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A Non-random Mouse Model for Pharmacological Reactivation of Mecp2 on the Inactive X Chromosome
Published on: May 22, 2019
A rare myelin protein zero (MPZ) variant alters enhancer activity in vitro and in vivo
Anthony Antonellis1, Megan Y Dennis, Grzegorz Burzynski
1Department of Human Genetics, University of Michigan Medical School, Ann Arbor, Michigan, United States of America.
Background:
Myelin protein zero (MPZ) is a critical structural component of myelin in the peripheral nervous system. The MPZ gene is regulated, in part, by the transcription factors SOX10 and EGR2. Mutations in MPZ, SOX10, and EGR2 have been implicated in demyelinating peripheral neuropathies, suggesting that components of this transcriptional network are candidates for harboring disease-causing mutations (or otherwise functional variants) that affect MPZ expression.
Methodology:
We utilized a combination of multi-species sequence comparisons, transcription factor-binding site predictions, targeted human DNA re-sequencing, and in vitro and in vivo enhancer assays to study human non-coding MPZ variants.
Principal Findings:
Our efforts revealed a variant within the first intron of MPZ that resides within a previously described SOX10 binding site is associated with decreased enhancer activity, and alters binding of nuclear proteins. Additionally, the genomic segment harboring this variant directs tissue-relevant reporter gene expression in zebrafish.
Conclusions:
This is the first reported MPZ variant within a cis-acting transcriptional regulatory element. While we were unable to implicate this variant in disease onset, our data suggests that similar non-coding sequences should be screened for mutations in patients with neurological disease. Furthermore, our multi-faceted approach for examining the functional significance of non-coding variants can be readily generalized to study other loci important for myelin structure and function.
Insights
A novel MPZ gene variant in a SOX10 binding site shows reduced enhancer activity, impacting myelin structure. This finding highlights the importance of screening non-coding regulatory elements for mutations in neurological diseases.
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- Myelin protein zero (MPZ) is essential for peripheral nervous system myelin structure.
- SOX10 and EGR2 transcription factors regulate MPZ gene expression.
- Mutations in MPZ, SOX10, and EGR2 are linked to demyelinating peripheral neuropathies.
Purpose of the Study:
- To investigate the functional significance of human non-coding MPZ variants.
- To identify novel regulatory elements controlling MPZ expression.
- To explore the role of non-coding variants in neurological disorders.
Main Methods:
- Multi-species sequence comparisons and transcription factor-binding site predictions.
- Targeted human DNA re-sequencing of MPZ non-coding regions.
- In vitro and in vivo enhancer assays, including zebrafish reporter gene expression.
Main Results:
- A variant in the first intron of MPZ, within a SOX10 binding site, decreased enhancer activity.
- This variant altered nuclear protein binding and directed tissue-relevant reporter gene expression in zebrafish.
- The identified variant was the first reported MPZ variant within a cis-acting transcriptional regulatory element.
Conclusions:
- Non-coding sequences, particularly cis-acting regulatory elements, are important targets for mutation screening in neurological diseases.
- The study presents a versatile approach for assessing the functional impact of non-coding variants.
- Further investigation of non-coding variants in myelin-related genes is warranted for understanding disease mechanisms.
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