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Updated: Aug 15, 2026

Lighting Up the Pathways to Caspase Activation Using Bimolecular Fluorescence Complementation
Published on: March 5, 2018
Caspase-mediated specific cleavage of BubR1 is a determinant of mitotic progression
Mijin Kim1, Katie Murphy, Fang Liu
1Department of Radiation Oncology, University of Pennsylvania School of Medicine, John Morgan Bldg. 180 H, 3620 Hamilton Walk, Philadelphia, PA 19104, USA.
Abstract:
The fidelity of chromosomal duplication is monitored by cell cycle checkpoints operational during mitosis. One such cell cycle delay is invoked by microtubule-targeting agents such as nocodazole or paclitaxel (Taxol) and is mediated by mitotic checkpoint proteins that include BubR1. Relatively little is known about the regulation of expression and stability of BubR1 (or other checkpoint proteins) and how these factors dictate the durability of the cell cycle delay. We report here that treatment of HeLa cells with spindle-disrupting agents resulted in caspase activation and precipitated the cleavage of BubR1. This mechanism ultimately leads to reduced levels of full-length protein, which are accompanied by abrogation of the mitotic block; the checkpoint abrogation is substantially accelerated by inhibition of de novo protein synthesis. In contrast, inhibition of caspase activity blocked BubR1 degradation and prolonged mitosis. To confirm a direct link between caspase activity and BubR1 protein expression, we identified by site-directed mutagenesis the specific caspase cleavage sites cleaved after exposure to paclitaxel. Surprisingly, BubR1 has two sites of cleavage: primarily at Asp607/Asp610 and secondarily at Asp576/Asp579. BubR1 mutated at both locations (BubR1Delta579Delta610) was resistant to paclitaxel-induced degradation. Expression of BubR1Delta579Delta610 augmented the mitotic delay induced by spindle disruption in transfected cells as well as in clones engineered to inducibly express the mutant protein upon exposure to doxycycline and ultimately led to increased aneuploidy. Underscoring the importance of these caspase cleavage sites, both tetrapeptide motifs are identified in the amino acid sequences of human, mouse, chicken, and Xenopus BubR1. These results are potentially the first to link the control of the stability of a key mitotic checkpoint protein to caspase activation, a regulatory pathway that may be involved in killing defective cells and that has been evolutionarily conserved.
Insights
Spindle-disrupting agents trigger caspase activation, leading to BubR1 protein cleavage and mitotic checkpoint failure. Inhibiting caspases prolongs mitosis by preventing BubR1 degradation, revealing a conserved mechanism for cell cycle regulation.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- Cell cycle checkpoints ensure accurate chromosome duplication during mitosis.
- Microtubule-targeting agents like paclitaxel induce cell cycle delays via mitotic checkpoint proteins, such as BubR1.
- Regulation of checkpoint protein stability is crucial for determining the duration of cell cycle arrest.
Purpose of the Study:
- To investigate the role of caspase activation in the regulation of BubR1 stability during mitotic arrest.
- To identify the specific caspase cleavage sites on BubR1 and assess their functional significance.
- To explore the evolutionary conservation of this regulatory mechanism.
Main Methods:
- Treatment of HeLa cells with spindle-disrupting agents (nocodazole, paclitaxel).
- Analysis of caspase activation and BubR1 cleavage.
- Site-directed mutagenesis to identify and alter caspase cleavage sites on BubR1.
- Expression of wild-type and mutant BubR1 in transfected cells and engineered clones.
- Assessment of mitotic delay and aneuploidy.
Main Results:
- Spindle disruption induced caspase activation and subsequent cleavage of BubR1.
- Inhibition of caspases prevented BubR1 degradation and prolonged mitosis.
- Two specific caspase cleavage sites (Asp607/Asp610 and Asp576/Asp579) were identified on BubR1.
- Mutating these sites rendered BubR1 resistant to paclitaxel-induced degradation.
- Expression of a cleavage-resistant BubR1 mutant enhanced mitotic delay and increased aneuploidy.
- Conserved caspase cleavage motifs were found in BubR1 across multiple species.
Conclusions:
- BubR1 stability is regulated by caspase-mediated cleavage during mitotic arrest.
- This caspase-dependent degradation of BubR1 is a key mechanism for abrogating the mitotic checkpoint.
- The identified caspase cleavage sites and their conserved nature highlight an evolutionarily conserved pathway for controlling cell cycle progression and potentially eliminating defective cells.
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