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Laser Microirradiation to Study In Vivo Cellular Responses to Simple and Complex DNA Damage
Published on: January 31, 2018
p38 MAPK/MK2-mediated induction of miR-34c following DNA damage prevents Myc-dependent DNA replication
Ian G Cannell1, Yi W Kong, Samantha J Johnston
1Center for Biomolecular Sciences, School of Pharmacy, University of Nottingham, University Park, Nottingham, NG7 2RD, UK.
Abstract:
The DNA damage response activates several pathways that stall the cell cycle and allow DNA repair. These consist of the well-characterized ATR (Ataxia telangiectasia and Rad-3 related)/CHK1 and ATM (Ataxia telangiectasia mutated)/CHK2 pathways in addition to a newly identified ATM/ATR/p38MAPK/MK2 checkpoint. Crucial to maintaining the integrity of the genome is the S-phase checkpoint that functions to prevent DNA replication until damaged DNA is repaired. Inappropriate expression of the proto-oncogene c-Myc is known to cause DNA damage. One mechanism by which c-Myc induces DNA damage is through binding directly to components of the prereplicative complex thereby promoting DNA synthesis, resulting in replication-associated DNA damage and checkpoint activation due to inappropriate origin firing. Here we show that following etoposide-induced DNA damage translation of c-Myc is repressed by miR-34c via a highly conserved target-site within the 3(') UTR. While miR-34c is induced by p53 following DNA damage, we show that in cells lacking p53 this is achieved by an alternative pathway which involves p38 MAPK signalling to MK2. The data presented here suggest that a major physiological target of miR-34c is c-Myc. Inhibition of miR-34c activity prevents S-phase arrest in response to DNA damage leading to increased DNA synthesis, DNA damage, and checkpoint activation in addition to that induced by etoposide alone, which are all reversed by subsequent c-Myc depletion. These data demonstrate that miR-34c is a critical regulator of the c-Myc expression following DNA damage acting downstream of p38 MAPK/MK2 and suggest that miR-34c serves to remove c-Myc to prevent inappropriate replication which may otherwise lead to genomic instability.
Insights
MicroRNA-34c (miR-34c) represses c-Myc translation after DNA damage, preventing replication errors. This pathway, involving p38 MAPK/MK2, is crucial for maintaining genomic stability by controlling c-Myc levels.
Area of Science:
- Molecular Biology
- Cell Cycle Regulation
- Genomics
Background:
- The DNA damage response (DDR) involves cell cycle checkpoints to allow DNA repair.
- Key DDR pathways include ATM/CHK2 and ATR/CHK1, alongside a novel ATM/ATR/p38MAPK/MK2 pathway.
- The S-phase checkpoint is vital for genome integrity, preventing replication on damaged DNA.
Purpose of the Study:
- To investigate the role of microRNA-34c (miR-34c) in regulating c-Myc expression following DNA damage.
- To elucidate the signaling pathway involved in miR-34c induction in the absence of p53.
- To determine the impact of miR-34c inhibition on S-phase arrest and genomic stability.
Main Methods:
- Etoposide treatment to induce DNA damage.
- Analysis of c-Myc translation repression by miR-34c.
- Investigation of p53-dependent and independent miR-34c induction pathways.
- Assessment of S-phase arrest and DNA damage upon miR-34c inhibition and c-Myc depletion.
Main Results:
- miR-34c represses c-Myc translation via its 3' UTR following etoposide-induced DNA damage.
- miR-34c is induced by p53, but also by p38 MAPK/MK2 signaling in p53-deficient cells.
- Inhibition of miR-34c leads to increased DNA synthesis and damage, causing S-phase arrest.
- Depletion of c-Myc reverses the effects of miR-34c inhibition, highlighting c-Myc as a key target.
Conclusions:
- miR-34c is a critical regulator of c-Myc expression post-DNA damage, acting downstream of p38 MAPK/MK2.
- miR-34c functions to limit c-Myc-driven inappropriate replication, thereby preventing genomic instability.
- The miR-34c/c-Myc axis represents a significant checkpoint mechanism in response to DNA damage.
Related Concept Videos
DNA Damage can Stall the Cell Cycle
DNA Damage Can Stall the Cell Cycle
Abnormal Proliferation
Negative Regulator Molecules
MAPK Signaling Cascades
Mitogens and the Cell Cycle

