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Updated: Jan 1, 2026

Visualization of DNA Repair Proteins Interaction by Immunofluorescence
Published on: June 26, 2020
Cellular cytokine receptor signaling and ATM pathway intersections affect hepatic DNA repair
Priya Gupta1, Yogeshwar Sharma1, Preeti Viswanathan2
1Department of Medicine, Albert Einstein College of Medicine, 1300 Morris Park Avenue, Bronx 10461, NY, USA.
Abstract:
Pathways involving ataxia telangiectasia mutated (ATM) gene and its downstream partners and effectors are critical for the DNA damage response. Cell survival, proliferation and tissue homeostasis are dependent upon preservation of DNA integrity but additional intracellular mechanisms contribute in these processes. As receptor-mediated signaling with beneficial intersections in ATM pathways could have therapeutic significance, we interrogated such intersections with assays using HuH-7 cells (hepatocytes). These cells were subjected to acetaminophen toxicity, which is a leading cause of hepatic injury and acute liver failure in people. The ATM pathway was examined in HuH-7-ATM-Prom-tdT cells containing fluorescent td-Tomato transgene reporter for ATM promoter activity. Titrated doses of specific growth factors were used as ligands for receptor-mediated signaling. The contribution of JAK/STAT3 signaling was defined by the loss-of-function approach with the JAK antagonist, ruxolitinib. In these assays, impairment in ATM-related DNA damage response following acetaminophen toxicity was ameliorated by selected growth factors, including fibroblast growth factors, granulocyte colony stimulating factor and vascular endothelial growth factor. The JAK/STAT3 signaling was exclusive to granulocyte colony stimulating factor but concerned additional pathways in cases of other growth factors. Antagonism of JAK/STAT3 by ruxolitinib abrogated benefits in ATM pathway-mediated DNA repair; and identification of the ruxolitinib-sensitive component of cytoprotection allowed separations of these pathway intersections. Therefore, this subtractive approach for ATM and other regulators in pathways will be informative for DNA damage response. These mechanisms will benefit therapeutic development for ATM-related tissue and organ injuries.
Insights
Growth factors can protect liver cells from acetaminophen damage by enhancing DNA repair pathways. Targeting these interactions, including JAK/STAT3 signaling, may offer new therapies for liver injury and organ damage.
Area of Science:
- Molecular Biology
- Cell Biology
- Hepatology
Background:
- The ataxia telangiectasia mutated (ATM) gene is crucial for DNA damage response, impacting cell survival and tissue homeostasis.
- Acetaminophen toxicity is a major cause of liver injury and acute liver failure.
- Receptor-mediated signaling pathways intersecting with ATM may hold therapeutic potential for liver diseases.
Purpose of the Study:
- To investigate intersections between receptor-mediated signaling and ATM pathways in hepatocytes under acetaminophen-induced stress.
- To determine the role of JAK/STAT3 signaling in mediating the protective effects of growth factors on DNA damage response.
Main Methods:
- Utilized HuH-7 cells with an ATM promoter-tdT reporter to monitor ATM activity.
- Exposed cells to acetaminophen toxicity and varying doses of growth factors (e.g., FGF, G-CSF, VEGF).
- Employed a loss-of-function approach using JAK antagonist ruxolitinib to assess JAK/STAT3 pathway involvement.
Main Results:
- Selected growth factors (FGF, G-CSF, VEGF) ameliorated impaired ATM-related DNA damage response caused by acetaminophen.
- JAK/STAT3 signaling was specifically linked to G-CSF but involved other pathways for different growth factors.
- Ruxolitinib blocked the protective effects, highlighting the critical role of JAK/STAT3 in growth factor-mediated cytoprotection and ATM pathway repair.
Conclusions:
- Growth factor-mediated protection against acetaminophen-induced liver injury involves enhancing ATM pathway DNA repair.
- JAK/STAT3 signaling is a key mediator, though not exclusively, in these protective mechanisms.
- This research provides insights into therapeutic strategies for ATM-related tissue and organ injuries, particularly in the liver.
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