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Updated: Dec 5, 2025

Assessment of Selective mRNA Translation in Mammalian Cells by Polysome Profiling
Published on: October 28, 2014
WRN modulates translation by influencing nuclear mRNA export in HeLa cancer cells
Juan Manuel Iglesias-Pedraz1, Diego Matia Fossatti-Jara2,3, Valeria Valle-Riestra-Felice2
1Departamento de Investigación, Desarrollo e Innovación, Laboratorio de Genética Molecular y Bioquímica, Universidad Científica del Sur, Villa El Salvador, 15842, Lima, Peru. jmiglesi71@gmail.com.
Background:
The Werner syndrome protein (WRN) belongs to the RecQ family of helicases and its loss of function results in the premature aging disease Werner syndrome (WS). We previously demonstrated that an early cellular change induced by WRN depletion is a posttranscriptional decrease in the levels of enzymes involved in metabolic pathways that control macromolecular synthesis and protect from oxidative stress. This metabolic shift is tolerated by normal cells but causes mitochondria dysfunction and acute oxidative stress in rapidly growing cancer cells, thereby suppressing their proliferation.
Results:
To identify the mechanism underlying this metabolic shift, we examined global protein synthesis and mRNA nucleocytoplasmic distribution after WRN knockdown. We determined that WRN depletion in HeLa cells attenuates global protein synthesis without affecting the level of key components of the mRNA export machinery. We further observed that WRN depletion affects the nuclear export of mRNAs and demonstrated that WRN interacts with mRNA and the Nuclear RNA Export Factor 1 (NXF1).
Conclusions:
Our findings suggest that WRN influences the export of mRNAs from the nucleus through its interaction with the NXF1 export receptor thereby affecting cellular proteostasis. In summary, we identified a new partner and a novel function of WRN, which is especially important for the proliferation of cancer cells.
Insights
Werner syndrome protein (WRN) depletion impairs mRNA export, impacting protein synthesis and proteostasis. This WRN function is crucial for cancer cell proliferation, offering new therapeutic targets.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- Werner syndrome protein (WRN) is a RecQ helicase linked to premature aging.
- WRN depletion causes metabolic shifts, impairing macromolecular synthesis and increasing oxidative stress.
- These metabolic changes selectively harm rapidly proliferating cancer cells.
Purpose of the Study:
- To elucidate the mechanism behind WRN depletion-induced metabolic shifts.
- To investigate WRN's role in protein synthesis and mRNA transport.
Main Methods:
- WRN knockdown in HeLa cells.
- Analysis of global protein synthesis.
- Assessment of mRNA nucleocytoplasmic distribution.
- Co-immunoprecipitation to detect protein-RNA interactions.
Main Results:
- WRN depletion reduced global protein synthesis.
- Nuclear export of mRNA was impaired.
- WRN was found to interact with mRNA and the Nuclear RNA Export Factor 1 (NXF1).
Conclusions:
- WRN facilitates mRNA export by interacting with NXF1, influencing proteostasis.
- This novel WRN function is vital for cancer cell proliferation.
- WRN represents a potential therapeutic target for cancer treatment.
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