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Updated: Jan 21, 2026

An In Vitro Single-Molecule Imaging Assay for the Analysis of Cap-Dependent Translation Kinetics
Published on: September 15, 2020
Cap-independent mRNA translation is upregulated in long-lived endocrine mutant mice
Ulas Ozkurede1, Rishabh Kala1, Cameron Johnson2
1Department of Pathology, University of Michigan School of Medicine, Ann Arbor, Michigan, USA.
Abstract:
It has been hypothesized that transcriptional changes associated with lower mTORC1 activity in mice with reduced levels of growth hormone and insulin-like growth factor 1 are responsible for the longer healthy lifespan of these mutant mice. Cell lines and tissues from these mice show alterations in the levels of many proteins that cannot be explained by corresponding changes in mRNAs. Such post-transcriptional modulation may be the result of preferential mRNA translation by the cap-independent translation of mRNA bearing the N6-methyl-adenosine (m6A) modification. The long-lived endocrine mutants - Snell dwarf, growth hormone receptor deletion and pregnancy-associated plasma protein-A knockout - all show increases in the N6-adenosine-methyltransferases (METTL3/14) that catalyze 6-methylation of adenosine (m6A) in the 5' UTR region of select mRNAs. In addition, these mice have elevated levels of YTH domain-containing protein 1 (YTHDF1), which recognizes m6A and promotes translation by a cap-independent mechanism. Consistently, multiple proteins that can be translated by the cap-independent mechanism are found to increase in these mice, including DNA repair and mitochondrial stress response proteins, without changes in corresponding mRNA levels. Lastly, a drug that augments cap-independent translation by inhibition of cap-dependent pathways (4EGI-1) was found to elevate levels of the same set of proteins and able to render cells resistant to several forms of in vitro stress. Augmented translation by cap-independent pathways facilitated by m6A modifications may contribute to the stress resistance and increased healthy longevity of mice with diminished GH and IGF-1 signals.
Insights
Reduced growth hormone and IGF-1 signaling in mice extends lifespan by enhancing cap-independent mRNA translation. This process, mediated by m6A modifications, boosts protein levels for stress resistance and longevity.
Area of Science:
- Molecular Biology
- Genetics
- Aging Research
Background:
- Lower mTORC1 activity in mice with reduced growth hormone (GH) and insulin-like growth factor 1 (IGF-1) is linked to longer healthy lifespans.
- Protein level alterations in these mice are not fully explained by corresponding mRNA changes, suggesting post-transcriptional regulation.
Purpose of the Study:
- To investigate the role of N6-methyl-adenosine (m6A)-mediated cap-independent mRNA translation in the extended longevity of endocrine mutant mice.
- To explore how m6A modifications and associated proteins influence cellular stress resistance and healthy lifespan.
Main Methods:
- Analysis of mRNA and protein levels in long-lived endocrine mutant mice (Snell dwarf, GH receptor deletion, PAPP-A knockout).
- Assessed levels of m6A methyltransferases (METTL3/14) and m6A reader protein YTHDF1.
- Utilized a drug (4EGI-1) to inhibit cap-dependent translation and augment cap-independent pathways.
Main Results:
- Long-lived mutant mice exhibit increased METTL3/14 and YTHDF1, key players in m6A-mediated translation.
- Elevated levels of proteins involved in DNA repair and mitochondrial stress response were observed without corresponding mRNA increases.
- Inhibition of cap-dependent translation with 4EGI-1 mimicked these protein changes and conferred stress resistance.
Conclusions:
- m6A-modified mRNA cap-independent translation is a significant mechanism contributing to the stress resistance and extended healthy lifespan in mice with diminished GH and IGF-1 signaling.
- Augmented cap-independent translation may represent a therapeutic target for promoting longevity and healthspan.
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