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Isolation of mRNAs Associated with Yeast Mitochondria to Study Mechanisms of Localized Translation
Published on: March 14, 2014
Structural basis for the function of the Saccharomyces cerevisiae Gfd1 protein in mRNA nuclear export
Chao Zheng1, Milo B Fasken, Neil J Marshall
1MRC Laboratory of Molecular Biology, Hills Road, Cambridge CB2 0QH, United Kingdom.
Abstract:
Following transcription, mRNA is processed, packaged into messenger ribonucleoprotein (mRNP) particles, and transported through nuclear pores (NPCs) to the cytoplasm. At the NPC cytoplasmic face, Dbp5 mediates mRNP remodeling and mRNA export factor dissociation, releasing transcripts for translation. In Saccharomyces cerevisiae, the conserved poly(A) RNA-binding protein, Nab2, facilitates NPC targeting of transcripts and also modulates poly(A) tail length. Dbp5 removes Nab2 from mRNPs at the cytoplasmic face of the pore and, importantly, a Nab2 RNA-binding mutant suppresses the thermosensitive rat8-2 (dbp5) mutant. GFD1 is a multicopy suppressor of rat8-2 (dbp5), and Gfd1 interacts physically with both Dbp5 and the Nab2 N-terminal domain (Nab2-N). Here, we present a structural and functional analysis of the Gfd1/Nab2-N interaction. Crystallography, supported by solution NMR, shows that Gfd1 residues 126-150 form an alpha-helix when bound to Nab2-N. Engineered Nab2-N and Gfd1 mutants that inhibit this interaction in vitro were used to probe its function in vivo using the genetic interaction between GFD1 and NAB2. Although GFD1 is not essential for viability, its deletion severely impairs growth of rat8-2 (dbp5) cells. Moreover, although Gfd1 overexpression suppresses rat8-2 (dbp5), Gfd1 mutants that do not bind Nab2 only partially suppress rat8-2 (dbp5). Furthermore, rat8-2 (dbp5) cells that express nab2-Y34A, in which binding to Gfd1 is impaired, show a synthetic growth phenotype and nuclear accumulation of poly(A) RNA. These data support the importance of the Gfd1/Nab2 interaction for Dbp5 activity and provide further molecular details of the interactions that facilitate Dbp5-mediated mRNP remodeling in the terminal step of mRNA export.
Insights
The Gfd1/Nab2 interaction is crucial for Dbp5-mediated mRNA export. Disrupting this interaction impairs cell growth and causes poly(A) RNA accumulation, highlighting its role in mRNP remodeling.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Messenger ribonucleoprotein (mRNP) particles undergo processing and transport through nuclear pores (NPCs).
- Dbp5 at the NPC cytoplasmic face remodels mRNPs and dissociates export factors for translation.
- Nab2, a poly(A) RNA-binding protein, aids NPC targeting and poly(A) tail length modulation in yeast.
Purpose of the Study:
- To structurally and functionally analyze the interaction between Gfd1 and the Nab2 N-terminal domain (Nab2-N).
- To investigate the in vivo role of the Gfd1/Nab2 interaction in mRNA export and mRNP remodeling.
Main Methods:
- X-ray crystallography and solution Nuclear Magnetic Resonance (NMR) to determine the structure of the Gfd1/Nab2-N complex.
- In vitro biochemical assays using engineered Nab2-N and Gfd1 mutants to assess interaction disruption.
- In vivo genetic analysis in Saccharomyces cerevisiae, including viability, growth assays, and poly(A) RNA localization studies.
Main Results:
- Crystallography revealed that Gfd1 residues 126-150 form an alpha-helix upon binding to Nab2-N.
- Mutants disrupting the Gfd1/Nab2 interaction in vitro impaired growth of rat8-2 (dbp5) cells in vivo.
- Overexpression of Gfd1 suppressed the thermosensitive dbp5 mutation, but Gfd1 mutants unable to bind Nab2 showed only partial suppression.
- Cells with impaired Gfd1/Nab2 binding (nab2-Y34A) in a dbp5 background exhibited synthetic growth defects and nuclear poly(A) RNA accumulation.
Conclusions:
- The Gfd1/Nab2 interaction is essential for the activity of Dbp5 in mRNP remodeling.
- This interaction plays a critical role in the terminal step of mRNA export through nuclear pores.
- Structural and functional data provide molecular insights into the regulation of mRNA export machinery.
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