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Updated: May 5, 2026

Visualization of DNA Repair Proteins Interaction by Immunofluorescence
Published on: June 26, 2020
Interaction of NDRG1 and MRE11 Modulates DNA Replication and Repair
Hanna M Doh1,2,3, Nina Kozlova1,2,4, Zhipeng A Wang4,5,6
1Department of Medicine, Beth Israel Deaconess Medical Center, Boston, MA 02215, USA.
Abstract:
Background/Objectives: Pancreatic ductal adenocarcinoma (PDAC) is a lethal disease with limited treatment options. Patients are treated with DNA damaging chemotherapies which act by inducing DNA damage in rapidly dividing tumor cells. Unfortunately, these tumors frequently develop treatment resistance, underscoring the need to understand resistance mechanisms in order to develop better treatment strategies. DNA damage response (DDR) detects and repairs DNA damage, and the DDR pathway has been shown to contribute to chemoresistance. Another factor known to drive chemoresistance in PDAC is the dense stroma, composed of extracellular matrix proteins secreted by cancer-associated fibroblasts (CAFs). Our recent work identified a CAF-induced resistance mechanism involving N-myc downstream regulated gene 1 (NDRG1). CAF-induced signaling resulted in the phosphorylation of NDRG1 and NDRG1-dependent DNA repair and protection from chemotherapies. Loss of NDRG1 resulted in increased chemotherapy-induced DNA damage and decreased replication fork speed and recovery. Methods: To gain insight into the molecular mechanism of NDRG1-mediated DNA repair and replication, we performed a BioID screen to identify binding partners of NDRG1. We further assessed the mechanistic roles of the identified interaction partners on DNA repair using DNA replication and repair assays such as the Comet assay and DNA fiber assays. Results: Our BioID screen identified meiotic recombination 11 (MRE11) protein, a nuclease involved in DDR, as a putative NDRG1 interacting protein. Interaction between MRE11 and NDRG1 was enriched during the late S/early G2 cell cycle phases and under replication stress. However, this interaction is likely indirect as the interaction only occurred in a cellular context and not with in vitro purified proteins. Blocking NDRG1 phosphorylation or blocking MRE11 exonuclease activity both resulted in protection of newly synthesized DNA at stalled replication forks. In NDRG1 knockout cells, blocking MRE11 led to decreased protection of nascent DNA, suggesting that NDRG1 and MRE11 may be acting in the same pathway and that NDRG1 is required for MRE11's activity at stalled forks. Conclusions: In summary, our work has uncovered a protein complex between NDRG1 and MRE11 that may play a key role in chemoresistance due to its role in the processing of stalled replication forks.
Insights
Pancreatic cancer cells develop chemoresistance through a mechanism involving N-myc downstream regulated gene 1 (NDRG1) and meiotic recombination 11 (MRE11). This protein complex protects stalled replication forks, contributing to treatment failure in pancreatic ductal adenocarcinoma (PDAC).
Area of Science:
- Molecular biology
- Cancer research
- DNA damage and repair
Background:
- Pancreatic ductal adenocarcinoma (PDAC) exhibits limited treatment options and frequent chemoresistance.
- Cancer-associated fibroblasts (CAFs) contribute to PDAC chemoresistance via mechanisms like N-myc downstream regulated gene 1 (NDRG1) signaling.
- NDRG1, when phosphorylated by CAF-induced signaling, promotes DNA repair and protects PDAC cells from chemotherapy.
Purpose of the Study:
- To elucidate the molecular mechanisms underlying NDRG1-mediated DNA repair and replication.
- To identify NDRG1 binding partners involved in chemoresistance.
- To investigate the role of identified partners in DNA repair and replication fork stability.
Main Methods:
- Utilized BioID proximity labeling to identify NDRG1 interacting proteins.
- Conducted DNA replication and repair assays, including Comet and DNA fiber assays.
- Assessed the functional impact of NDRG1 and identified partner interactions on DNA integrity under replication stress.
Main Results:
- Identified meiotic recombination 11 (MRE11), a DNA damage response nuclease, as a NDRG1 interacting protein.
- Observed NDRG1-MRE11 interaction enrichment during late S/early G2 phases and under replication stress, suggesting an indirect interaction.
- Demonstrated that blocking NDRG1 phosphorylation or MRE11 exonuclease activity protects nascent DNA at stalled replication forks; NDRG1 is required for MRE11 activity in this context.
Conclusions:
- Uncovered a novel protein complex between NDRG1 and MRE11.
- This NDRG1-MRE11 complex plays a critical role in processing stalled replication forks.
- The complex represents a potential therapeutic target for overcoming chemoresistance in PDAC.
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