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Published on: March 10, 2015
Integrated microRNA and mRNA expression profiling in a rat colon carcinogenesis model: effect of a chemo-protective
Manasvi S Shah1, Scott L Schwartz, Chen Zhao
1Program in Integrative Nutrition & Complex Diseases, Texas A&M University, College Station, TX, USA.
Abstract:
We have recently demonstrated that nutritional bioactives (fish oil and pectin) modulate microRNA molecular switches in the colon. Since integrated analysis of microRNA and mRNA expression at an early stage of colon cancer development is lacking, in this study, four computational approaches were utilized to test the hypothesis that microRNAs and their posttranscriptionally regulated mRNA targets, i.e., both total mRNAs and actively translated mRNA transcripts, are differentially modulated by carcinogen and diet treatment. Sprague-Dawley rats were fed diets containing corn oil ± fish oil with pectin ± cellulose and injected with azoxymethane or saline (control). Colonic mucosa was assayed at an early time of cancer progression, and global gene set enrichment analysis was used to obtain those microRNAs significantly enriched by the change in expression of their putative target genes. In addition, cumulative distribution function plots and functional network analyses were used to evaluate the impact of diet and carcinogen combination on mRNA levels induced via microRNA alterations. Finally, linear discriminant analysis was used to identify the best single-, two-, and three-microRNA combinations for classifying dietary effects and colon tumor development. We demonstrate that polysomal profiling is tightly related to microRNA changes when compared with total mRNA profiling. In addition, diet and carcinogen exposure modulated a number of microRNAs (miR-16, miR-19b, miR-21, miR26b, miR27b, miR-93, and miR-203) linked to canonical oncogenic signaling pathways. Complementary gene expression analyses showed that oncogenic PTK2B, PDE4B, and TCF4 were suppressed by the chemoprotective diet at both the mRNA and protein levels.
Insights
Nutritional bioactives like fish oil and pectin alter microRNA and mRNA expression in the colon, impacting early colon cancer development. This study reveals specific microRNAs and genes modulated by diet and carcinogen exposure.
Area of Science:
- Molecular biology
- Nutritional science
- Cancer research
Background:
- Nutritional bioactives (fish oil, pectin) are known to modulate microRNA (miRNA) activity in the colon.
- Integrated analysis of miRNA and mRNA expression during early colon cancer development is limited.
Purpose of the Study:
- To investigate how nutritional bioactives and carcinogen exposure affect miRNA and mRNA expression in early colon cancer.
- To identify specific miRNAs and their mRNA targets modulated by diet and carcinogen treatment.
Main Methods:
- Utilized four computational approaches for integrated miRNA and mRNA analysis.
- Employed Sprague-Dawley rats fed specific diets (corn oil ± fish oil, pectin ± cellulose) and treated with azoxymethane or saline.
- Assayed colonic mucosa at an early stage of cancer progression.
- Applied global gene set enrichment analysis, cumulative distribution function plots, functional network analysis, and linear discriminant analysis.
Main Results:
- Polysomal profiling showed a stronger correlation with miRNA changes than total mRNA profiling.
- Diet and carcinogen exposure modulated specific miRNAs (miR-16, miR-19b, miR-21, miR26b, miR27b, miR-93, miR-203) linked to oncogenic pathways.
- Chemoprotective diets suppressed oncogenic genes (PTK2B, PDE4B, TCF4) at both mRNA and protein levels.
Conclusions:
- Dietary interventions significantly impact miRNA and mRNA expression profiles in the colon during early cancer development.
- Specific miRNAs and oncogenic pathways are key targets for chemoprevention strategies.
- Integrated analysis provides a comprehensive understanding of molecular events in diet-induced colon cancer modulation.

