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Embryonic NIPP1 Depletion in Keratinocytes Triggers a Cell Cycle Arrest and Premature Senescence in Adult Mice
Marloes C M Jonkhout1, Tijs Vanhessche1, Mónica Ferreira1
1Laboratory of Biosignaling & Therapeutics, Department of Cellular and Molecular Medicine, University of Leuven, Leuven, Belgium.
Abstract:
NIPP1 is a ubiquitously expressed regulatory subunit of PP1. Its embryonic deletion in keratinocytes causes chronic sterile skin inflammation, epidermal hyperproliferation, and resistance to mutagens in adult mice. To explore the primary effects of NIPP1 deletion, we first examined hair cycle progression of NIPP1 skin knockouts (SKOs). The entry of the first hair cycle in the SKOs was delayed owing to prolonged quiescence of hair follicle stem cells. In contrast, the entry of the second hair cycle in the SKOs was advanced as a result of precocious activation of hair follicle stem cells. The epidermis of SKOs progressively accumulated senescent cells, and this cell-fate switch was accelerated by DNA damage. Primary keratinocytes from SKO neonates and human NIPP1-depleted HaCaT keratinocytes failed to proliferate and showed an increase in the expression of cell cycle inhibitors (p21, p16/Ink4a, and/or p19/Arf) and senescence-associated-secretory-phenotype factors as well as in DNA damage (γH2AX and 53BP1). Our data demonstrate that the primary effect of NIPP1 deletion in keratinocytes is a cell cycle arrest and premature senescence that gradually progresse to chronic senescence and likely contribute to the decreased sensitivity of SKOs to mutagens.
Insights
NIPP1 deletion in skin cells causes premature aging (senescence) and cell cycle arrest. This leads to skin inflammation and altered hair growth cycles in mice.
Area of Science:
- Cell Biology
- Dermatology
- Molecular Biology
Background:
- NIPP1 is a regulatory subunit of protein phosphatase 1 (PP1).
- Embryonic deletion of NIPP1 in mouse keratinocytes results in chronic skin inflammation, epidermal hyperproliferation, and mutagen resistance.
Purpose of the Study:
- To investigate the primary effects of NIPP1 deletion in keratinocytes.
- To examine hair cycle progression in NIPP1 skin knockout (SKO) mice.
Main Methods:
- Analysis of hair cycle progression in NIPP1 SKO mice.
- Examination of keratinocyte proliferation, cell cycle inhibitors, senescence markers, and DNA damage in SKO mice and NIPP1-depleted HaCaT cells.
Main Results:
- NIPP1 deletion delayed the first hair cycle entry and advanced the second hair cycle entry in SKO mice.
- SKO epidermis accumulated senescent cells, accelerated by DNA damage.
- NIPP1-deficient keratinocytes exhibited cell cycle arrest, increased cell cycle inhibitors, and elevated DNA damage markers.
Conclusions:
- NIPP1 deletion in keratinocytes primarily causes cell cycle arrest and premature senescence.
- Progressive senescence in NIPP1-deficient skin contributes to chronic inflammation and altered responses to mutagens.
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