A MutSβ-Dependent Contribution of MutSα to Repeat Expansions in Fragile X Premutation Mice?
Xiao-Nan Zhao1, Rachel Lokanga1,2, Kimaada Allette1
1Section on Gene Structure and Disease, Laboratory of Cell and Molecular Biology, National Institute of Diabetes, Digestive and Kidney Diseases, National Institutes of Health, Bethesda, Maryland, United States of America.
Abstract:
The fragile X-related disorders result from expansion of a CGG/CCG microsatellite in the 5' UTR of the FMR1 gene. We have previously demonstrated that the MSH2/MSH3 complex, MutSβ, that is important for mismatch repair, is essential for almost all expansions in a mouse model of these disorders. Here we show that the MSH2/MSH6 complex, MutSα also contributes to the production of both germ line and somatic expansions as evidenced by the reduction in the number of expansions observed in Msh6-/- mice. This effect is not mediated via an indirect effect of the loss of MSH6 on the level of MSH3. However, since MutSβ is required for 98% of germ line expansions and almost all somatic ones, MutSα is apparently not able to efficiently substitute for MutSβ in the expansion process. Using purified human proteins we demonstrate that MutSα, like MutSβ, binds to substrates with loop-outs of the repeats and increases the thermal stability of the structures that they form. We also show that MutSα facilitates binding of MutSβ to these loop-outs. These data suggest possible models for the contribution of MutSα to repeat expansion. In addition, we show that unlike MutSβ, MutSα may also act to protect against repeat contractions in the Fmr1 gene.
Insights
The MSH2/MSH6 complex (MutSα) contributes to fragile X-related disorders by promoting FMR1 gene expansions. MutSα also appears to prevent repeat contractions, unlike the MutSβ complex.
Area of Science:
- Genetics
- Molecular Biology
Background:
- Fragile X-related disorders stem from CGG/CCG microsatellite expansions in the FMR1 gene's 5' UTR.
- The MSH2/MSH3 complex (MutSβ) is crucial for these expansions in mouse models.
Purpose of the Study:
- To investigate the role of the MSH2/MSH6 complex (MutSα) in FMR1 gene repeat expansions.
- To elucidate the mechanisms by which MutSα influences repeat dynamics.
Main Methods:
- Analysis of repeat expansions in Msh6-/- mice.
- Biochemical assays using purified human MutSα and MutSβ proteins.
- Assessment of protein binding to microsatellite substrates with loop-out structures.
Main Results:
- Msh6-/- mice exhibited a reduced number of germ line and somatic expansions, indicating MutSα's contribution.
- MutSα binds to loop-out structures and enhances their thermal stability, similar to MutSβ.
- MutSα facilitates MutSβ binding to these structures.
- MutSα may protect against FMR1 repeat contractions.
Conclusions:
- MutSα plays a role in FMR1 repeat expansions, though less efficiently than MutSβ.
- MutSα's function involves binding to and stabilizing repeat loop-outs, potentially aiding MutSβ.
- MutSα has a distinct role in preventing repeat contractions.
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