Molecular phenotype of Fragile X syndrome: FMRP, FXRPs, and protein targets
Walter E Kaufmann1, Sonia Cohen, Hong-Tao Sun
1Department of Pathology, Johns Hopkins University School of Medicine, Baltimore, Maryland 21205, USA. wekaufman@jhmi.edu
Abstract:
Fragile X syndrome (FraX) is one of the most prevalent genetic causes of mental retardation. FraX is associated with an unstable expansion of a polymorphism within the 5' untranslated region of the FMR1 gene. The main consequence of this mutation is a reduction in the levels of the gene product (FMRP). FMRP is an RNA-binding protein with multiple spliced variants (isoforms) and high levels of expression in a variety of tissues, including neurons. In the latter cells, it is localized not only to the perikaryon but also to dendrites and dendritic spines. FMRP belongs to a family of proteins that includes the Fragile X Related Proteins or FXRPs. FXRPs share high homology in their functional domains with FMRP, and also associate with mRNA and components of the protein synthesis apparatus. However, FXRPs do not have the same temporo-spatial pattern of distribution (and other properties) of FMRP. Immunochemical assays have confirmed that a functionally uncompensated FMRP deficit is the essence of the FraX molecular phenotype. Here, we report our preliminary study on FXRPs levels in leukocytes from FraX males. By immunoblotting, we found that a marked reduction in FMRP levels is associated with a modest increase in FXR1P and no changes in FXR2P levels. The consequences of this reduced FMRP expression on protein synthesis, in other words, the identification of FMRP targets, can be studied by different molecular approaches including protein interaction and proteomics methods. By two-dimensional gel electrophoresis, we showed that in FraX leukocytes there is a defect in acetylation that involves prominently the regulatory protein annexin-1. Extension of current studies of the molecular phenotype to more brain-relevant tissue samples, a wider range of proteomics-based methods, and correlative analyses of FMRP homologues and FMRP targets with multiple behavioral measures, will greatly expand our understanding of FraX pathogenesis and it will help to develop and monitor new therapeutic strategies.
Insights
Fragile X syndrome (FraX) involves reduced FMRP protein levels. This study found FraX males have decreased FMRP, increased FXR1P, and unchanged FXR2P in leukocytes, alongside acetylation defects.
Area of Science:
- Genetics
- Molecular Biology
- Neuroscience
Background:
- Fragile X syndrome (FraX) is a leading genetic cause of intellectual disability.
- FraX results from an unstable expansion in the FMR1 gene, reducing Fragile X Mental Retardation Protein (FMRP) levels.
- FMRP is an RNA-binding protein crucial for neuronal development, localized in various cellular compartments.
Purpose of the Study:
- To investigate the levels of Fragile X Related Proteins (FXRPs) in leukocytes from males with FraX.
- To explore the molecular consequences of reduced FMRP, including protein synthesis defects and acetylation changes.
Main Methods:
- Immunoblotting was used to quantify FMRP, FXR1P, and FXR2P levels in leukocytes.
- Two-dimensional gel electrophoresis was employed to detect protein acetylation alterations.
- Proteomics and protein interaction methods were considered for identifying FMRP targets.
Main Results:
- Males with FraX exhibited a significant reduction in FMRP levels.
- A modest increase in FXR1P and no change in FXR2P levels were observed in FraX leukocytes.
- A defect in protein acetylation, particularly involving annexin-1, was identified in FraX leukocytes.
Conclusions:
- The study confirms a functionally uncompensated FMRP deficit as the core molecular phenotype of FraX.
- FXRP levels are altered in FraX, with implications for understanding the syndrome's molecular basis.
- Further research using brain-relevant tissues and advanced proteomics is recommended to elucidate FraX pathogenesis and therapeutic strategies.
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