Identification of novel candidate predisposing genes in familial nonmedullary thyroid carcinoma implicating DNA
Carolina Pires1,2, Inês J Marques1,2, Ana Saramago1
1Unidade de Investigação em Patobiologia Molecular, Instituto Português de Oncologia de Lisboa Francisco Gentil, Lisbon, Portugal.
Abstract:
The genetic basis of nonsyndromic familial nonmedullary thyroid carcinoma (FNMTC) is still poorly understood, as the susceptibility genes identified so far only account for a small percentage of the genetic burden. Recently, germline mutations in DNA repair-related genes have been reported in cases with thyroid cancer. In order to clarify the genetic basis of FNMTC, 94 genes involved in hereditary cancer predisposition, including DNA repair genes, were analyzed in 48 probands from FNMTC families, through targeted next-generation sequencing (NGS). Genetic variants were selected upon bioinformatics analysis and in silico studies. Structural modeling and network analysis were also performed. In silico results of NGS data unveiled likely pathogenic germline variants in 15 families with FNMTC, in genes encoding proteins involved in DNA repair (ATM, CHEK2, ERCC2, BRCA2, ERCC4, FANCA, FANCD2, FANCF, and PALB2) and in the DICER1, FLCN, PTCH1, BUB1B, and RHBDF2 genes. Structural modeling predicted that most missense variants resulted in the disruption of networks of interactions between residues, with implications for local secondary and tertiary structure elements. Functional annotation and network analyses showed that the involved DNA repair proteins functionally interact with each other, within the same DNA repair pathway and across different pathways. MAPK activation was a common event in tumor progression. This study supports that rare germline variants in DNA repair genes may be accountable for FNMTC susceptibility, with potential future utility in patients' clinical management, and reinforces the relevance of DICER1 in disease etiology.
Insights
Rare germline variants in DNA repair genes are linked to nonsyndromic familial nonmedullary thyroid carcinoma (FNMTC). This finding may aid in future patient management and highlights DICER1
Area of Science:
- Genetics
- Oncology
- Molecular Biology
Background:
- The genetic basis of familial nonmedullary thyroid carcinoma (FNMTC) remains largely unknown.
- Identified susceptibility genes explain only a small fraction of FNMTC's genetic component.
- Germline mutations in DNA repair genes are increasingly implicated in thyroid cancer.
Purpose of the Study:
- To elucidate the genetic underpinnings of FNMTC.
- To identify novel susceptibility genes for FNMTC.
- To investigate the role of DNA repair genes in FNMTC etiology.
Main Methods:
- Targeted next-generation sequencing (NGS) of 94 hereditary cancer predisposition genes in 48 FNMTC families.
- Bioinformatics and in silico analyses to select genetic variants.
- Structural modeling and network analysis of identified variants and proteins.
Main Results:
- Likely pathogenic germline variants were identified in 15 FNMTC families.
- Variants were found in DNA repair genes (e.g., ATM, BRCA2, PALB2) and other genes (DICER1, FLCN, PTCH1).
- Structural modeling indicated disruption of protein interaction networks; MAPK activation was common in tumors.
Conclusions:
- Rare germline variants in DNA repair genes contribute to FNMTC susceptibility.
- The findings have potential clinical utility for FNMTC patient management.
- The study reinforces the role of DICER1 in FNMTC development.
More Related Videos
08:41Author Spotlight: Deciphering the Role of ATM in Ataxia-Telangiectasia and the Associated Cerebellar Degeneration
Published on: December 27, 2024
13:10Detection and Visualization of DNA Damage-induced Protein Complexes in Suspension Cell Cultures Using the Proximity Ligation Assay
Published on: June 9, 2017
Related Concept Videos
Nucleotide Excision Repair
Cells are regularly exposed to mutagens—factors in the environment that can damage DNA and generate mutations. UV radiation is one of the most common mutagens and is estimated to introduce a significant number of changes in DNA. These include bends or kinks in the structure, which can block DNA replication or transcription. If these errors are not fixed, the damage can cause mutations, which in turn can result in cancer or disease depending on which sequences are...
DNA Damage can Stall the Cell Cycle
Cancer-Critical Genes II: Tumor Suppressor Genes
When the function of certain critical genes, especially those involved in cell cycle regulation and cell growth signaling cascades, gets disrupted, it upsets the cell cycle progression. Such cells with unchecked cell cycles start proliferating uncontrollably and eventually develop into tumors.
Such genes that act...
Long-patch Base Excision Repair
Loss of Tumor Suppressor Gene Functions
When the tumor suppressor genes develop mutations or are lost, cells start growing out of control, leading to cancer. However, a single functional copy of the tumor suppressor gene is enough for the cells to maintain their normal functions and cell...
Base Excision Repair
The first step of...
