division during larval melanocyte regeneration. The analyses of these mutants reveal their stage-specific roles in melanocyte regeneration. Interestingly, these mutants identify regeneration-specific functions not only in early stages of the regeneration process, but also in late stages of differentiation of the regenerating melanocyte. We suggest that mechanisms of regeneration identified in this mutant screen may reveal fundamental differences between the mechanisms that establish differentiated cells during embryogenesis, and those involved in larval or adult growth.

Citing Articles

Comparison of the ability of exosomes and ectosomes derived from adipose-derived stromal cells to promote cartilage regeneration in a rat osteochondral defect model.

Xu T, Yu X, Xu K, Lin Y, Wang J, Pan Z Stem Cell Res Ther. 2024; 15(1):18.

PMID: 38229196 PMC: 10792834. DOI: 10.1186/s13287-024-03632-4.


Population Genomic Sequencing Delineates Global Landscape of Copy Number Variations that Drive Domestication and Breed Formation of in Chicken.

Chen X, Bai X, Liu H, Zhao B, Yan Z, Hou Y Front Genet. 2022; 13:830393.

PMID: 35391799 PMC: 8980806. DOI: 10.3389/fgene.2022.830393.


Genetics of adaptation in modern chicken.

Qanbari S, Rubin C, Maqbool K, Weigend S, Weigend A, Geibel J PLoS Genet. 2019; 15(4):e1007989.

PMID: 31034467 PMC: 6508745. DOI: 10.1371/journal.pgen.1007989.


A Genetic Model to Study Increased Hexosamine Biosynthetic Flux.

Hugo S, Schlegel A Endocrinology. 2017; 158(8):2420-2426.

PMID: 28582574 PMC: 5551556. DOI: 10.1210/en.2017-00359.


Loss of the RNA helicase SKIV2L2 impairs mitotic progression and replication-dependent histone mRNA turnover in murine cell lines.

Onderak A, Anderson J RNA. 2017; 23(6):910-926.

PMID: 28351885 PMC: 5435864. DOI: 10.1261/rna.060640.117.


References
1.
Lorsch J . RNA chaperones exist and DEAD box proteins get a life. Cell. 2002; 109(7):797-800. DOI: 10.1016/s0092-8674(02)00804-8. View

2.
Mallet V, Mitchell C, Guidotti J, Jaffray P, Fabre M, Spencer D . Conditional cell ablation by tight control of caspase-3 dimerization in transgenic mice. Nat Biotechnol. 2002; 20(12):1234-9. DOI: 10.1038/nbt762. View

3.
Rawls J, Frieda M, McAdow A, Gross J, Clayton C, Heyen C . Coupled mutagenesis screens and genetic mapping in zebrafish. Genetics. 2003; 163(3):997-1009. PMC: 1462478. DOI: 10.1093/genetics/163.3.997. View

4.
Parichy D, Turner J, Parker N . Essential role for puma in development of postembryonic neural crest-derived cell lineages in zebrafish. Dev Biol. 2003; 256(2):221-41. DOI: 10.1016/s0012-1606(03)00016-2. View

5.
Owens D, Watt F . Contribution of stem cells and differentiated cells to epidermal tumours. Nat Rev Cancer. 2003; 3(6):444-51. DOI: 10.1038/nrc1096. View