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A role for mitogen-activated protein kinase in the spindle assembly checkpoint in XTC cells
X M Wang1, Y Zhai, J E Ferrell
1Department of Molecular Pharmacology, Stanford University School of Medicine, California 94305-5332, USA.
Abstract:
The spindle assembly checkpoint prevents cells whose spindles are defective or chromosomes are misaligned from initiating anaphase and leaving mitosis. Studies of Xenopus egg extracts have implicated the Erk2 mitogen-activated protein kinase (MAP kinase) in this checkpoint. Other studies have suggested that MAP kinases might be important for normal mitotic progression. Here we have investigated whether MAP kinase function is required for mitotic progression or the spindle assembly checkpoint in vivo in Xenopus tadpole cells (XTC). We determined that Erk1 and/or Erk2 are present in the mitotic spindle during prometaphase and metaphase, consistent with the idea that MAP kinase might regulate or monitor the status of the spindle. Next, we microinjected purified recombinant XCL100, a Xenopus MAP kinase phosphatase, into XTC cells in various stages of mitosis to interfere with MAP kinase activation. We found that mitotic progression was unaffected by the phosphatase. However, XCL100 rendered the cells unable to remain arrested in mitosis after treatment with nocodazole. Cells injected with phosphatase at prometaphase or metaphase exited mitosis in the presence of nocodazole-the chromosomes decondensed and the nuclear envelope re-formed-whereas cells injected with buffer or a catalytically inactive XCL100 mutant protein remained arrested in mitosis. Coinjection of constitutively active MAP kinase kinase-1, which opposes XCL100's effects on MAP kinase, antagonized the effects of XCL100. Since the only known targets of MAP kinase kinase-1 are Erk1 and Erk2, these findings argue that MAP kinase function is required for the spindle assembly checkpoint in XTC cells.
Insights
Mitogen-activated protein (MAP) kinase function is essential for the spindle assembly checkpoint in Xenopus tadpole cells (XTC). Inhibition of MAP kinase prevents cells from arresting in mitosis when spindles are defective, highlighting its role in mitotic progression.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- The spindle assembly checkpoint (SAC) is crucial for preventing errors during cell division.
- Mitogen-activated protein (MAP) kinases, including Erk1 and Erk2, have been implicated in mitotic processes.
Purpose of the Study:
- To investigate the role of MAP kinase in mitotic progression and the SAC in vivo.
- To determine if MAP kinase activity is required for maintaining mitotic arrest.
Main Methods:
- Utilized Xenopus tadpole cells (XTC) for in vivo studies.
- Microinjected XCL100, a MAP kinase phosphatase, into XTC cells at various mitotic stages.
- Treated cells with nocodazole to induce mitotic arrest.
- Coinjected constitutively active MAP kinase kinase-1 to antagonize phosphatase activity.
Main Results:
- MAP kinase (Erk1/Erk2) is localized to the mitotic spindle during prometaphase and metaphase.
- Inhibition of MAP kinase activity with XCL100 did not affect overall mitotic progression.
- XCL100 treatment abolished the SAC, preventing cells from arresting in mitosis in the presence of nocodazole.
- Reactivation of MAP kinase signaling reversed the effect of the phosphatase.
Conclusions:
- MAP kinase function is required for the spindle assembly checkpoint in XTC cells.
- MAP kinase activity is essential for maintaining mitotic arrest in response to spindle damage or chromosome misalignment.