mRNA decay mediated by two distinct AU-rich elements from c-fos and granulocyte-macrophage colony-stimulating factor

C Y Chen1, N Xu, A B Shyu

  • 1Department of Biochemistry and Molecular Biology, Medical School, University of Texas Houston Health Science Center 77030, USA.

Insights

AU-rich elements (AREs) control mRNA decay by directing poly(A) tail removal. Different AREs, like c-fos and GM-CSF AREs, initiate deadenylation via distinct mechanisms, impacting mRNA turnover rates.

Area of Science:

  • Molecular Biology
  • RNA Biology
  • Gene Regulation

Background:

  • Polyadenylation tail removal is a key step in mRNA decay.
  • AU-rich elements (AREs) in 3' untranslated regions regulate mRNA stability.
  • AREs are widespread RNA stability determinants in mammalian cells.

Purpose of the Study:

  • To investigate the distinct kinetics of deadenylation directed by two different AREs: c-fos ARE and GM-CSF ARE.
  • To determine if ARE-mediated mRNA decay is coupled to translation.
  • To explore the functional similarities and differences between these two AREs.

Main Methods:

  • Comparative analysis of poly(A) shortening rates for c-fos ARE and GM-CSF ARE containing mRNAs.
  • Inhibition of translation initiation to uncouple ARE function from ribosomes.
  • Blockade of ongoing transcription to probe ARE similarities and distinctions.

Main Results:

  • Both c-fos and GM-CSF AREs trigger rapid deadenylation as the initial mRNA degradation step.
  • c-fos ARE directs synchronous deadenylation, suggesting distributive RNase activity.
  • GM-CSF ARE directs asynchronous deadenylation, indicating processive RNase activity.
  • ARE-mediated decay can be uncoupled from translation.
  • The two AREs appear to be targets of distinct mRNA decay pathways.

Conclusions:

  • Different AREs can direct deadenylation through distinct mechanisms, either by modulating RNase processivity or recruiting different RNases.
  • ARE-mediated mRNA degradation involves pathways that can be independent of translation.
  • A model for ARE-mediated mRNA degradation is proposed, involving hnRNPs and ARE-binding proteins.

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