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Retinitis Pigmentosa Mutations in Bad Response to Refrigeration 2 (Brr2) Impair ATPase and Helicase Activity
Sarah Ledoux1, Christine Guthrie2
1From the Department of Biochemistry and Biophysics, University of California, San Francisco, California 94158.
Abstract:
Brr2 is an RNA-dependent ATPase required to unwind the U4/U6 snRNA duplex during spliceosome assembly. Mutations within the ratchet helix of the Brr2 RNA binding channel result in a form of degenerative human blindness known as retinitis pigmentosa (RP). The biochemical consequences of these mutations on Brr2's RNA binding, helicase, and ATPase activity have not yet been characterized. Therefore, we identified the largest construct of Brr2 that is soluble in vitro, which truncates the first 247 amino acids of the N terminus (Δ247-Brr2), to characterize the effects of the RP mutations on Brr2 activity. The Δ247-Brr2 RP mutants exhibit a gradient of severity of weakened RNA binding, reduced helicase activity, and reduced ATPase activity compared with wild type Δ247-Brr2. The globular C-terminal Jab1/Mpn1-like domain of Prp8 increases the ability of Δ247-Brr2 to bind the U4/U6 snRNA duplex at high pH and increases Δ247-Brr2's RNA-dependent ATPase activity and the extent of RNA unwinding. However, this domain of Prp8 does not differentially affect the Δ247-Brr2 RP mutants compared with the wild type Δ247-Brr2. When stimulated by Prp8, wild type Δ247-Brr2 is able to unwind long stable duplexes in vitro, and even the RP mutants capable of binding RNA with tight affinity are incapable of fully unwinding short duplex RNAs. Our data suggest that the RP mutations within the ratchet helix impair Brr2 translocation through RNA helices.
Insights
Mutations in the Brr2 protein, linked to retinitis pigmentosa (RP), weaken its RNA binding and unwinding activities. These defects impair spliceosome assembly, suggesting a mechanism for RP disease progression.
Area of Science:
- Molecular Biology
- Biochemistry
- Genetics
Background:
- Brr2 is an essential RNA-dependent ATPase for spliceosome assembly.
- Mutations in Brr2's ratchet helix cause retinitis pigmentosa (RP), a degenerative eye disease.
- The biochemical impact of RP mutations on Brr2 function remains uncharacterized.
Purpose of the Study:
- To biochemically characterize the effects of RP mutations on Brr2's RNA binding, helicase, and ATPase activities.
- To investigate the role of the Prp8 protein in modulating Brr2 activity.
Main Methods:
- Purification of a soluble Brr2 construct (Δ247-Brr2).
- Biochemical assays measuring RNA binding, helicase, and ATPase activity of wild-type and mutant Brr2.
- In vitro RNA unwinding assays.
Main Results:
- RP mutants of Δ247-Brr2 showed progressively reduced RNA binding, helicase, and ATPase activities.
- The Prp8 protein enhanced wild-type Δ247-Brr2's RNA binding, ATPase activity, and unwinding.
- Prp8 did not differentially affect the mutant Brr2 proteins compared to wild-type.
- RP mutants were incapable of fully unwinding short duplex RNAs, even with Prp8 stimulation.
Conclusions:
- RP mutations in the Brr2 ratchet helix impair its RNA translocation ability.
- These defects in spliceosome assembly likely contribute to the pathogenesis of retinitis pigmentosa.
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