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Analysis of Combinatorial miRNA Treatments to Regulate Cell Cycle and Angiogenesis
Published on: March 30, 2019
RNA-Interference-Mediated miR-122-Based Gene Regulation in Colon Cancer, a Structural In Silico Analysis
Harsha Ganesan1, Suman K Nandy2, Antara Banerjee1
1Department of Medical Biotechnology, Faculty of Allied Health Sciences, Chettinad Academy of Research and Education, Chettinad Hospital and Research Institute, Kelambakkam, Chennai 603103, Tamil Nadu, India.
Abstract:
The role of microRNA 122 (miR-122) in colorectal cancer (CRC) has not been widely investigated. In the current study, we aimed to identify the prominent gene and protein interactors of miR122 in CRC. Based on their binding affinity, these targets were chosen as candidate genes for the creation of miR122-mRNA duplexes. Following this, we examined the miRNA-mediated silencing mechanism using the gene-silencing complex protein Argonaute (AGO). Public databases, STRING, and GeneMANIA were utilized to identify major proteins and genes interacting with miR-122. DAVID, PANTHER, UniProt, FunRich, miRwalk, and KEGG were used for functional annotation, pathway enrichment, binding affinity analysis, and expression of genes in different stages of cancer. Three-dimensional duplexes of hub genes and miR-122 were created using the RNA composer, followed by molecular interaction analysis using molecular docking with the AGO protein. We analyzed, classified, and scrutinized 93 miR-122 interactors using various bioinformatic approaches. A total of 14 hub genes were categorized as major interactors of miR-122. The study confirmed the role of various experimentally documented miR-122 interactors such as MTDH (Q86UE4), AKT1 (P31749), PTPN1 (P18031), MYC (P01106), GSK3B (P49841), RHOA (P61586), and PIK3CG (P48736) and put forth several novel interactors, with AKT3 (Q9Y243), NCOR2 (Q9Y618), PIK3R2 (O00459), SMAD4 (P61586), and TGFBR1 (P36897). Double-stranded RNA duplexes of the strongest interactors were found to exhibit higher binding affinity with AGO. In conclusions, the study has explored the role of miR-122 in CRC and has identified a closely related group of genes influencing the prognosis of CRC in multiple ways. Further, these genes prove to be targets of gene silencing through RNA interference and might serve as effective therapeutic targets in understanding and treating CRC.
Insights
MicroRNA 122 (miR-122) plays a role in colorectal cancer (CRC) by interacting with key genes. These interactions suggest novel therapeutic targets for CRC treatment via gene silencing.
Area of Science:
- Molecular Biology
- Genetics
- Bioinformatics
Background:
- The role of microRNA 122 (miR-122) in colorectal cancer (CRC) remains underexplored.
- Investigating miR-122 interactions is crucial for understanding CRC pathogenesis.
Purpose of the Study:
- To identify prominent gene and protein interactors of miR-122 in colorectal cancer.
- To elucidate the miRNA-mediated gene silencing mechanism involving Argonaute (AGO).
Main Methods:
- Utilized public databases (STRING, GeneMANIA) to identify miR-122 interactors.
- Employed bioinformatics tools (DAVID, PANTHER, UniProt, FunRich, miRwalk, KEGG) for functional annotation and pathway analysis.
- Performed molecular docking to analyze interactions between miR-122 duplexes, hub genes, and AGO protein.
Main Results:
- Identified 93 miR-122 interactors, categorizing 14 as major hub genes.
- Confirmed known interactors (e.g., MTDH, AKT1, MYC) and identified novel ones (e.g., AKT3, NCOR2, SMAD4).
- Demonstrated that stronger interactor duplexes exhibit higher binding affinity with AGO.
Conclusions:
- miR-122 is implicated in CRC through interactions with a network of genes affecting prognosis.
- Identified novel miR-122 targets with potential for therapeutic intervention in CRC.
- These genes are viable targets for gene silencing through RNA interference for CRC treatment.
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