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Different Functionality of Cdc20 Binding Sites within the Mitotic Checkpoint Complex
Katharina Sewart1, Silke Hauf1
1Department of Biological Sciences and Biocomplexity Institute, Virginia Tech, 1015 Life Science Circle, Blacksburg, VA 24061, USA.
Abstract:
The mitotic checkpoint is a cellular safeguard that prevents chromosome missegregation in eukaryotic cells [1, 2]. Suboptimal functioning may foster chromosome missegregation in cancer cells [3]. Checkpoint signaling produces the "mitotic checkpoint complex" (MCC), which prevents anaphase by targeting Cdc20, the activator of the anaphase-promoting complex/cyclosome (APC/C). Recent biochemical and structural studies revealed that the human MCC binds two Cdc20 molecules, one (Cdc20M) through well-characterized, cooperative binding to Mad2 and Mad3/BubR1 (forming the "core MCC") and the other one (Cdc20A) through additional binding sequences in Mad3/BubR1 [4-6]. Here, we dissect the different functionality of these sites in vivo. We show in fission yeast that, at low Cdc20 concentrations, Cdc20M binding is sufficient for checkpoint activity and Cdc20A binding becomes dispensable. Cdc20A binding is mediated by the conserved Mad3 ABBA-KEN2-ABBA motif [7, 8], which we find additionally required for binding of the MCC to the APC/C and for MCC disassembly. Strikingly, deletion of the APC/C subunit Apc15 mimics mutations in this motif, revealing a shared function. This function of Apc15 may be masked in human cells by independent mediators of MCC-APC/C binding. Our data provide important in vivo support for the recent structure-based models and functionally dissect three elements of Cdc20 inhibition: (1) sequestration of Cdc20 in the core MCC, sufficient at low Cdc20 concentrations; (2) inhibition of a second Cdc20 through the Mad3 C terminus, independent of Mad2 binding to this Cdc20 molecule; and (3) occupancy of the APC/C with full MCC, where Mad3 and Apc15 are involved.
Insights
The mitotic checkpoint prevents errors during cell division. This study shows how the mitotic checkpoint complex (MCC) binds Cdc20, ensuring proper chromosome segregation and revealing new insights into cancer cell biology.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- The mitotic checkpoint is crucial for preventing chromosome missegregation, a hallmark of cancer.
- The mitotic checkpoint complex (MCC) inhibits the anaphase-promoting complex/cyclosome (APC/C) by targeting its activator, Cdc20.
- Recent studies suggest the MCC binds two Cdc20 molecules via distinct mechanisms.
Purpose of the Study:
- To investigate the in vivo functionality of different Cdc20 binding sites within the MCC.
- To elucidate the role of the Mad3 ABBA-KEN2-ABBA motif in MCC function.
- To understand the interplay between MCC, Cdc20, and APC/C in fission yeast.
Main Methods:
- Utilized fission yeast as a model organism.
- Performed in vivo functional assays to assess checkpoint activity.
- Investigated the role of specific protein motifs and subunits through genetic manipulation (e.g., deletion of Apc15).
Main Results:
- At low Cdc20 concentrations, binding to the core MCC is sufficient for checkpoint function.
- The Mad3 ABBA-KEN2-ABBA motif is essential for secondary Cdc20 binding, MCC-APC/C interaction, and MCC disassembly.
- Deletion of Apc15 phenocopies mutations in the Mad3 motif, indicating a shared function in MCC regulation.
Conclusions:
- Provides in vivo validation for structural models of MCC-Cdc20 interactions.
- Dissects three key mechanisms of Cdc20 inhibition by the MCC.
- Highlights the conserved role of Mad3 and Apc15 in regulating MCC activity and APC/C binding.