Related Experiment Video
Updated: Apr 1, 2026

Rapid In Vivo Fixation and Isolation of Translational Complexes from Eukaryotic Cells
Published on: December 25, 2021
Dynamic m(6)A mRNA methylation directs translational control of heat shock response
Jun Zhou1, Ji Wan1, Xiangwei Gao1
1Division of Nutritional Sciences, Cornell University, Ithaca, New York 14853, USA.
Abstract:
The most abundant mRNA post-transcriptional modification is N(6)-methyladenosine (m(6)A), which has broad roles in RNA biology. In mammalian cells, the asymmetric distribution of m(6)A along mRNAs results in relatively less methylation in the 5' untranslated region (5'UTR) compared to other regions. However, whether and how 5'UTR methylation is regulated is poorly understood. Despite the crucial role of the 5'UTR in translation initiation, very little is known about whether m(6)A modification influences mRNA translation. Here we show that in response to heat shock stress, certain adenosines within the 5'UTR of newly transcribed mRNAs are preferentially methylated. We find that the dynamic 5'UTR methylation is a result of stress-induced nuclear localization of YTHDF2, a well-characterized m(6)A 'reader'. Upon heat shock stress, the nuclear YTHDF2 preserves 5'UTR methylation of stress-induced transcripts by limiting the m(6)A 'eraser' FTO from demethylation. Remarkably, the increased 5'UTR methylation in the form of m(6)A promotes cap-independent translation initiation, providing a mechanism for selective mRNA translation under heat shock stress. Using Hsp70 mRNA as an example, we demonstrate that a single m(6)A modification site in the 5'UTR enables translation initiation independent of the 5' end N(7)-methylguanosine cap. The elucidation of the dynamic features of 5'UTR methylation and its critical role in cap-independent translation not only expands the breadth of physiological roles of m(6)A, but also uncovers a previously unappreciated translational control mechanism in heat shock response.
Insights
Heat shock stress triggers N(6)-methyladenosine (m(6)A) modification in mRNA 5' untranslated regions (5'UTRs). This dynamic methylation promotes cap-independent translation, enhancing stress response.
Area of Science:
- Molecular Biology
- RNA Biology
- Gene Expression Regulation
Background:
- N(6)-methyladenosine (m(6)A) is a prevalent mRNA modification with diverse roles.
- m(6)A is asymmetrically distributed in mammalian mRNAs, with less methylation in the 5' untranslated region (5'UTR).
- Regulation and function of 5'UTR m(6)A, particularly in translation initiation, remain poorly understood.
Purpose of the Study:
- To investigate the regulation and function of 5'UTR m(6)A modification under stress conditions.
- To determine the role of m(6)A in mRNA translation initiation during heat shock.
- To elucidate the mechanism of selective mRNA translation under stress.
Main Methods:
- Analysis of mRNA methylation patterns in response to heat shock.
- Investigating the localization and function of m(6)A-binding proteins (YTHDF2) and demethylases (FTO).
- Assessing the impact of 5'UTR m(6)A on translation initiation using reporter assays and specific mRNA examples (Hsp70).
Main Results:
- Heat shock stress induces preferential m(6)A methylation in the 5'UTRs of newly transcribed mRNAs.
- Stress-induced nuclear localization of YTHDF2 preserves 5'UTR methylation by inhibiting FTO demethylation.
- Increased 5'UTR m(6)A promotes cap-independent translation initiation, exemplified by Hsp70 mRNA.
Conclusions:
- Dynamic regulation of 5'UTR m(6)A is crucial for cellular stress response.
- m(6)A in the 5'UTR provides a mechanism for cap-independent translation initiation under heat shock.
- This study reveals a novel translational control pathway in heat shock response mediated by m(6)A.
Related Concept Videos
Regulation of Expression at Multiple Steps
Translational Regulation
RNA Stability
RNA Stability
Regulation of Expression Occurs at Multiple Steps
Transcription results in the generation of precursor (pre-mRNA) that consists of both exons and introns, which needs further processing before being translated to a...
Master Transcription Regulators

