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Updated: Jun 28, 2026

Toeprinting Analysis of Translation Initiation Complex Formation on Mammalian mRNAs
Published on: May 10, 2018
Identifying intrinsic and extrinsic determinants that regulate internal initiation of translation mediated by the
Tara Dobson1, Erika Kube, Stephanie Timmerman
1Department of Biochemistry and Molecular Genetics, University of Colorado Denver School of Medicine, Aurora, CO 80045, USA. tara.dobson@uchsc.edu
Background:
Regulating synthesis of the Fragile X gene (FMR1) product, FMRP alters neural plasticity potentially through its role in the microRNA pathway. Cap-dependent translation of the FMR1 mRNA, a process requiring ribosomal scanning through the 5' leader, is likely impeded by the extensive secondary structure generated by the high guanosine/cytosine nucleotide content including the CGG triplet nucleotide repeats in the 5' leader. An alternative mechanism to initiate translation - internal initiation often utilizes secondary structure to recruit the translational machinery. Consequently, studies were undertaken to confirm and extend a previous observation that the FMR1 5' leader contains an internal ribosomal entry site (IRES).
Results:
Cellular transfection of a dicistronic DNA construct containing the FMR1 5' leader inserted into the intercistronic region yielded significant translation of the second cistron, but the FMR1 5' leader was also found to contain a cryptic promoter possibly confounding interpretation of these results. However, transfection of dicistronic and monocistronic RNA ex vivo or in vitro confirmed that the FMR1 5' leader contains an IRES. Moreover, inhibiting cap-dependent translation ex vivo did not affect the expression level of endogenous FMRP indicating a role for IRES-dependent translation of FMR1 mRNA. Analysis of the FMR1 5' leader revealed that the CGG repeats and the 5' end of the leader were vital for internal initiation. Functionally, exposure to potassium chloride or intracellular acidification and addition of polyinosinic:polycytidylic acid as mimics of neural activity and double stranded RNA, respectively, differentially affected FMR1 IRES activity.
Conclusion:
Our results indicate that multiple stimuli influence IRES-dependent translation of the FMR1 mRNA and suggest a functional role for the CGG nucleotide repeats.
Insights
The Fragile X gene (FMR1) 5' leader contains an internal ribosomal entry site (IRES) that drives translation. CGG repeats within the FMR1 leader are crucial for this IRES activity, suggesting a functional role in Fragile X syndrome.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Fragile X gene (FMR1) product, FMRP, regulates neural plasticity.
- FMR1 mRNA translation is typically cap-dependent but may be hindered by its 5' leader secondary structure.
- Internal initiation, utilizing secondary structures, is an alternative translation mechanism.
Purpose of the Study:
- To confirm and investigate the presence of an internal ribosomal entry site (IRES) in the FMR1 5' leader.
- To understand the role of the FMR1 5' leader in translation initiation.
- To explore the functional significance of the CGG repeats within the FMR1 5' leader.
Main Methods:
- Transfection of dicistronic and monocistronic DNA/RNA constructs.
- Ex vivo and in vitro assays to assess translation.
- Inhibition of cap-dependent translation.
- Analysis of FMR1 5' leader sequences, including CGG repeats.
- Stimulation of IRES activity using mimics of neural activity and double-stranded RNA.
Main Results:
- The FMR1 5' leader was confirmed to contain a functional IRES, supporting internal initiation of translation.
- Inhibition of cap-dependent translation did not affect endogenous FMRP levels, highlighting IRES-dependent translation.
- The CGG repeats and the 5' end of the FMR1 leader were essential for IRES activity.
- Neural activity mimics and double-stranded RNA differentially modulated FMR1 IRES activity.
Conclusions:
- The FMR1 mRNA utilizes IRES-dependent translation, influenced by various stimuli.
- The CGG nucleotide repeats within the FMR1 5' leader play a functional role in translation regulation.
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