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Published on: October 27, 2014
Axin phosphorylation in both Wnt-off and Wnt-on states requires the tumor suppressor APC
Ofelia Tacchelly-Benites1, Zhenghan Wang1, Eungi Yang1
1Department of Molecular and Systems Biology and the Norris Cotton Cancer Center, Geisel School of Medicine at Dartmouth College, Hanover, NH, United States of America.
Abstract:
The aberrant activation of Wnt signal transduction initiates the development of 90% of colorectal cancers, the majority of which arise from inactivation of the tumor suppressor Adenomatous polyposis coli (APC). In the classical model for Wnt signaling, the primary role of APC is to act, together with the concentration-limiting scaffold protein Axin, in a "destruction complex" that directs the phosphorylation and consequent proteasomal degradation of the transcriptional activator β-catenin, thereby preventing signaling in the Wnt-off state. Following Wnt stimulation, Axin is recruited to a multiprotein "signalosome" required for pathway activation. Whereas it is well-documented that APC is essential in the destruction complex, APC's role in this complex remains elusive. Here, we demonstrate in Drosophila that Axin exists in two distinct phosphorylation states in Wnt-off and Wnt-on conditions, respectively, that underlie its roles in the destruction complex and signalosome. These two Axin phosphorylation states are catalyzed by glycogen synthase kinase 3 (GSK3), and unexpectedly, completely dependent on APC in both unstimulated and Wnt-stimulated conditions. In a major revision of the classical model, we show that APC is essential not only in the destruction complex, but also for the rapid transition in Axin that occurs after Wnt stimulation and Axin's subsequent association with the Wnt co-receptor LRP6/Arrow, one of the earliest steps in pathway activation. We propose that this novel requirement for APC in Axin regulation through phosphorylation both prevents signaling in the Wnt-off state and promotes signaling immediately following Wnt stimulation.
Insights
Adenomatous polyposis coli (APC) is crucial for regulating Wnt signaling by controlling Axin phosphorylation. This discovery revises the classical model, revealing APC
Area of Science:
- Molecular Biology
- Cell Signaling
- Cancer Research
Background:
- Aberrant Wnt signaling drives 90% of colorectal cancers, often initiated by Adenomatous polyposis coli (APC) tumor suppressor inactivation.
- APC is known to be essential in the destruction complex, which degrades β-catenin in the Wnt-off state.
- The precise role of APC in Wnt signalosome formation and activation remains unclear.
Purpose of the Study:
- To elucidate the role of APC in regulating Axin's function in both Wnt-off and Wnt-on states.
- To investigate the phosphorylation-dependent mechanisms governing Axin's transition between the destruction complex and signalosome.
Main Methods:
- Utilized Drosophila as a model system to study Wnt signaling dynamics.
- Investigated Axin phosphorylation states under different Wnt pathway conditions (Wnt-off and Wnt-on).
- Assessed the dependence of Axin phosphorylation on APC and GSK3 activity.
Main Results:
- Demonstrated that Axin exists in two distinct phosphorylation states, regulated by GSK3 and critically dependent on APC.
- Showed that APC is essential for the rapid transition of Axin following Wnt stimulation and its subsequent association with LRP6/Arrow.
- Revealed that APC's role extends beyond the destruction complex to regulate Axin's participation in the Wnt signalosome.
Conclusions:
- Proposed a revised model where APC is essential for both preventing Wnt signaling in the Wnt-off state and promoting it upon Wnt stimulation via Axin phosphorylation.
- Highlighted a novel function of APC in regulating Axin phosphorylation, impacting both signal repression and activation.
- Emphasized the critical, dual role of APC in controlling Wnt pathway dynamics.
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