Javascript must be enabled to continue!
Comprehensive structural and functional analyses of RAD50 nsSNPs: from prediction to impact assessment
View through CrossRef
BackgroundThe RAD50 gene on chromosome 5q3.11 plays an important role in the MRN (Mre11–Rad50–Nbs1) complex. This complex orchestrates cellular responses to the DNA double-strand breaks (DSBs) through several pathways for genome stability. This study aims to investigate the functional impact of non-synonymous single-nucleotide polymorphisms (nsSNPs) in RAD50 (a breast cancer-associated gene) and focuses on their consequences on protein structure and interaction within the MRN complex.MethodsA total of 1,806 nsSNPs were retrieved and subjected to variant analysis using a set of computational tools and ConSurf. Pathogenicity and protein stability criteria were established based on specific tools. Highly conserved damaging nsSNPs were prioritized for the structural analysis. GOR-IV was used for secondary structure prediction, whereas AlphaFold, RoseTTAFold, and I-TASSER were used for protein structure prediction. The docking of RAD50–Mre11A complexes was performed using HADDOCK to assess the impact of nsSNPs on protein–protein interactions. Molecular dynamic simulation was performed to verify the role of mutants in molecular docking analysis.ResultsA subset of pathogenic and disease-associated nsSNPs in the RAD50 gene altered the protein stability and interactions with the Mre11A protein. Substantial alterations in the interacting profiles of mutants (A73P, V117F, L518P, L1092R, N1144S, and A1209T) suggest potential implications for DNA repair mechanisms and genome stability.ConclusionThe study discloses the normative impact of RAD50 mutations on the pathophysiology of breast cancer. It can provide the basis to treat RAD50 mutation-deficient cells.
Title: Comprehensive structural and functional analyses of RAD50 nsSNPs: from prediction to impact assessment
Description:
BackgroundThe RAD50 gene on chromosome 5q3.
11 plays an important role in the MRN (Mre11–Rad50–Nbs1) complex.
This complex orchestrates cellular responses to the DNA double-strand breaks (DSBs) through several pathways for genome stability.
This study aims to investigate the functional impact of non-synonymous single-nucleotide polymorphisms (nsSNPs) in RAD50 (a breast cancer-associated gene) and focuses on their consequences on protein structure and interaction within the MRN complex.
MethodsA total of 1,806 nsSNPs were retrieved and subjected to variant analysis using a set of computational tools and ConSurf.
Pathogenicity and protein stability criteria were established based on specific tools.
Highly conserved damaging nsSNPs were prioritized for the structural analysis.
GOR-IV was used for secondary structure prediction, whereas AlphaFold, RoseTTAFold, and I-TASSER were used for protein structure prediction.
The docking of RAD50–Mre11A complexes was performed using HADDOCK to assess the impact of nsSNPs on protein–protein interactions.
Molecular dynamic simulation was performed to verify the role of mutants in molecular docking analysis.
ResultsA subset of pathogenic and disease-associated nsSNPs in the RAD50 gene altered the protein stability and interactions with the Mre11A protein.
Substantial alterations in the interacting profiles of mutants (A73P, V117F, L518P, L1092R, N1144S, and A1209T) suggest potential implications for DNA repair mechanisms and genome stability.
ConclusionThe study discloses the normative impact of RAD50 mutations on the pathophysiology of breast cancer.
It can provide the basis to treat RAD50 mutation-deficient cells.
Related Results
Deficiency in Epithelium RAD50 Aggravates UC via IL-6-Mediated JAK1/2-STAT3 Signaling and Promotes Development of Colitis-Associated Cancer in Mice
Deficiency in Epithelium RAD50 Aggravates UC via IL-6-Mediated JAK1/2-STAT3 Signaling and Promotes Development of Colitis-Associated Cancer in Mice
Abstract
Background
Ulcerative colitis (UC) is one of the most important risk factors for developing colitis-associated cancer (...
Homologous recombination mRNAs (RAD21, RAD50 and BARD1) have a potentially poor prognostic role in ERBB2-low bladder cancer patients
Homologous recombination mRNAs (RAD21, RAD50 and BARD1) have a potentially poor prognostic role in ERBB2-low bladder cancer patients
AbstractHuman epidermal growth factor receptor 2 (HER2/ERBB2) factor is known to be implicated in many malignancies and the potential of it as a prognostic biomarker was reported y...
RAD50 Deficiency and Its Effects on Zebrafish Embryonic Development and DNA Repair Mechanisms
RAD50 Deficiency and Its Effects on Zebrafish Embryonic Development and DNA Repair Mechanisms
The MRE11-RAD50-NBS1 (MRN) complex is essential in detecting, signaling, and repairing DNA double-strand breaks (DSBs), thus maintaining genomic integrity. Mutations in RAD50 are l...
Computational investigation unveils pathogenic LIG3 non-synonymous mutations and therapeutic targets in acute myeloid leukemia
Computational investigation unveils pathogenic LIG3 non-synonymous mutations and therapeutic targets in acute myeloid leukemia
Abstract
Single nucleotide polymorphisms (SNPs) in DNA repair genes can impair protein structure and function, contributing to disease developmen...
Computational investigation unveils pathogenic LIG3 non-synonymous mutations and therapeutic targets in acute myeloid leukemia
Computational investigation unveils pathogenic LIG3 non-synonymous mutations and therapeutic targets in acute myeloid leukemia
Single nucleotide polymorphisms (SNPs) in DNA repair genes can impair protein structure and function, contributing to disease development, including cancer. Non-synonymous SNPs (ns...
From Zebrafish To Humans: In Silico Comparative Study of RAD50 Sequences
From Zebrafish To Humans: In Silico Comparative Study of RAD50 Sequences
DNA damage, particularly the occurrence of DNA double-strand breaks (DSBs), presents a significant hazard to the integrity and viability of cells. Improper repair of DSBs can resul...
In silico analysis of non-synonymous single nucleotide polymorphisms of human DEFB1 gene
In silico analysis of non-synonymous single nucleotide polymorphisms of human DEFB1 gene
Abstract
Background
Single nucleotide polymorphisms (SNPs) play a significant role in differences in individual’s susceptibility to diseases, and it is imperative to differentiate ...
A computational approach for structural and functional analyses of disease-associated mutations in the human CYLD gene
A computational approach for structural and functional analyses of disease-associated mutations in the human CYLD gene
Abstract
Tumor suppressor cylindromatosis protein (CYLD) regulates NF-κB and JNK signaling pathways by cleaving K63-linked poly-ubiquitin cha...

