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The miR-133a, TPM4 and TAp63γ Role in Myocyte Differentiation Microfilament Remodelling and Colon Cancer Progression
Sabrina Caporali1, Cosimo Calabrese2, Marilena Minieri2
1Department of Industrial Engineering, University of Rome Tor Vergata, 00133 Rome, Italy.
Abstract:
MicroRNAs (miRNAs) play an essential role in the regulation of a number of physiological functions. miR-133a and other muscular miRs (myomiRs) play a key role in muscle cell growth and in some type of cancers. Here, we show that miR133a is upregulated in individuals that undertake physical exercise. We used a skeletal muscle differentiation model to dissect miR-133a's role and to identify new targets, identifying Tropomyosin-4 (TPM4). This protein is expressed during muscle differentiation, but importantly it is an essential component of microfilament cytoskeleton and stress fibres formation. The microfilament scaffold remodelling is an essential step in cell transformation and tumour progression. Using the muscle system, we obtained valuable information about the microfilament proteins, and the knowledge on these molecular players can be transferred to the cytoskeleton rearrangement observed in cancer cells. Further investigations showed a role of TPM4 in cancer physiology, specifically, we found that miR-133a downregulation leads to TPM4 upregulation in colon carcinoma (CRC), and this correlates with a lower patient survival. At molecular level, we demonstrated in myocyte differentiation that TPM4 is positively regulated by the TA isoform of the p63 transcription factor. In muscles, miR-133a generates a myogenic stimulus, reducing the differentiation by downregulating TPM4. In this system, miR-133a counteracts the differentiative TAp63 activity. Interestingly, in CRC cell lines and in patient biopsies, miR-133a is able to regulate TPM4 activity, while TAp63 is not active. The downregulation of the miR leads to TPM4 overexpression, this modifies the architecture of the cell cytoskeleton contributing to increase the invasiveness of the tumour and associating with a poor prognosis. These results add data to the interesting question about the link between physical activity, muscle physiology and protection against colorectal cancer. The two phenomena have in common the cytoskeleton remodelling, due to the TPM4 activity, that is involved in stress fibres formation.
Insights
Physical exercise upregulates miR-133a, a microRNA that regulates muscle growth. This microRNA (miRNA) also impacts cancer by controlling Tropomyosin-4 (TPM4) levels, affecting cell invasiveness and patient survival in colorectal cancer.
Area of Science:
- Molecular Biology
- Cell Biology
- Cancer Research
Background:
- MicroRNAs (miRNAs) regulate physiological functions, with muscular miRs (myomiRs) like miR-133a impacting muscle growth and cancer.
- Physical activity is linked to physiological changes, but its molecular connection to cancer protection requires further elucidation.
Purpose of the Study:
- To investigate the role of miR-133a in muscle differentiation and identify its targets.
- To explore the function of miR-133a and its target, Tropomyosin-4 (TPM4), in colorectal cancer (CRC) progression and patient survival.
Main Methods:
- Utilized a skeletal muscle differentiation model to study miR-133a.
- Identified TPM4 as a miR-133a target and investigated its role in muscle and CRC cells.
- Analyzed patient biopsies and cell lines to correlate miR-133a/TPM4 expression with CRC prognosis.
Main Results:
- miR-133a is upregulated by physical exercise and downregulates TPM4 in muscle differentiation.
- TPM4, a microfilament cytoskeleton component, is upregulated upon miR-133a downregulation in CRC.
- TPM4 overexpression in CRC correlates with altered cytoskeleton architecture, increased invasiveness, and reduced patient survival.
Conclusions:
- miR-133a plays a dual role in muscle physiology and CRC, regulating TPM4 and cytoskeleton dynamics.
- The miR-133a/TPM4 axis offers potential therapeutic targets for colorectal cancer.
- Findings suggest a molecular link between physical activity, muscle health, and colorectal cancer protection via cytoskeleton regulation.
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