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Disruption of CENP antigen function perturbs dynein anchoring to the mitotic kinetochore
L Wordeman1, W C Earnshaw, R L Bernat
1Department of Physiology and Biophysics, SJ-40, University of Washington Medical School, Seattle, WA 98195, USA.
Abstract:
Injection of purified autoantibodies against human centromeric proteins into HeLa cells during interphase disrupts the organization of the kinetochore and interferes with chromosomal movements during the subsequent mitosis even though the chromosomes retain the ability to bind microtubules. We have investigated the hypothesis that this phenotype arises from effects on cytoplasmic dynein, the microtubule motor protein. In previous experiments we found that introduction of anticentromere antibodies into cell nuclei during the G1- or S-phases causes a prometaphase-like arrest, while injections during G2-phase cause a metaphase arrest. We show here that, in both cases, the level of detectable cytoplasmic dynein at kinetochores is significantly decreased. In contrast, when injected cells were permitted to enter mitosis in the absence of microtubules (conditions where trilaminar kinetochores could be detected by electron microscopy), the intensity of dynein labeling on the kinetochores was identical to that seen in uninjected control cells exposed to colcemid. Therefore, the loss of dynein label on mitotic kinetochores was correlated both with the injection of anticentromere antibodies and with the presence of intact spindle microtubules. We suggest that the injection of anticentromere antibodies somehow weakens the association of dynein with the kinetochore, so that when microtubules are present, these motor molecules are pulled away from the kinetochores as they generate force. This model offers an explanation for the failure of chromosomes of injected cells to move normally in mitosis even though they have attached microtubules.
Insights
Injection of anticentromere antibodies into HeLa cells disrupts kinetochore organization and chromosomal movement by reducing cytoplasmic dynein at kinetochores during mitosis. This suggests a weakened dynein-kinetochore association under microtubule presence.
Area of Science:
- Cell Biology
- Molecular Biology
- Immunology
Background:
- Anticentromere antibodies disrupt kinetochore organization and chromosomal movement in HeLa cells.
- Previous studies showed cell cycle arrest depending on injection timing (G1/S vs. G2).
Purpose of the Study:
- Investigate the role of cytoplasmic dynein in the observed phenotype.
- Determine if anticentromere antibodies affect dynein localization at kinetochores.
Main Methods:
- Injection of purified anticentromere antibodies into HeLa cells at different cell cycle phases.
- Analysis of kinetochore organization and microtubule binding.
- Quantification of cytoplasmic dynein levels at kinetochores via immunofluorescence.
- Microscopy in the presence and absence of spindle microtubules.
Main Results:
- Anticentromere antibody injection significantly decreased detectable cytoplasmic dynein at kinetochores.
- Dynein labeling was normal in injected cells without microtubules, but reduced when microtubules were present.
- Loss of dynein label correlated with antibody injection and microtubule presence.
Conclusions:
- Anticentromere antibodies weaken the association of cytoplasmic dynein with kinetochores.
- Microtubule-driven forces may pull dynein away from kinetochores in injected cells.
- This explains impaired chromosomal movement despite microtubule attachment.