Cdk1 activity is required for mitotic activation of aurora A during G2/M transition of human cells

Robert D Van Horn1, Shaoyou Chu, Li Fan

  • 1Lilly Research Laboratories, Lilly Corporate Center, Eli Lilly and Company, Indianapolis, Indiana 46285, USA.

Insights

Cell cycle kinases Cdk1, Aurora A, and Plk1 form a feedback loop for timely mitosis entry. Disrupting this loop or Aurora A/B kinases causes polyploidy by uncoupling nuclear division from cytokinesis.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Biochemistry

Background:

  • Mitosis regulation involves complex kinase interactions.
  • The precise coordination of mitotic kinases like Cdk1 and Aurora A is not fully understood.

Purpose of the Study:

  • To investigate the interplay between Cdk1 and Aurora A kinases during the G(2)/M transition.
  • To elucidate the roles of Aurora A and Plk1 in Cdk1 feedback activation.
  • To examine the consequences of Aurora kinase inactivation on cell cycle progression and cytokinesis.

Main Methods:

  • Utilized a chemical biology approach with selective small molecule kinase inhibitors.
  • Employed synchronized cell cycle experiments.
  • Performed live cell imaging to observe nuclear and cell division dynamics.

Main Results:

  • Aurora A activation at centrosomes precedes Cdk1 activation and is crucial for centrosome separation.
  • Aurora A is fully activated downstream of Cdk1 upon mitotic entry.
  • Simultaneous inactivation of Aurora A and Plk1, but not individual inactivation, delays Cdk1 activation, indicating redundant roles in feedback.
  • Inactivation of both Aurora A and Aurora B kinases decouples nuclear division from cytokinesis, leading to polyploidy.

Conclusions:

  • Cdk1, Aurora A, and Plk1 kinases engage in a positive feedback loop initiated by Cdk1 activation, ensuring rapid mitotic entry.
  • Aurora A and Plk1 possess redundant functions in this feedback loop.
  • Aurora A and Aurora B kinases are essential for coordinating nuclear division with cytokinesis; their combined inactivation results in polyploid cells.

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