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Published on: June 6, 2017
Upregulation of Mcl-1S Causes Cell-Cycle Perturbations and DNA Damage Accumulation
Alena Y Streletskaia1, Viacheslav V Senichkin1, Tatiana A Prikazchikova2
1Faculty of Medicine, MV Lomonosov Moscow State University, Moscow, Russia.
Abstract:
As an important regulator of apoptosis, Mcl-1 protein, a member of the Bcl-2 family, represents an attractive target for cancer treatment. The recent development of novel small molecule compounds has allowed Mcl-1-inhibitory therapy to proceed to clinical trials in cancer treatment. However, the possible adverse effects of either direct inhibition of Mcl-1 or upregulation of Mcl-1S, proapoptotic isoform resulting from alternative splicing of Mcl-1, remain unclear. Here, we investigated changes in Mcl-1S levels during cell cycle and the cell cycle-related functions of Mcl-1 isoforms to address the above-mentioned concerns. It was shown that an anti-mitotic agent monastrol caused accumulation of Mcl-1S mRNA, although without increasing the protein level. In contrast, both mRNA and protein levels of Mcl-1S accrued during the premitotic stages of the normal cell cycle progression. Importantly, Mcl-1S was observed in the nuclear compartment and an overexpression of Mcl-1S, as well as knockdown of Mcl-1, accelerated the progression of cells into mitosis and resulted in DNA damage accumulation. Surprisingly, a small molecule inhibitor of Mcl-1, BH3-mimetic S63845, did not affect the cell cycle progression or the amount of DNA damage. In general, upregulated Mcl-1S protein or genetically inhibited Mcl-1L were associated with the cell cycle perturbations and DNA damage accumulation in normal and cancer cells. At the same time, BH3-mimetic to Mcl-1 did not affect the cell cycle progression, suggesting that direct inhibition of Mcl-1 is devoid of cell-cycle related undesired effects.
Insights
Mcl-1S protein accumulates during normal cell cycle progression and its upregulation causes cell cycle issues and DNA damage. Direct Mcl-1 inhibition with BH3-mimetics did not show these adverse effects.
Area of Science:
- Molecular Biology
- Cancer Biology
- Cell Cycle Regulation
Background:
- Mcl-1 protein, a Bcl-2 family member, is a key regulator of apoptosis and a cancer treatment target.
- Mcl-1-inhibitory therapies are in clinical trials, but potential adverse effects of Mcl-1 inhibition or Mcl-1S upregulation are unknown.
Purpose of the Study:
- Investigate Mcl-1S levels during the cell cycle.
- Determine cell cycle-related functions of Mcl-1 isoforms.
- Assess potential adverse effects of Mcl-1 inhibition and Mcl-1S upregulation.
Main Methods:
- Monastrol treatment to study Mcl-1S mRNA and protein levels.
- Analysis of Mcl-1S during normal cell cycle progression.
- Overexpression and knockdown studies of Mcl-1S and Mcl-1.
- Treatment with Mcl-1 inhibitor BH3-mimetic S63845.
- Assessment of DNA damage accumulation.
Main Results:
- Monastrol increased Mcl-1S mRNA but not protein. Mcl-1S mRNA and protein accumulated during premitotic stages.
- Mcl-1S overexpression or Mcl-1 knockdown accelerated mitosis and increased DNA damage.
- BH3-mimetic S63845 did not affect cell cycle progression or DNA damage.
- Upregulated Mcl-1S or inhibited Mcl-1L correlated with cell cycle perturbations and DNA damage.
Conclusions:
- Mcl-1S accumulation during the cell cycle can lead to perturbations and DNA damage.
- Direct Mcl-1 inhibition via BH3-mimetics appears to lack cell-cycle-related adverse effects.
- Findings suggest Mcl-1S modulation, not just Mcl-1 inhibition, warrants careful consideration in cancer therapy.
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