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Updated: May 24, 2025

Measurements of Physiological Stress Responses in C. Elegans
Published on: May 21, 2020
Cleavage site heterogeneity at the pre-mRNA 3'-untranslated region regulates gene expression in oxidative stress
Feba Shaji1, Jamshaid Ali2, Rakesh S Laishram2
1Rajiv Gandhi Centre for Biotechnology, Cardiovascular Biology Group, Trivandrum, 695014, India; Regional Centre for Biotechnology, Faridabad, Haryana, 121001, India.
Abstract:
The endonucleolytic cleavage step of the eukaryotic mRNA 3'-end processing is considered imprecise, which leads to heterogeneity of cleavage site (CS) with hitherto unknown function. Contrary to popular belief, we show that this imprecision in the cleavage is tightly regulated, resulting in the CS heterogeneity (CSH) that controls gene expression in antioxidant response. CSH centres around a primary CS, followed by several subsidiary cleavages determined by CS's positions. Globally and using reporter antioxidant mRNA, we discovered an inverse relationship between the number of CS and the gene expression, with the primary CS exhibiting the highest cleavage efficiency. Strikingly, reducing CSH and increasing primary CS usage induces gene expression. Under oxidative stress (we employ three conditions that induce antioxidant response, tBHQ, H2O2, and NaAsO2) conditions, there is a decrease in the CSH and an increase in the primary CS usage to induce antioxidant gene expression. Key oxidative stress response genes (NQO1, HMOX1, PRDX1, and CAT) also show higher CSH compared to the non-stress response genes and that the number of CSs are reduced to impart cellular response to oxidative stresses. Concomitantly, ectopic expression of one of the key antioxidant response gene (NQO1) driven by the primary CS but not from other subsidiary CSs, or reduction in CSH imparts tolerance to cellular oxidative stresses (H2O2, and NaAsO2). Genome-wide CS analysis of stress response genes also shows a similar result. Compromised CSH or CSH-mediated gene control hampers cellular response to oxidative stress. We establish that oxidative stress induces affinity/strength of cleavage complex assembly, increasing the fidelity of cleavage at the primary CS, thereby reducing CSH inducing antioxidant response. Together, our study reports a novel cleavage imprecision- or CSH-mediated anti-oxidant response mechanism that is distinct and operates downstream but in concert with the transcriptional pathway of oxidative stress induction.
Insights
Cleavage site heterogeneity (CSH) in mRNA processing is regulated to control antioxidant gene expression. Oxidative stress reduces CSH, enhancing primary cleavage and boosting antioxidant response for cellular protection.
Area of Science:
- Molecular Biology
- Gene Regulation
- Biochemistry
Background:
- Eukaryotic mRNA 3'-end processing involves endonucleolytic cleavage, often considered imprecise, leading to cleavage site heterogeneity (CSH).
- The functional significance of CSH in gene expression, particularly in response to cellular stress, remains largely unexplored.
Purpose of the Study:
- To investigate the regulatory role of CSH in gene expression during the antioxidant response.
- To elucidate the mechanism by which CSH influences cellular tolerance to oxidative stress.
Main Methods:
- Utilized reporter antioxidant mRNA systems to analyze CSH and gene expression under various oxidative stress conditions (tBHQ, H2O2, NaAsO2).
- Performed genome-wide cleavage site analysis on stress response genes.
- Assessed cellular tolerance to oxidative stress following manipulation of CSH and primary cleavage site usage.
Main Results:
- Demonstrated that CSH is tightly regulated and inversely correlates with gene expression levels, with the primary cleavage site showing highest efficiency.
- Observed a decrease in CSH and increased primary cleavage site usage under oxidative stress, leading to enhanced antioxidant gene expression.
- Found that key oxidative stress response genes exhibit higher CSH than non-stress genes, and reducing CSH confers cellular tolerance to oxidative stress.
Conclusions:
- CSH is a novel regulatory mechanism controlling gene expression in response to oxidative stress.
- Oxidative stress enhances cleavage complex assembly, increasing fidelity at the primary cleavage site and reducing CSH to induce antioxidant response.
- This CSH-mediated pathway operates downstream of transcriptional regulation, working in concert to manage cellular oxidative stress.
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