Transcript selection and the recruitment of mRNA decay factors for NMD in Saccharomyces cerevisiae
Abstract:
In Saccharomyces cerevisiae, nonsense-mediated mRNA decay (NMD) requires Upf1p, Upf2p, and Upf3p to accelerate the decay rate of two unique classes of transcripts: (1) nonsense mRNAs that arise through errors in gene expression, and (2) naturally occurring transcripts that lack coding errors but have built-in features that target them for accelerated decay (error-free mRNAs). NMD can trigger decay during any round of translation and can target Cbc-bound or eIF-4E-bound transcripts. Extremely low concentrations of the Upf proteins relative to the total pool of transcripts make it difficult to understand how nonsense transcripts are selectively recruited. To stimulate debate, we propose two alternative mechanisms for selecting nonsense transcripts for NMD and for assembling components of the surveillance complex, one for the first (pioneer) round of translation, called "nuclear marking," and the other for subsequent rounds, called "reverse assembly." The model is designed to accommodate (1) the low abundance of NMD factors, (2) the role of nucleocytoplasmic shuttling proteins in NMD, (3) the independent and nonobligate order of assembly of two different subcomplexes of NMD factors, and (4) the ability of NMD to simultaneously reduce or eliminate the synthesis of truncated proteins produced by nonsense transcripts while down-regulating but not completely eliminating functional proteins produced from error-free NMD-sensitive transcripts
Insights
Nonsense-mediated mRNA decay (NMD) in yeast selectively targets faulty transcripts. We propose two models, "nuclear marking" and "reverse assembly," to explain how NMD factors recruit these transcripts efficiently.
Area of Science:
- Molecular Biology
- Genetics
Background:
- Nonsense-mediated mRNA decay (NMD) is a crucial surveillance pathway in Saccharomyces cerevisiae.
- NMD regulates both aberrant nonsense mRNAs and naturally occurring error-free transcripts.
Discussion:
- The low abundance of NMD factors (Upf1p, Upf2p, Upf3p) poses a challenge for selective transcript recruitment.
- Two novel models, "nuclear marking" and "reverse assembly," are proposed to explain nonsense transcript selection and NMD complex assembly.
- These models address the roles of nucleocytoplasmic shuttling proteins and the non-obligate assembly order of NMD subcomplexes.
Key Insights:
- NMD can target transcripts during any translation round, affecting both nonsense and error-free mRNAs.
- The proposed models accommodate the low concentration of NMD factors and their assembly dynamics.
- NMD simultaneously regulates truncated protein synthesis and functional protein production from targeted transcripts.
Outlook:
- Further experimental validation is needed to distinguish between the proposed "nuclear marking" and "reverse assembly" models.
- Understanding NMD mechanisms can provide insights into gene expression regulation and disease.
- Investigating NMD in different organisms may reveal conserved and divergent regulatory strategies.
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