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Mitotic centromere-associated kinesin (MCAK): a potential cancer drug target
Mourad Sanhaji1, Claire T Friel, Linda Wordeman
1Department of Gynecology and Obstetrics, School of Medicine, J. W. Goethe-University, Frankfurt, Germany.
Abstract:
The inability to faithfully segregate chromosomes in mitosis results in chromosome instability, a hallmark of solid tumors. Disruption of microtubule dynamics contributes highly to mitotic chromosome instability. The kinesin-13 family is critical in the regulation of microtubule dynamics and the best characterized member of the family, the mitotic centromere-associated kinesin (MCAK), has recently been attracting enormous attention. MCAK regulates microtubule dynamics as a potent depolymerizer of microtubules by removing tubulin subunits from the polymer end. This depolymerizing activity plays pivotal roles in spindle formation, in correcting erroneous attachments of microtubule-kinetochore and in chromosome movement. Thus, the accurate regulation of MCAK is important for ensuring the faithful segregation of chromosomes in mitosis and for safeguarding chromosome stability. In this review we summarize recent data concerning the regulation of MCAK by mitotic kinases, Aurora A/B, Polo-like kinase 1 and cyclin-dependent kinase 1. We propose a molecular model of the regulation of MCAK by these mitotic kinases and relevant phosphatases throughout mitosis. An ever-increasing quantity of data indicates that MCAK is aberrantly regulated in cancer cells. This deregulation is linked to increased malignance, invasiveness, metastasis and drug resistance, most probably due to increased chromosomal instability and remodeling of the microtubule cytoskeleton in cancer cells. Most interestingly, recent observations suggest that MCAK could be a novel molecular target for cancer therapy, as a new cancer antigen or as a mitotic regulator. This collection of new data indicates that MCAK could be a new star in the cancer research sky due to its critical roles in the control of genome stability and the cytoskeleton. Further investigations are required to dissect the fine details of the regulation of MCAK throughout mitosis and its involvements in oncogenesis.
Insights
Mitotic centromere-associated kinesin (MCAK) is crucial for chromosome stability. Aberrant MCAK regulation in cancer cells promotes instability and suggests MCAK as a potential therapeutic target.
Area of Science:
- Cell Biology
- Molecular Biology
- Cancer Research
Background:
- Chromosome instability is a hallmark of solid tumors, often stemming from disrupted microtubule dynamics during mitosis.
- The kinesin-13 family, particularly mitotic centromere-associated kinesin (MCAK), plays a critical role in regulating microtubule dynamics.
Purpose of the Study:
- To review recent data on MCAK regulation by mitotic kinases throughout mitosis.
- To propose a molecular model for MCAK regulation.
- To discuss the implications of MCAK deregulation in cancer and its potential as a therapeutic target.
Main Methods:
- Literature review of recent data on MCAK regulation.
- Analysis of MCAK's role in mitosis and cancer.
- Proposal of a molecular regulatory model.
Main Results:
- MCAK is a potent microtubule depolymerizer essential for spindle formation, kinetochore attachment correction, and chromosome movement.
- Mitotic kinases (Aurora A/B, PLK1, CDK1) and phosphatases regulate MCAK activity.
- MCAK is aberrantly regulated in cancer, correlating with increased malignancy, invasiveness, metastasis, and drug resistance.
Conclusions:
- Accurate MCAK regulation is vital for faithful chromosome segregation and genome stability.
- Deregulation of MCAK contributes to cancer progression through increased chromosomal instability.
- MCAK represents a promising novel molecular target for cancer therapy.
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