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Published on: April 21, 2022
ADARs and editing: The role of A-to-I RNA modification in cancer progression
Kajsa Fritzell1, Li-Di Xu1, Jens Lagergren2
1Department of Molecular Biosciences, The Wenner-Gren Institute, Stockholm University, Svante Arrheniusväg 20C, 106 91, Stockholm, Sweden.
Abstract:
Cancer arises when pathways that control cell functions such as proliferation and migration are dysregulated to such an extent that cells start to divide uncontrollably and eventually spread throughout the body, ultimately endangering the survival of an affected individual. It is well established that somatic mutations are important in cancer initiation and progression as well as in creation of tumor diversity. Now also modifications of the transcriptome are emerging as a significant force during the transition from normal cell to malignant tumor. Editing of adenosine (A) to inosine (I) in double-stranded RNA, catalyzed by adenosine deaminases acting on RNA (ADARs), is one dynamic modification that in a combinatorial manner can give rise to a very diverse transcriptome. Since the cell interprets inosine as guanosine (G), editing can result in non-synonymous codon changes in transcripts as well as yield alternative splicing, but also affect targeting and disrupt maturation of microRNA. ADAR editing is essential for survival in mammals but its dysregulation can lead to cancer. ADAR1 is for instance overexpressed in, e.g., lung cancer, liver cancer, esophageal cancer and chronic myoelogenous leukemia, which with few exceptions promotes cancer progression. In contrast, ADAR2 is lowly expressed in e.g. glioblastoma, where the lower levels of ADAR2 editing leads to malignant phenotypes. Altogether, RNA editing by the ADAR enzymes is a powerful regulatory mechanism during tumorigenesis. Depending on the cell type, cancer progression seems to mainly be induced by ADAR1 upregulation or ADAR2 downregulation, although in a few cases ADAR1 is instead downregulated. In this review, we discuss how aberrant editing of specific substrates contributes to malignancy.
Insights
RNA editing by adenosine deaminases acting on RNA (ADARs) significantly impacts cancer. Dysregulation of ADAR1 and ADAR2 contributes to tumor progression and malignancy by altering cellular functions.
Area of Science:
- Molecular Biology
- Cancer Research
- Epigenetics
Background:
- Cancer involves dysregulated cell proliferation and migration, with somatic mutations playing a key role.
- Transcriptome modifications are increasingly recognized as significant factors in cancer development.
- Adenosine-to-inosine (A-to-I) RNA editing, catalyzed by ADARs, creates transcriptome diversity.
Purpose of the Study:
- To review the role of ADAR-mediated RNA editing in cancer.
- To discuss how aberrant editing of specific substrates contributes to malignancy.
- To explore the dual role of ADAR enzymes in tumorigenesis.
Main Methods:
- Review of existing literature on ADARs and cancer.
- Analysis of ADAR1 and ADAR2 expression patterns in various cancers.
- Examination of the functional consequences of RNA editing in cancer progression.
Main Results:
- ADAR editing can lead to non-synonymous codon changes, alternative splicing, and microRNA dysregulation.
- ADAR1 overexpression is linked to cancer progression in many cancers (e.g., lung, liver, esophageal).
- ADAR2 downregulation is associated with malignant phenotypes in cancers like glioblastoma.
Conclusions:
- ADAR-mediated RNA editing is a critical regulatory mechanism in tumorigenesis.
- Aberrant ADAR editing, through either ADAR1 upregulation or ADAR2 downregulation, drives cancer progression.
- Understanding ADAR editing provides insights into novel cancer therapeutic strategies.
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