New insights into Fragile X syndrome. Relating genotype to phenotype at the molecular level
Irina Pozdnyakova1, Lynne Regan
1Department of Molecular Biophysics and Biochemistry, Yale University, New Haven, CT 06520-8114, USA.
Abstract:
Lack of functional Fragile X mental retardation protein (FMRP) is the primary cause of the Fragile-mental retardation syndrome in humans. In most cases, the disease results from transcriptional silencing of fragile mental retardation gene 1, fmr1, which encodes FMRP. However, a single missense mutation (I304N) in the second KH domain of FMRP gives rise to a particularly severe case of Fragile X syndrome. A Drosophila homolog of FMRP has been identified, Drosophila Fragile X related protein (dFXRP). The corresponding missense mutation in dFXRP, the I307N, has pronounced effects on the in vivo activity of the protein. The effect of the point mutation on the structure and function of FMRP is unclear, and published data are contradictory. No in vitro structural or stability studies have been performed on dFXRP. Here we show that a construct that contains only the tandem KH1-KH2 domains is a stable, well-folded unit suitable for detailed structural and functional characterization. Using this KH1-KH2 construct we explicitly test a hypothesis that has been proposed to explain the effect of the Ile-->Asn mutation: that it causes complete unfolding of the protein. Here we show that the I307N point mutation does not completely unfold the KH domain. The KH1-KH2 construct bearing I307N substitution is stable in isolation and adopts a native-like fold. Thus our data favor alternative explanations for the in vivo observed loss of dFXRP activity associated with I307N mutation: (a) the point mutation might affect intra and/or inter-molecular interactions of dFXRP; or (b) it might impair dFXRP's interactions with its RNA target(s).
Insights
A specific mutation in Fragile X mental retardation protein (FMRP) does not cause unfolding, suggesting alternative mechanisms for Fragile X syndrome severity. This finding impacts understanding of FMRP protein function and disease pathology.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Fragile X mental retardation syndrome (FXS) is caused by a lack of functional Fragile X mental retardation protein (FMRP).
- A specific missense mutation (I304N) in FMRP leads to a severe form of FXS.
- The Drosophila homolog, dFXRP, and its corresponding I307N mutation exhibit significant in vivo effects, but structural impacts remain unclear.
Purpose of the Study:
- To investigate the structural and stability effects of the I307N missense mutation in the KH1-KH2 domains of Drosophila Fragile X related protein (dFXRP).
- To test the hypothesis that the I307N mutation causes complete unfolding of the protein.
Main Methods:
- Created a stable, well-folded construct of the tandem KH1-KH2 domains of dFXRP.
- Utilized this construct to perform in vitro structural and stability studies on the wild-type and I307N mutant proteins.
Main Results:
- The KH1-KH2 domain construct is stable and well-folded.
- The I307N point mutation does not lead to complete unfolding of the dFXRP KH domain.
- The mutant KH1-KH2 construct maintains a native-like fold.
Conclusions:
- The I307N mutation's severe in vivo effects are not due to complete protein unfolding.
- Alternative mechanisms, such as altered intra/inter-molecular interactions or impaired RNA binding, likely explain the loss of dFXRP activity.
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