SPT5 affects the rate of mRNA degradation and physically interacts with CCR4 but does not control mRNA deadenylation

Yajun Cui1, Yueh-Chin Chiang1, Palaniswamy Viswanathan1

  • 1Department of Molecular, Cellular, and Biomedical Sciences, University of New Hampshire, Durham, NH, USA.

American Journal of Molecular Biology
|March 13, 2023
PubMed

Insights

SPT5 and SPT4 proteins interact with the CCR4-NOT complex, affecting mRNA degradation. However, they do not influence CCR4

Area of Science:

  • Molecular Biology
  • Gene Regulation
  • mRNA Metabolism

Background:

  • The CCR4-NOT complex is crucial for mRNA metabolism, primarily deadenylation and degradation.
  • SPT5 is known for its role in transcriptional elongation and has a potential interaction with CCR4.

Purpose of the Study:

  • To investigate the physical association between SPT5 and the CCR4-NOT complex.
  • To determine the functional implications of SPT5/SPT4 interactions with CCR4-NOT in mRNA turnover.

Main Methods:

  • Yeast two-hybrid screening using the CCR4 deadenylase domain.
  • Immunoprecipitation assays with SPT5.
  • In vitro binding assays with purified SPT5, CAF1, and CCR4.
  • Analysis of mRNA degradation rates in yeast mutants (SPT5, SPT4, CCR4, CAF1).

Main Results:

  • SPT5 was identified as a protein interacting with the CCR4 deadenylase domain.
  • SPT5 physically associates with CCR4 and CAF1 in vivo and in vitro.
  • Mutations in SPT5 or SPT4 slowed mRNA degradation but did not affect deadenylation, decapping, or 5'-3' degradation.
  • SPT5/SPT4 defects had minimal impact on the CCR4 complex's primary deadenylation function.

Conclusions:

  • SPT5 and SPT4 interact with the CCR4-NOT complex, influencing mRNA degradation.
  • These interactions likely involve nuclear events rather than CCR4's cytoplasmic deadenylation role.
  • The findings suggest a complex interplay between transcription and mRNA decay machinery.

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