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Updated: Mar 25, 2026

A Mass Spectrometry-Based Approach to Identify Phosphoprotein Phosphatases and their Interactors
Published on: April 29, 2022
The protein phosphatase 6 catalytic subunit (Ppp6c) is indispensable for proper post-implantation embryogenesis
Honami Ogoh1, Nobuhiro Tanuma2, Yasuhisa Matsui3
1Department of Biological Science, Graduate School of Humanities and Sciences, Nara Women's University, Nara, Japan.
Insights
The Ppp6c phosphatase domain is essential for embryonic development. Mice lacking this domain die shortly after implantation due to severe developmental defects, highlighting its critical role in embryogenesis.
Area of Science:
- Molecular Biology
- Developmental Biology
- Genetics
Background:
- Phosphoprotein phosphatase 6 (PP6), encoded by Ppp6c, is a conserved enzyme with known roles in DNA repair and mitosis.
- Ppp6c mutations are implicated in melanoma and skin cancer, but its physiological function remains largely unknown.
Purpose of the Study:
- To investigate the in vivo physiological role of the Ppp6c phosphatase domain during mouse embryogenesis.
Main Methods:
- Generation of mice lacking the Ppp6c phosphatase domain via heterozygous mutant crosses.
- Analysis of embryonic development, including blastocyst culture and MEF proliferation assays.
Main Results:
- Homozygous Ppp6c mutant mice were non-viable, indicating a lethal mutation.
- Mutant embryos showed normal blastocyst appearance but degenerated by E7.5-E8.5, with defects post-implantation.
- Homozygous blastocysts exhibited inner cell mass growth failure in vitro, and Ppp6c-deficient MEFs showed reduced proliferation.
Conclusions:
- The Ppp6c phosphatase domain is indispensable for mouse embryogenesis after implantation.
- Loss of Ppp6c function leads to embryonic lethality due to impaired post-implantation development and cellular proliferation.
Abstract:
Ppp6c, which encodes the catalytic subunit of phosphoprotein phosphatase 6 (PP6), is conserved among eukaryotes from yeast to humans. In mammalian cells, PP6 targets IκBε for degradation, activates DNA-dependent protein kinase to trigger DNA repair, and is reportedly required for normal mitosis. Recently, Ppp6c mutations were identified as candidate drivers of melanoma and skin cancer. Nonetheless, little is known about the physiological role of Ppp6c. To investigate this function in vivo, we established mice lacking the Ppp6c phosphatase domain by crossing heterozygous mutants. No viable homozygous pups were born, indicative of a lethal mutation. Ppp6c homozygous mutant embryos were identified among blastocysts, which exhibited a normal appearance, but embryos degenerated by E7.5 and showed clear developmental defects at E8.5, suggesting that mutant embryos die after implantation. Accordingly, homozygous blastocysts showed significant growth failure of the inner cell mass (ICM) in in vitro blastocyst culture, and primary Ppp6c exon4-deficient MEFs showed greatly reduced proliferation. These results establish for the first time that the Ppp6c phosphatase domain is indispensable for mouse embryogenesis after implantation.
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