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Published on: December 31, 2014
Targeted disruption of the MYC antagonist MAD1 inhibits cell cycle exit during granulocyte differentiation
K P Foley1, G A McArthur, C Quéva
1Division of Basic Sciences, Fred Hutchinson Cancer Research Center, 1100 Fairview Avenue North-Mailstop A2-025, P.O. Box 19024, Seattle, WA 98109-1024, USA.
Abstract:
The switch from transcriptionally activating MYC-MAX to transcriptionally repressing MAD1-MAX protein heterodimers has been correlated with the initiation of terminal differentiation in many cell types. To investigate the function of MAD1-MAX dimers during differentiation, we disrupted the Mad1 gene by homologous recombination in mice. Analysis of hematopoietic differentiation in homozygous mutant animals revealed that cell cycle exit of granulocytic precursors was inhibited following the colony-forming cell stage, resulting in increased proliferation and delayed terminal differentiation of low proliferative potential cluster-forming cells. Surprisingly, the numbers of terminally differentiated bone marrow and peripheral blood granulocytes were essentially unchanged in Mad1 null mice. This imbalance between the frequencies of precursor and mature granulocytes was correlated with a compensatory decrease in granulocytic cluster-forming cell survival under apoptosis-inducing conditions. In addition, recovery of the peripheral granulocyte compartment following bone marrow ablation was significantly enhanced in Mad1 knockout mice. Two Mad1-related genes, Mxi1 and Mad3, were found to be expressed ectopically in adult spleen, indicating that functional redundancy and cross-regulation between MAD family members may allow for apparently normal differentiation in the absence of MAD1. These findings demonstrate that MAD1 regulates cell cycle withdrawal during a late stage of granulocyte differentiation, and suggest that the relative levels of MYC versus MAD1 mediate a balance between cell proliferation and terminal differentiation.
Insights
The study found that MAD1-MAX protein dimers are crucial for regulating cell cycle withdrawal during granulocyte differentiation. Functional redundancy with other MAD family members allows for normal differentiation despite MAD1 gene disruption.
Area of Science:
- Cell Biology
- Molecular Biology
- Hematopoiesis
Background:
- MYC-MAX and MAD1-MAX heterodimers regulate gene transcription.
- The switch from MYC-MAX to MAD1-MAX is linked to terminal differentiation.
Purpose of the Study:
- Investigate the role of MAD1-MAX dimers in cellular differentiation.
- Determine the function of MAD1 during granulocyte differentiation.
Main Methods:
- Homologous recombination to disrupt the Mad1 gene in mice.
- Analysis of hematopoietic differentiation in homozygous mutant mice.
- Assessing cell cycle exit, proliferation, and apoptosis.
Main Results:
- Mad1 disruption inhibited cell cycle exit in granulocytic precursors.
- Terminal differentiation was delayed, but mature granulocyte numbers were unchanged.
- Compensatory mechanisms, including decreased apoptosis and enhanced recovery after ablation, were observed.
- Ectopic expression of Mxi1 and Mad3 suggests functional redundancy.
Conclusions:
- MAD1 regulates cell cycle withdrawal in late-stage granulocyte differentiation.
- Functional redundancy among MAD family members can mask the absence of MAD1.
- The balance between MYC and MAD1 levels controls proliferation versus differentiation.
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