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Developmental abnormalities in Steel17H mice result from a splicing defect in the steel factor cytoplasmic tail
C I Brannan1, M A Bedell, J L Resnick
1Mammalian Genetics Laboratory, National Cancer Institute-Frederick Cancer Research and Development Center, Maryland 21702.
Abstract:
The murine dominant White spotting (W) and Steel (Sl) loci encode the c-kit tyrosine kinase receptor and its cognate ligand steel factor (SLF), respectively. Mutations at either locus produce deficiencies in the same three migratory cell populations--those giving rise to pigment cells, germ cells, and blood cells. The identification of the gene products of these two loci combined with the plethora of W and Sl mutations available for molecular analysis offers a unique opportunity to dissect the role of a tyrosine kinase receptor and its cognate ligand during development in a fashion not possible for most other mammalian genes. Among the most interesting Sl mutations available for study are those that induce sterility in only one sex. In studies described here, we show that one of these alleles, Sl17H, which in the homozygous condition induces sterility in males but not females, is the result of a splicing defect in the SLF cytoplasmic tail. We also characterize the nature of the germ cell defects in male and female Sl17H mice and show that both sexes are affected equally during embryonic but not postnatal development. These studies provide new insights into the role of SLF in germ cell development and indicate that the cytoplasmic domain of SLF is important for its normal biological function.
Insights
The Steel factor (SLF) cytoplasmic tail is crucial for germ cell development. A specific mutation (Sl17H) reveals its importance, causing male-specific sterility due to a splicing defect.
Area of Science:
- Developmental biology
- Genetics
- Cell biology
Background:
- The White spotting (W) and Steel (Sl) loci in mice encode the c-kit receptor tyrosine kinase and its ligand, steel factor (SLF).
- Mutations at these loci affect pigment, germ, and blood cell development.
- Specific Sl mutations offer insights into sex-specific roles during development.
Purpose of the Study:
- To investigate the role of the steel factor (SLF) cytoplasmic tail in development.
- To characterize the germ cell defects associated with the Sl17H mutation.
- To understand the molecular basis of sex-specific sterility in Sl17H mice.
Main Methods:
- Molecular analysis of the Sl17H allele.
- Characterization of germ cell development in Sl17H mutant mice (both sexes).
- Comparison of embryonic and postnatal development.
Main Results:
- The Sl17H mutation results from a splicing defect in the SLF cytoplasmic tail.
- Sl17H homozygotes exhibit male-specific sterility.
- Germ cell defects are equivalent in both sexes during embryonic development but diverge postnatally.
Conclusions:
- The cytoplasmic domain of SLF is essential for normal biological function, particularly in germ cell development.
- SLF plays a critical role in both embryonic and postnatal germ cell maturation.
- The Sl17H mutation provides a model for dissecting sex-specific developmental pathways.