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Published on: March 6, 2018
Environmental carcinogens disproportionally mutate genes implicated in neurodevelopmental disorders
Brennan H Baker1, Shaoyi Zhang2, Jeremy M Simon3
1Department of Environmental Health Sciences, Mailman School of Public Health, Columbia University, New York, NY, United States.
Introduction:
De novo mutations contribute to a large proportion of sporadic psychiatric and developmental disorders, yet the potential role of environmental carcinogens as drivers of causal de novo mutations in neurodevelopmental disorders is poorly studied.
Methods:
To explore environmental mutation vulnerability of disease-associated gene sets, we analyzed publicly available whole genome sequencing datasets of mutations in human induced pluripotent stem cell clonal lines exposed to 12 classes of environmental carcinogens, and human lung cancers from individuals living in highly polluted regions. We compared observed rates of exposure-induced mutations in disease-related gene sets with the expected rates of mutations based on control genes randomly sampled from the genome using exact binomial tests. To explore the role of sequence characteristics in mutation vulnerability, we modeled the effects of sequence length, gene expression, and percent GC content on mutation rates of entire genes and gene coding sequences using multivariate Quasi-Poisson regressions.
Results:
We demonstrate that several mutagens, including radiation and polycyclic aromatic hydrocarbons, disproportionately mutate genes related to neurodevelopmental disorders including autism spectrum disorders, schizophrenia, and attention deficit hyperactivity disorder. Other disease genes including amyotrophic lateral sclerosis, Alzheimer's disease, congenital heart disease, orofacial clefts, and coronary artery disease were generally not mutated more than expected. Longer sequence length was more strongly associated with elevated mutations in entire genes compared with mutations in coding sequences. Increased expression was associated with decreased coding sequence mutation rate, but not with the mutability of entire genes. Increased GC content was associated with increased coding sequence mutation rates but decreased mutation rates in entire genes.
Discussion:
Our findings support the possibility that neurodevelopmental disorder genetic etiology is partially driven by a contribution of environment-induced germ line and somatic mutations.
Insights
Environmental carcinogens, like radiation and polycyclic aromatic hydrocarbons, can disproportionately mutate genes linked to neurodevelopmental disorders (NDDs). This study suggests environmental factors may contribute to NDD genetic causes.
Area of Science:
- Genetics
- Environmental Health
- Neuroscience
Background:
- * De novo mutations are significant in sporadic psychiatric and developmental disorders.
- * The role of environmental carcinogens in driving mutations for neurodevelopmental disorders (NDDs) is understudied.
Purpose of the Study:
- * To investigate the environmental mutation vulnerability of gene sets associated with diseases.
- * To explore how sequence characteristics influence mutation vulnerability in disease-related genes.
Main Methods:
- * Analyzed whole genome sequencing data from human cell lines exposed to carcinogens and lung cancers from polluted regions.
- * Compared mutation rates in disease-associated genes versus control genes using exact binomial tests.
- * Modeled sequence length, gene expression, and GC content effects on mutation rates using Quasi-Poisson regressions.
Main Results:
- * Radiation and polycyclic aromatic hydrocarbons disproportionately mutated genes linked to autism spectrum disorder, schizophrenia, and ADHD.
- * Genes for other diseases like ALS and Alzheimer's showed no significant mutation bias.
- * Sequence length, gene expression, and GC content influenced mutation rates differently for entire genes versus coding sequences.
Conclusions:
- * Environmental mutagens can disproportionately affect genes relevant to NDDs.
- * Findings support a role for environment-induced germline and somatic mutations in NDD etiology.
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