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Published on: December 20, 2017
Targeting the β-catenin nuclear transport pathway in cancer
Cara Jamieson1, Manisha Sharma1, Beric R Henderson1
1Westmead Institute for Cancer Research, The University of Sydney, Westmead Millennium Institute at Westmead Hospital, Westmead, NSW 2145, Australia.
Abstract:
The nuclear localization of specific proteins is critical for cellular processes such as cell division, and in recent years perturbation of the nuclear transport cycle of key proteins has been linked to cancer. In particular, specific gene mutations can alter nuclear transport of tumor suppressing and oncogenic proteins, leading to cell transformation or cancer progression. This review will focus on one such factor, β-catenin, a key mediator of the canonical wnt signaling pathway. In response to a wnt stimulus or specific gene mutations, β-catenin is stabilized and translocates to the nucleus where it binds TCF/LEF-1 transcription factors to transactivate genes that drive tumor formation. Moreover, the nuclear import and accumulation of β-catenin correlates with clinical tumor grade. Recent evidence suggests that the primary nuclear transport route of β-catenin is independent of the classical Ran/importin import machinery, and that β-catenin directly contacts the nuclear pore complex to self-regulate its own entry into the nucleus. Here we propose that the β-catenin nuclear import pathway may provide an opportunity for identification of specific drug targets and inhibition of β-catenin nuclear function, much like the current screening of drugs that block binding of β-catenin to LEF-1/TCFs. Here we will discuss the diverse mechanisms regulating nuclear localization of β-catenin and their potential as targets for anticancer agent development.
Insights
Nuclear import of beta-catenin (a key Wnt pathway protein) drives tumor formation and correlates with cancer grade. Targeting this nuclear transport offers new anticancer drug development opportunities.
Area of Science:
- Molecular Biology
- Cell Biology
- Oncology
Background:
- Nuclear protein localization is vital for cell function, and its disruption is linked to cancer.
- Aberrant nuclear transport of tumor suppressors and oncogenes can drive cancer progression.
- Beta-catenin, a Wnt pathway mediator, translocates to the nucleus to promote tumor formation.
Purpose of the Study:
- To review mechanisms regulating beta-catenin nuclear localization.
- To explore the potential of beta-catenin nuclear import as an anticancer drug target.
Main Methods:
- Review of existing literature on beta-catenin nuclear transport.
- Analysis of the role of beta-catenin in Wnt signaling and cancer.
- Discussion of novel nuclear import pathways and their therapeutic implications.
Main Results:
- Nuclear import and accumulation of beta-catenin correlate with clinical tumor grade.
- Beta-catenin's nuclear entry may bypass conventional importin/Ran pathways.
- Beta-catenin can directly interact with the nuclear pore complex for self-regulated entry.
Conclusions:
- The nuclear import pathway of beta-catenin is a critical driver of tumor progression.
- Targeting beta-catenin nuclear transport presents a promising strategy for anticancer drug development.
- Understanding these mechanisms can lead to novel therapeutic interventions for various cancers.
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