The transforming acidic coiled coil 3 protein is essential for spindle-dependent chromosome alignment and mitotic

Leonid Schneider1, Frank Essmann, Anja Kletke

  • 1Institut für Biochemie und Molekularbiologie II, Universitätsklinikum der Heinrich-Heine-Universität, 40225 Düsseldorf, Germany.

Insights

Transforming acidic coiled coil 3 (TACC3) is essential for cell division and survival. Its depletion causes mitotic errors, cell death, and polyploidy, highlighting TACC3 as a potential cancer therapy target.

Area of Science:

  • Cell Biology
  • Molecular Oncology
  • Cancer Research

Background:

  • Cancer-associated centrosomal transforming acidic coiled coil (TACC) proteins regulate mitotic spindle function.
  • TACC3 has a nonredundant and essential role in regulating cell proliferation.

Purpose of the Study:

  • To characterize the molecular function of TACC3 in mitotic progression and cell survival using inducible RNA interference.
  • To investigate the role of TACC3 in spindle assembly and kinetochore-microtubule attachment.

Main Methods:

  • Inducible RNA interference (RNAi) to deplete TACC3 in HeLa cells.
  • Analysis of cell cycle progression, spindle morphology, chromosome alignment, and protein localization at kinetochores.
  • Assessment of cell death pathways and consequences of mitotic slippage.

Main Results:

  • TACC3 knockdown resulted in G1 checkpoint-compromised cells arresting before anaphase with aberrant spindles and misaligned chromosomes.
  • TACC3 depletion led to reduced accumulation of Aurora B and BubR1 at kinetochores and decreased Ndc80 localization.
  • Prolonged TACC3 depletion induced caspase-dependent cell death, and cells escaping arrest became polyploid with supernumerary centrosomes.

Conclusions:

  • TACC3 plays a critical role in spindle assembly, kinetochore-microtubule attachment, and cellular survival.
  • TACC3 deficiency compromises mitotic fidelity, leading to cell death or polyploidy.
  • TACC3 represents a potential therapeutic target for cancer treatment.

Related Concept Videos

The Spindle Assembly Checkpoint02:19

The Spindle Assembly Checkpoint

The spindle assembly checkpoint is a molecular surveillance mechanism ensuring the fidelity of chromosome segregation during anaphase. The checkpoint monitors the completion of all the prerequisite steps before chromosome segregation to determine whether the segregation process should proceed or be delayed.
Many proteins function together to control the spindle assembly checkpoint. Mutations affecting these proteins may allow cells to proceed into anaphase prematurely, resulting in the...
The Spindle Assembly Checkpoint02:19

The Spindle Assembly Checkpoint

The spindle assembly checkpoint is a molecular surveillance mechanism ensuring the fidelity of chromosome segregation during anaphase. The checkpoint monitors the completion of all the prerequisite steps before chromosome segregation to determine whether the segregation process should proceed or be delayed.
Many proteins function together to control the spindle assembly checkpoint. Mutations affecting these proteins may allow cells to proceed into anaphase prematurely, resulting in the...
Spindle Assembly02:50

Spindle Assembly

Spindle assembly occurs through three, often coexisting, pathways – the centrosome-mediated pathway, the chromatin-mediated pathway, and the microtubule-mediated pathway – collectively contributing to form a robust spindle apparatus.
In most cells, centrosomes are the primary microtubule nucleation centers. In the centrosome-mediated pathway, the G2-prophase transition triggers centrosome maturation and increased microtubule nucleation. Progressive nucleation results in a microtubule array...
Forces Acting on Chromosomes02:11

Forces Acting on Chromosomes

During mitosis, chromosome movements occur through the interplay of multiple piconewton level forces. In prometaphase, these forces help in chromosome assembly or congression at the equatorial plane, eventually leading to their alignment at the metaphase plate. The forces acting on the chromosomes are space and time-dependent; therefore, they vary with the position of the chromosomes as the cell progresses through mitosis. 
Microtubules and motor proteins exert two types of forces on...
Forces Acting on Chromosomes02:11

Forces Acting on Chromosomes

During mitosis, chromosome movements occur through the interplay of multiple piconewton level forces. In prometaphase, these forces help in chromosome assembly or congression at the equatorial plane, eventually leading to their alignment at the metaphase plate. The forces acting on the chromosomes are space and time-dependent; therefore, they vary with the position of the chromosomes as the cell progresses through mitosis. 
Microtubules and motor proteins exert two types of forces on...
Separation of Sister Chromatids02:17

Separation of Sister Chromatids

At the transition from prophase to metaphase, there is a reduction in cohesion along the chromosomal arms, resulting in the resolution of sister chromatids. However, residual cohesin connections remain to hold the sister chromatids together until the transition from metaphase to anaphase. The residual connection prevents any premature separation of sister chromatids, blocking the risks of aneuploidy within the daughter cells.
At the onset of anaphase, separase, a proteolytic enzyme, is...