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Updated: Aug 30, 2026

Spatial and Temporal Control of Murine Melanoma Initiation from Mutant Melanocyte Stem Cells
Published on: June 7, 2019
Distinct and nonoverlapping roles for pRB and cyclin D:cyclin-dependent kinases 4/6 activity in melanocyte survival
Benjamin D Yu1, Michelle Becker-Hapak, Eric L Snyder
1Howard Hughes Medical Institute, University of California at San Diego School of Medicine, La Jolla, CA 92093-0686, USA.
Abstract:
Deregulation of the p16INK4a-cyclin D:cyclin-dependent kinases (cdk) 4/6-retinoblastoma (pRB) pathway is a common paradigm in the oncogenic transformation of human cells and suggests that this pathway functions linearly in malignant transformation. However, it is not understood why p16INK4a and cyclin D:cdk4/6 mutations are disproportionately more common than the rare genetic event of RB inactivation in human malignancies such as melanoma. To better understand how these complexes contribute to altered tissue homeostasis, we blocked cdk4/6 activation and acutely inactivated Rb by conditional mutagenesis during mouse hair follicle cycling. Inhibition of cdk4/6 in the skin by subcutaneous administration of a membrane-transducible TAT-p16INK4a protein completely blocked hair follicle growth and differentiation. In contrast, acute disruption of Rb in the skin of homozygous RbLoxP/LoxP mice via subcutaneous administration of TAT-Cre recombinase failed to affect hair growth. However, loss of Rb resulted in severe depigmentation of hair follicles. Further analysis of follicular melanocytes in vivo and in primary cell culture demonstrated that pRB plays a cell-autonomous role in melanocyte survival. Moreover, functional inactivation of all three Rb family members (Rb, p107, and p130) in primary melanocytes by treatment with a transducible TAT-E1A protein did not rescue the apoptotic phenotype. These findings suggest that deregulated cyclin D:cdk4/6 complexes and pRB perform nonoverlapping functions in vivo and provide a cellular mechanism that accounts for the low incidence of RB inactivation in cancers such as melanoma.
Insights
The p16INK4a-cyclin D:cyclin-dependent kinases (cdk) 4/6-retinoblastoma (pRB) pathway is crucial in cell cycle regulation. This study shows p16INK4a and cdk4/6 inhibition block hair growth, while pRB loss causes depigmentation, revealing nonoverlapping functions.
Area of Science:
- Cell Biology
- Molecular Oncology
- Cancer Research
Background:
- The p16INK4a-cyclin D:cyclin-dependent kinases (cdk) 4/6-retinoblastoma (pRB) pathway is frequently deregulated in human cancers.
- The reasons for the disproportionate frequency of p16INK4a and cyclin D:cdk4/6 mutations compared to RB inactivation in malignancies like melanoma remain unclear.
Purpose of the Study:
- To investigate the distinct roles of cdk4/6 activation and pRB inactivation in tissue homeostasis.
- To elucidate the cellular mechanisms underlying the differential inactivation frequencies of pathway components in cancer.
Main Methods:
- Inhibition of cdk4/6 activation using TAT-p16INK4a protein in mouse skin.
- Acute inactivation of Rb via conditional mutagenesis (TAT-Cre recombinase) in mouse hair follicles.
- Analysis of melanocyte survival and apoptosis in vivo and in primary cell culture.
Main Results:
- Inhibition of cdk4/6 completely blocked hair follicle growth and differentiation.
- Acute disruption of Rb did not affect hair growth but led to severe depigmentation.
- pRB was found to play a cell-autonomous role in melanocyte survival, and its loss could not be rescued by inactivating other Rb family members.
Conclusions:
- Deregulated cyclin D:cdk4/6 complexes and pRB have nonoverlapping functions in vivo.
- These findings provide a cellular explanation for the low incidence of RB inactivation in cancers such as melanoma.
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Cyclin-dependent kinases, or Cdks, work in concert with cyclins to control cell cycle transitions. M-Cdk, a complex of Cdk1 bound to M cyclin, is a well-known example of this coordinated control that drives the transition from the G2 to the M phase.
M cyclin...

