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Updated: Jun 19, 2026

Immunofluorescence Analysis of Endogenous and Exogenous Centromere-kinetochore Proteins
Published on: March 3, 2016
Murine CENP-F regulates centrosomal microtubule nucleation and interacts with Hook2 at the centrosome
Katherine L Moynihan1, Ryan Pooley, Paul M Miller
1Stahlman Cardiovascular Research Laboratories, Program in Developmental Biology, Department of Cell and Developmental Biology, Vanderbilt University Medical Center, Nashville, TN 37232-6300, USA.
Abstract:
The microtubule (MT) network is essential in a broad spectrum of cellular functions. Many studies have linked CENP-F to MT-based activities as disruption of this protein leads to major changes in MT structure and function. Still, the basis of CENP-F regulation of the MT network remains elusive. Here, our studies reveal a novel and critical localization and role for CENP-F at the centrosome, the major MT organizing center (MTOC) of the cell. Using a yeast two-hybrid screen, we identify Hook2, a linker protein that is essential for regulation of the MT network at the centrosome, as a binding partner of CENP-F. With recently developed immunochemical reagents, we confirm this interaction and reveal the novel localization of CENP-F at the centrosome. Importantly, in this first report of CENP-F(-/-) cells, we demonstrate that ablation of CENP-F protein function eliminates MT repolymerization after standard nocodazole treatment. This inhibition of MT regrowth is centrosome specific because MT repolymerization is readily observed from the Golgi in CENP-F(-/-) cells. The centrosome-specific function of CENP-F in the regulation of MT growth is confirmed by expression of truncated CENP-F containing only the Hook2-binding domain. Furthermore, analysis of partially reconstituted MTOC asters in cells that escape complete repolymerization block shows that disruption of CENP-F function impacts MT nucleation and anchoring rather than promoting catastrophe. Our study reveals a major new localization and function of CENP-F at the centrosome that is likely to impact a broad array of MT-based actions in the cell.
Insights
Centromere protein F (CENP-F) is newly found to regulate microtubule (MT) regrowth at the centrosome. Ablation of CENP-F function inhibits MT repolymerization, revealing its critical role in MT organization.
Area of Science:
- Cell Biology
- Molecular Biology
- Cytoskeleton Dynamics
Background:
- The microtubule (MT) network is crucial for cellular functions.
- CENP-F is implicated in MT-based activities, but its regulatory mechanism is unclear.
Purpose of the Study:
- To investigate the localization and function of CENP-F at the centrosome.
- To identify CENP-F binding partners involved in MT regulation.
Main Methods:
- Yeast two-hybrid screening to identify binding partners.
- Immunochemical analysis to confirm protein interactions and localization.
- Generation and analysis of CENP-F knockout cells (CENP-F(-/-)).
- Functional assays involving MT repolymerization and nucleation.
Main Results:
- Identified Hook2 as a CENP-F binding partner crucial for centrosomal MT regulation.
- Confirmed novel localization of CENP-F at the centrosome.
- Demonstrated that CENP-F deficiency abolishes MT repolymerization post-nocodazole treatment.
- Showed that CENP-F disruption affects MT nucleation and anchoring, not catastrophe.
Conclusions:
- CENP-F plays a critical, previously unrecognized role at the centrosome in regulating microtubule organization.
- This finding provides new insights into the molecular mechanisms governing microtubule dynamics and cellular functions.
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