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Computational Analysis of Single Nucleotide Polymorphisms Associated with Altered Drug Responsiveness in Type 2
Valerio Costa1, Antonio Federico2,3, Carla Pollastro4,5
1Institute of Genetics and Biophysics "Adriano Buzzati-Traverso", National Research Council, Via Pietro Castellino 111, 80131 Naples, Italy. valerio.costa@igb.cnr.it.
Abstract:
Type 2 diabetes (T2D) is one of the most frequent mortality causes in western countries, with rapidly increasing prevalence. Anti-diabetic drugs are the first therapeutic approach, although many patients develop drug resistance. Most drug responsiveness variability can be explained by genetic causes. Inter-individual variability is principally due to single nucleotide polymorphisms, and differential drug responsiveness has been correlated to alteration in genes involved in drug metabolism (CYP2C9) or insulin signaling (IRS1, ABCC8, KCNJ11 and PPARG). However, most genome-wide association studies did not provide clues about the contribution of DNA variations to impaired drug responsiveness. Thus, characterizing T2D drug responsiveness variants is needed to guide clinicians toward tailored therapeutic approaches. Here, we extensively investigated polymorphisms associated with altered drug response in T2D, predicting their effects in silico. Combining different computational approaches, we focused on the expression pattern of genes correlated to drug resistance and inferred evolutionary conservation of polymorphic residues, computationally predicting the biochemical properties of polymorphic proteins. Using RNA-Sequencing followed by targeted validation, we identified and experimentally confirmed that two nucleotide variations in the CAPN10 gene-currently annotated as intronic-fall within two new transcripts in this locus. Additionally, we found that a Single Nucleotide Polymorphism (SNP), currently reported as intergenic, maps to the intron of a new transcript, harboring CAPN10 and GPR35 genes, which undergoes non-sense mediated decay. Finally, we analyzed variants that fall into non-coding regulatory regions of yet underestimated functional significance, predicting that some of them can potentially affect gene expression and/or post-transcriptional regulation of mRNAs affecting the splicing.
Insights
Genetic variations impact type 2 diabetes drug response. This study identifies novel variants in CAPN10 and regulatory regions, offering insights for personalized medicine and improved treatment strategies.
Area of Science:
- Pharmacogenomics
- Molecular Biology
- Computational Biology
Background:
- Type 2 diabetes (T2D) is a leading cause of mortality with increasing prevalence.
- Drug resistance is a significant challenge in T2D management, with genetic factors playing a key role in treatment variability.
- Existing genome-wide association studies have limited insight into DNA variations affecting drug responsiveness.
Purpose of the Study:
- To investigate genetic polymorphisms associated with altered drug response in T2D.
- To computationally predict the effects of these variations on gene function and drug responsiveness.
- To identify novel genetic variants and regulatory elements influencing T2D drug response for tailored therapies.
Main Methods:
- In silico prediction of variant effects using computational approaches.
- Analysis of gene expression patterns related to drug resistance.
- RNA-Sequencing and targeted validation to identify and confirm genetic variations.
- Assessment of non-coding variants in regulatory regions.
Main Results:
- Identified two nucleotide variations within new transcripts of the CAPN10 gene.
- Confirmed a single nucleotide polymorphism (SNP) mapping to a novel transcript involving CAPN10 and GPR35, subject to nonsense-mediated decay.
- Predicted potential functional impact of variants in non-coding regulatory regions on gene expression and mRNA splicing.
Conclusions:
- Novel genetic variations in the CAPN10 locus and associated regulatory regions influence T2D drug response.
- These findings highlight the importance of non-coding DNA variations in pharmacogenomics.
- Characterizing these variants can guide the development of personalized therapeutic strategies for type 2 diabetes.
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