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Published on: December 10, 2021
Crosstalk between Wnt Signaling and RNA Processing in Colorectal Cancer
1Department of Basic Sciences, The Commonwealth Medical College, 525 Pine Street, Scranton, PA 18509, USA.
Abstract:
RNA processing involves a variety of processes affecting gene expression, including the removal of introns through RNA splicing, as well as 3' end processing (cleavage and polyadenylation). Alternative RNA processing is fundamentally important for gene regulation, and aberrant processing is associated with the initiation and progression of cancer. Deregulated Wnt signaling, which is the initiating event in the development of most cases of human colorectal cancer (CRC), has been linked to modified RNA processing, which may contribute to Wnt-mediated colonic carcinogenesis. Crosstalk between Wnt signaling and alternative RNA splicing with relevance to CRC includes effects on the expression of Rac1b, an alternatively spliced gene associated with tumorigenesis, which exhibits alternative RNA splicing that is influenced by Wnt activity. In addition, Tcf4, a crucial component of Wnt signaling, also exhibits alternative splicing, which is likely involved in colonic tumorigenesis. Modulation of 3' end formation, including of the Wnt target gene COX-2, also can influence the neoplastic process, with implications for CRC. While many human genes are dependent on introns and splicing for normal levels of gene expression, naturally intronless genes exist with a unique metabolism that allows for intron-independent gene expression. Effects of Wnt activity on the RNA metabolism of the intronless Wnt-target gene c-jun is a likely contributor to cancer development. Further, butyrate, a breakdown product of dietary fiber and a histone deacetylase inhibitor, upregulates Wnt activity in CRC cells, and also modulates RNA processing; therefore, the interplay between Wnt activity, the modulation of this activity by butyrate, and differential RNA metabolism in colonic cells can significantly influence tumorigenesis. Determining the role played by altered RNA processing in Wnt-mediated neoplasia may lead to novel interventions aimed at restoring normal RNA metabolism for therapeutic benefit. Therefore, this minireview presents a brief overview of several aspects of RNA processing of relevance to cancer, which potentially influence, or are influenced by, Wnt signaling activity.
Insights
Altered RNA processing impacts gene expression and is crucial in colorectal cancer (CRC) development. Understanding the interplay between Wnt signaling and RNA metabolism offers potential therapeutic strategies for CRC.
Area of Science:
- Molecular Biology
- Cancer Research
- Gene Regulation
Background:
- RNA processing, including splicing and 3' end formation, is vital for gene expression.
- Aberrant RNA processing is implicated in cancer initiation and progression.
- Deregulated Wnt signaling is a key event in colorectal cancer (CRC) pathogenesis.
Purpose of the Study:
- To review the role of RNA processing in Wnt-mediated colorectal cancer.
- To explore the crosstalk between Wnt signaling and alternative RNA splicing in CRC.
- To discuss the implications of 3' end processing and intronless gene metabolism in colonic tumorigenesis.
Main Methods:
- Literature review of RNA processing mechanisms.
- Analysis of Wnt signaling pathways in relation to RNA metabolism.
- Examination of specific genes (Rac1b, Tcf4, COX-2, c-jun) involved in CRC and RNA processing.
Main Results:
- Wnt signaling influences alternative splicing of genes like Rac1b and Tcf4, relevant to CRC.
- Modulation of 3' end formation of Wnt target genes, such as COX-2, affects neoplastic processes.
- Wnt activity impacts the RNA metabolism of intronless genes like c-jun, contributing to cancer.
- Butyrate, a dietary fiber metabolite, modulates Wnt activity and RNA processing in CRC cells.
Conclusions:
- Altered RNA processing is a significant factor in Wnt-mediated colorectal cancer.
- The interplay between Wnt activity, butyrate, and RNA metabolism influences tumorigenesis.
- Targeting RNA processing pathways may offer novel therapeutic interventions for CRC.
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