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Updated: Jul 13, 2026

Immunofluorescence Analysis of Endogenous and Exogenous Centromere-kinetochore Proteins
Published on: March 3, 2016
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.
Abstract:
Cancer-associated centrosomal transforming acidic coiled coil (TACC) proteins are involved in mitotic spindle function. By employing gene targeting, we have recently described a nonredundant and essential role of TACC3 in regulating cell proliferation. In this study, we used an inducible RNA interference approach to characterize the molecular function of TACC3 and its role in mitotic progression and cell survival. Our data demonstrate that a TACC3 knockdown arrests G(1) checkpoint-compromised HeLa cells prior to anaphase with aberrant spindle morphology and severely misaligned chromosomes. Interestingly, TACC3-depleted cells fail to accumulate the mitotic kinase Aurora B and the checkpoint protein BubR1 to normal levels at kinetochores. Moreover, localization of the structural protein Ndc80 at outer kinetochores is reduced, indicating a defective kinetochore-microtubule attachment in TACC3-deficient cells. As a consequence of prolonged TACC3 depletion, cells undergo caspase-dependent cell death that relies on a spindle checkpoint-dependent mitotic arrest. TACC3 knockdown cells that escape from this arrest by mitotic slippage become highly polyploid and accumulate supernumerary centrosomes. Similarly, deficiency of the post-mitotic cell cycle inhibitor p21(WAF) exacerbates the effects of TACC3 depletion. Our findings therefore point to an essential role of TACC3 in spindle assembly and cellular survival and identify TACC3 as a potential therapeutic target in cancer cells.
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.
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