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Identification and analysis of oncogenic non-synonymous single nucleotide polymorphisms in the human NRAS gene: An
Md Mozibullah1, Hadieh Eslampanah Seyedi2, Marina Khatun1
1Department of Biochemistry and Molecular Biology, Mawlana Bhashani Science and Technology University, Santosh, Tangail 1902, Bangladesh.
Background:
N-ras protein is encoded by the NRAS gene and operates as GDP-GTP-controlled on/off switching. N-ras interacts with cellular signaling networks that regulate various cellular activities including cell proliferation and survival. The nonsynonymous single nucleotide polymorphism (nsSNPs)-mediated alteration can substantially disrupt the structure and activity of the corresponding protein. N-ras has been reported to be associated with numerous diseases including cancers due to the nsSNPs. A comprehensive study on the NRAS gene to unveil the potentially damaging and oncogenic nsSNPs is yet to be accomplished. Hence, this extensive in silico study is intended to identify the disease-associated, specifically oncogenic nsSNPs of the NRAS gene.
Results:
Out of 140 missense variants, 7 nsSNPs (I55R, G60E, G60R, Y64D, L79F, D119G, and V152F) were identified to be damaging utilizing 10 computational tools that works based on different algorithms with high accuracy. Among those, G60E, G60R, and D119G variants were further filtered considering their location in the highly conserved region and later identified as oncogenic variants. Interestingly, G60E and G60R variants were revealed to be particularly associated with lung adenocarcinoma, rhabdomyosarcoma, and prostate adenocarcinoma. Therefore, D119G could be subjected to detailed investigation for identifying its association with specific cancer.
Conclusion:
This in silico study identified the deleterious and oncogenic missense variants of the human NRAS gene that could be utilized for designing further experimental investigation. The outcomes of this study would be worthwhile in future research for developing personalized medicine.
Insights
This study identified damaging and cancer-promoting NRAS gene variants using computational tools. These findings aid in understanding NRAS-related cancers and developing personalized medicine strategies.
Area of Science:
- Genetics and Molecular Biology
- Bioinformatics
- Cancer Research
Background:
- The NRAS gene encodes N-ras protein, crucial for cell signaling, proliferation, and survival.
- Nonsynonymous single nucleotide polymorphisms (nsSNPs) in NRAS can alter protein structure and function, potentially leading to diseases like cancer.
- A comprehensive analysis of NRAS nsSNPs for identifying damaging and oncogenic variants was lacking.
Purpose of the Study:
- To perform an in silico analysis of the human NRAS gene.
- To identify potentially damaging and oncogenic nsSNPs associated with cancer.
- To provide a foundation for future experimental investigations and personalized medicine.
Main Methods:
- Utilized 10 different computational tools to analyze 140 missense variants of the NRAS gene.
- Identified nsSNPs predicted to be damaging based on algorithmic analysis.
- Filtered damaging variants by their location in conserved regions to identify oncogenic variants.
Main Results:
- Identified 7 nsSNPs (I55R, G60E, G60R, Y64D, L79F, D119G, V152F) as damaging.
- Further identified G60E, G60R, and D119G as oncogenic variants due to their location in conserved regions.
- G60E and G60R variants showed association with lung, rhabdomyosarcoma, and prostate adenocarcinomas.
Conclusions:
- Successfully identified deleterious and oncogenic missense variants in the human NRAS gene through in silico methods.
- The identified variants can guide future experimental research.
- Findings contribute to the development of personalized medicine approaches for NRAS-related cancers.
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