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microRNA 21 and long non-coding RNAs interplays underlie cancer pathophysiology: A narrative review
Roberta Giordo1, Fatemeh Abdullah M Ahmadi2, Nedal Al Husaini2
1Department of Biomedical Sciences, University of Sassari, Viale San Pietro 43B, 07100, Sassari, Italy.
Abstract:
Non-coding RNAs (ncRNAs) are a diverse group of functional RNA molecules that lack the ability to code for proteins. Despite missing this traditional role, ncRNAs have emerged as crucial regulators of various biological processes and have been implicated in the development and progression of many diseases, including cancer. MicroRNAs (miRNAs) and long non-coding RNAs (lncRNAs) are two prominent classes of ncRNAs that have emerged as key players in cancer pathophysiology. In particular, miR-21 has been reported to exhibit oncogenic roles in various forms of human cancer, including prostate, breast, lung, and colorectal cancer. In this context, miR-21 overexpression is closely associated with tumor proliferation, growth, invasion, angiogenesis, and chemoresistance, whereas miR-21 inactivation is linked to the regression of most tumor-related processes. Accordingly, miR-21 is a crucial modulator of various canonical oncogenic pathways such as PTEN/PI3K/Akt, Wnt/β-catenin, STAT, p53, MMP2, and MMP9. Moreover, interplays between lncRNA and miRNA further complicate the regulatory mechanisms underlying tumor development and progression. In this regard, several lncRNAs have been found to interact with miR-21 and, by functioning as competitive endogenous RNAs (ceRNAs) or miRNA sponges, can modulate cancer tumorigenesis. This work presents and discusses recent findings highlighting the roles and pathophysiological implications of the miR-21-lncRNA regulatory axis in cancer occurrence, development, and progression. The data collected indicate that specific lncRNAs, such as MEG3, CASC2, and GAS5, are strongly associated with miR-21 in various types of cancer, including gastric, cervical, lung, and glioma. Indeed, these lncRNAs are well-known tumor suppressors and are commonly downregulated in different types of tumors. Conversely, by modulating various mechanisms and oncogenic signaling pathways, their overexpression has been linked with preventing tumor formation and development. This review highlights the significance of these regulatory pathways in cancer and their potential for use in cancer therapy as diagnostic and prognostic markers.
Insights
Non-coding RNAs (ncRNAs) regulate biological processes and cancer. The miR-21 and long non-coding RNA (lncRNA) axis, involving tumor suppressors like MEG3, shows potential for cancer diagnostics and therapy.
Area of Science:
- Molecular Biology
- Genetics
- Oncology
Background:
- Non-coding RNAs (ncRNAs) are crucial regulators in biological processes and disease, including cancer.
- MicroRNAs (miRNAs) and long non-coding RNAs (lncRNAs) are key players in cancer pathophysiology.
- miR-21 is an oncogenic miRNA implicated in various cancers, promoting proliferation, invasion, and chemoresistance.
Purpose of the Study:
- To review the roles and implications of the miR-21-lncRNA regulatory axis in cancer.
- To highlight the interplay between lncRNAs and miR-21 in tumorigenesis.
- To discuss the potential of this axis as diagnostic and prognostic markers in cancer therapy.
Main Methods:
- Literature review of recent findings on ncRNA-mediated gene regulation in cancer.
- Analysis of the miR-21-lncRNA interactions, including ceRNA and miRNA sponge mechanisms.
- Discussion of specific lncRNAs (MEG3, CASC2, GAS5) associated with miR-21 in various cancers.
Main Results:
- The miR-21-lncRNA axis significantly impacts cancer occurrence, development, and progression.
- Specific lncRNAs (MEG3, CASC2, GAS5) act as tumor suppressors, often downregulated in tumors.
- These lncRNAs interact with miR-21, modulating oncogenic pathways and influencing tumor growth.
Conclusions:
- The miR-21-lncRNA regulatory network is a critical determinant in cancer.
- Dysregulation of tumor-suppressive lncRNAs interacting with miR-21 contributes to tumorigenesis.
- Targeting this axis holds promise for novel cancer therapeutic strategies and biomarkers.
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