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Published on: March 2, 2018
Loss-of-function of neuroplasticity-related genes confers risk for human neurodevelopmental disorders
Milo R Smith1, Benjamin S Glicksberg, Li Li
1Department of Neuroscience, Icahn School of Medicine at Mount Sinai, 1 Gustave L. Levy Pl. New York City, NY 10029, USA, ²Departments of Psychiatry and Opthamology, Icahn School of Medicine at Mount Sinai, 1 Gustave L. Levy Pl. New York City, NY 10029, USA, ³Department of Genetics and Genomic Sciences, Icahn School of Medicine at Mount Sinai, 1 Gustave L. Levy Pl. New York City, NY 10029, USA, ⁴Friedman Brain Institute, Icahn School of Medicine at Mount Sinai, 1 Gustave L. Levy Pl. New York City, NY 10029, USA, ⁵Mindich Child Health and Development Institute, Icahn School of Medicine at Mount Sinai, 1 Gustave L. Levy Pl. New York City, NY 10029, USA, ⁶Institute for Next Generation Healthcare, Icahn School of Medicine at Mount Sinai, 1 Gustave L. Levy Pl. New York City, NY 10029, USA.
Insights
Identifying genetic risk factors for neurodevelopmental disorders is crucial. This study found that loss-of-function variants in plasticity genes increase the risk for conditions like epilepsy and schizophrenia.
Area of Science:
- Neuroscience
- Genetics
- Developmental Biology
Background:
- Neurodevelopmental disorders pose significant societal burdens.
- Early childhood is a critical period for brain development, susceptible to environmental influences.
- Disruptions during neuroplasticity can lead to permanent alterations in brain function.
Purpose of the Study:
- To systematically identify human variants in neuroplasticity-related genes associated with neurodevelopmental disorders.
- To address limitations in high-throughput identification of plasticity genes and associated mutations.
Main Methods:
- Utilized an integrative genomics approach.
- Identified loss-of-function (LOF) variants in plasticity genes from mouse brain transcriptional profiles.
- Analyzed associations between LOF genes and neurodevelopmental disorders in a large patient cohort (Mount Sinai BioMe Biobank and EMR data).
Main Results:
- Identified five shared differentially expressed genes in mouse models of elevated plasticity.
- Found significant associations between LOF variants in these genes and increased risk for neurodevelopmental disorders.
- Specific associations identified for epilepsy and schizophrenia in 10,510 patients.
Conclusions:
- Developed a novel approach for identifying neurodevelopmental risk genes.
- Highlights plasticity genes as key targets for understanding neurodevelopmental disorders.
- Suggests potential for new therapeutic targets for unmet needs in neurodevelopmental diseases.
Abstract:
High and increasing prevalence of neurodevelopmental disorders place enormous personal and economic burdens on society. Given the growing realization that the roots of neurodevelopmental disorders often lie in early childhood, there is an urgent need to identify childhood risk factors. Neurodevelopment is marked by periods of heightened experience-dependent neuroplasticity wherein neural circuitry is optimized by the environment. If these critical periods are disrupted, development of normal brain function can be permanently altered, leading to neurodevelopmental disorders. Here, we aim to systematically identify human variants in neuroplasticity-related genes that confer risk for neurodevelopmental disorders. Historically, this knowledge has been limited by a lack of techniques to identify genes related to neurodevelopmental plasticity in a high-throughput manner and a lack of methods to systematically identify mutations in these genes that confer risk for neurodevelopmental disorders. Using an integrative genomics approach, we determined loss-of-function (LOF) variants in putative plasticity genes, identified from transcriptional profiles of brain from mice with elevated plasticity, that were associated with neurodevelopmental disorders. From five shared differentially expressed genes found in two mouse models of juvenile-like elevated plasticity (juvenile wild-type or adult Lynx1-/- relative to adult wild-type) that were also genotyped in the Mount Sinai BioMe Biobank we identified multiple associations between LOF genes and increased risk for neurodevelopmental disorders across 10,510 patients linked to the Mount Sinai Electronic Medical Records (EMR), including epilepsy and schizophrenia. This work demonstrates a novel approach to identify neurodevelopmental risk genes and points toward a promising avenue to discover new drug targets to address the unmet therapeutic needs of neurodevelopmental disease.
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