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Quantitative Analysis of Protein Expression to Study Lineage Specification in Mouse Preimplantation Embryos
Published on: February 22, 2016
X-inactivation analysis of embryonic lethality in Ocrl wt/-; Inpp5b-/- mice
David J Bernard1, Robert L Nussbaum
1Inborn Errors and Cell Biology, Genetic Disease Research Branch, National Human Genome Research Institute, National Institutes of Health, Bethesda, MD 20892, USA.
Abstract:
Mutations in the human OCRL gene, which encodes a phosphatidylinositol(4,5)bisphosphate 5-phosphatase, result in the X-linked oculocerebrorenal syndrome of Lowe. Mice with a targeted disruption of Ocrl have no phenotypic abnormalities. Targeted disruption of its closest paralog, Inpp5b, causes male infertility in the 129S6 background. Mice with disruptions of both genes are lost in utero prior to 9.5-10.5 dpc, indicating that there is a functional overlap between the two paralogs early in development. We analyzed the pattern of X-inactivation in four tissues of distinct embryonic origin from Ocrl (wt/-);Inpp5b (-/-) females to explore the timing and tissue distribution of the functional overlap. X-inactivation was strongly skewed against the disrupted Ocrl (-) allele being on the active X chromosome in all four tissues tested, indicating that there is early selection against cell lineages lacking both Ocrl and Inpp5b. Extraembryonic tissue was also involved in the lethality because there were never any live-born Ocrl (wt/-);Inpp5b (-/-) females when the functional Ocrl (wt ) allele was on the paternal X chromosome, which is preferentially inactivated in trophoblast-derived extraembryonic tissues. Live-born Ocrl (wt/-);Inpp5b (-/-) females were found when the functional Ocrl (wt) allele was maternal, although in fewer numbers than expected. The importance of the extraembryonic tissues in the early embryonic lethality of embryos lacking both Ocrl and Inpp5b is reinforced by the successful isolation of a viable 40,XX Ocrl (-/-);Inpp5b (-/-) embryonic stem cell from the inner cell mass of a 3.5-dpc blastocyst prior to implantation. These results indicate a functional overlap of Ocrl and Inpp5b in most cell lineages, especially in extraembryonic tissues.
Insights
The OCRL and INPP5B genes show functional overlap early in development, with combined mutations causing embryonic lethality. This overlap is crucial, especially in extraembryonic tissues, impacting early embryonic development.
Area of Science:
- Genetics and Developmental Biology
- Molecular and Cellular Biology
Background:
- Mutations in the human OCRL gene cause Lowe syndrome.
- OCRL encodes a phosphatidylinositol(4,5)bisphosphate 5-phosphatase.
- OCRL and its paralog INPP5B have overlapping functions.
Purpose of the Study:
- To investigate the functional overlap between OCRL and INPP5B during early embryonic development.
- To determine the timing and tissue distribution of this functional overlap.
Main Methods:
- Analysis of X-inactivation patterns in Ocrl (wt/-);Inpp5b (-/-) female mice across four distinct tissue types.
- Examination of live-born offspring and embryonic stem cell isolation.
Main Results:
- Combined disruption of Ocrl and Inpp5b leads to embryonic lethality before 9.5-10.5 dpc.
- X-inactivation was skewed against the disrupted Ocrl allele, indicating selection against cells lacking both genes.
- Extraembryonic tissues play a critical role in the lethality, as evidenced by skewed X-inactivation and live-born ratios dependent on the parental origin of the functional OCRL allele.
Conclusions:
- OCRL and INPP5B exhibit significant functional overlap in most cell lineages, particularly in extraembryonic tissues.
- This overlap is essential for early embryonic development and survival.
- The findings highlight the critical roles of these genes in embryogenesis.
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X-Inactivation
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