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Published on: October 6, 2016
Destruction complex function in the Wnt signaling pathway of Drosophila requires multiple interactions between
Ezgi Kunttas-Tatli1, Meng-Ning Zhou, Sandra Zimmerman
1Department of Biological Sciences, Carnegie Mellon University, Pittsburgh, Pennsylvania 15213, USA.
Abstract:
The tumor suppressor Adenomatous polyposis coli (APC) negatively regulates Wnt signaling through its activity in the destruction complex. APC binds directly to the main effector of the pathway, β-catenin (βcat, Drosophila Armadillo), and helps to target it for degradation. In vitro studies demonstrated that a nonphosphorylated 20-amino-acid repeat (20R) of APC binds to βcat through the N-terminal extended region of a 20R. When phosphorylated, the phospho-region of an APC 20R also binds βcat and the affinity is significantly increased. These distinct APC-βcat interactions suggest different models for the sequential steps of destruction complex activity. However, the in vivo role of 20R phosphorylation and extended region interactions has not been rigorously tested. Here we investigated the functional role of these molecular interactions by making targeted mutations in Drosophila melanogaster APC2 that disrupt phosphorylation and extended region interactions and deletion mutants missing the Armadillo binding repeats. We tested the ability of these mutants to regulate Wnt signaling in APC2 null and in APC2 APC1 double-null embryos. Overall, our in vivo data support the role of phosphorylation and extended region interactions in APC2's destruction complex function, but suggest that the extended region plays a more significant functional role. Furthermore, we show that the Drosophila 20Rs with homology to the vertebrate APC repeats that have the highest affinity for βcat are functionally dispensable, contrary to biochemical predictions. Finally, for some mutants, destruction complex function was dependent on APC1, suggesting that APC2 and APC1 may act cooperatively in the destruction complex.
Insights
The tumor suppressor Adenomatous polyposis coli (APC) regulates Wnt signaling by targeting β-catenin for degradation. In vivo studies reveal APC
Area of Science:
- Molecular Biology
- Cell Signaling
- Developmental Biology
Background:
- Adenomatous polyposis coli (APC) is a tumor suppressor that negatively regulates Wnt signaling.
- APC targets β-catenin (βcat) for degradation via the destruction complex.
- In vitro studies suggest distinct APC-βcat interactions involving 20-amino-acid repeats (20Rs) and phosphorylation.
Purpose of the Study:
- To investigate the in vivo functional role of APC 20R phosphorylation and extended region interactions in Wnt signaling.
- To determine the significance of specific APC-βcat binding modes.
- To explore potential cooperative roles between APC1 and APC2.
Main Methods:
- Targeted mutagenesis of Drosophila melanogaster APC2 to disrupt phosphorylation and extended region interactions.
- Creation of deletion mutants lacking Armadillo binding repeats in APC2.
- Assessment of Wnt signaling regulation in APC2 null and APC2 APC1 double-null embryos.
Main Results:
- In vivo data support the functional importance of APC2 phosphorylation and extended region interactions in destruction complex activity.
- The extended region interaction appears to play a more significant role than phosphorylation.
- Drosophila 20Rs with high βcat affinity were found to be functionally dispensable in vivo.
- Destruction complex function was partially dependent on APC1 for certain APC2 mutants, suggesting cooperative action.
Conclusions:
- APC's destruction complex function in vivo relies on phosphorylation and extended region interactions, with the latter being more critical.
- Biochemical predictions of high-affinity repeat importance were not supported in vivo.
- APC1 and APC2 may cooperate in regulating Wnt signaling through the destruction complex.
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