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Preparation of Peripheral Blood Mononuclear Cell Pellets and Plasma from a Single Blood Draw at Clinical Trial Sites for Biomarker Analysis
Published on: March 20, 2021
Differential DNA Damage Response of Peripheral Blood Lymphocyte Populations
Kerstin Felgentreff1, Catharina Schuetz2, Ulrich Baumann3
1Department of Pediatrics and Adolescent Medicine, University Medical Center Ulm, Ulm, Germany.
Abstract:
DNA damage occurs constantly in every cell triggered by endogenous processes of replication and metabolism, and external influences such as ionizing radiation and intercalating chemicals. Large sets of proteins are involved in sensing, stabilizing and repairing this damage including control of cell cycle and proliferation. Some of these factors are phosphorylated upon activation and can be used as biomarkers of DNA damage response (DDR) by flow and mass cytometry. Differential survival rates of lymphocyte subsets in response to DNA damage are well established, characterizing NK cells as most resistant and B cells as most sensitive to DNA damage. We investigated DDR to low dose gamma radiation (2Gy) in peripheral blood lymphocytes of 26 healthy donors and 3 patients with ataxia telangiectasia (AT) using mass cytometry. γH2AX, p-CHK2, p-ATM and p53 were analyzed as specific DDR biomarkers for functional readouts of DNA repair efficiency in combination with cell cycle and T, B and NK cell populations characterized by 20 surface markers. We identified significant differences in DDR among lymphocyte populations in healthy individuals. Whereas CD56+CD16+ NK cells showed a strong γH2AX response to low dose ionizing radiation, a reduced response rate could be observed in CD19+CD20+ B cells that was associated with reduced survival. Interestingly, γH2AX induction level correlated inversely with ATM-dependent p-CHK2 and p53 responses. Differential DDR could be further noticed in naïve compared to memory T and B cell subsets, characterized by reduced γH2AX, but increased p53 induction in naïve T cells. In contrast, DDR was abrogated in all lymphocyte populations of AT patients. Our results demonstrate differential DDR capacities in lymphocyte subsets that depend on maturation and correlate inversely with DNA damage-related survival. Importantly, DDR analysis of peripheral blood cells for diagnostic purposes should be stratified to lymphocyte subsets.
Insights
DNA damage response (DDR) varies significantly across human lymphocyte subsets. Natural killer (NK) cells are resistant, while B cells are sensitive, impacting survival after radiation exposure.
Area of Science:
- Immunology
- Molecular Biology
- Genetics
Background:
- DNA damage is a constant cellular threat from internal and external sources.
- The DNA damage response (DDR) involves complex protein networks for repair and cell cycle control.
- Lymphocyte subsets exhibit differential sensitivity and survival rates following DNA damage.
Purpose of the Study:
- To investigate DNA damage response (DDR) in peripheral blood lymphocyte subsets after low-dose gamma radiation.
- To analyze DDR biomarkers (γH2AX, p-CHK2, p-ATM, p53) and their correlation with cell cycle, survival, and maturation states.
- To compare DDR in healthy individuals versus ataxia telangiectasia (AT) patients.
Main Methods:
- Mass cytometry analysis of peripheral blood lymphocytes from 26 healthy donors and 3 AT patients.
- Quantification of DDR biomarkers γH2AX, p-CHK2, p-ATM, and p53.
- Characterization of T, B, and NK cell populations using 20 surface markers and cell cycle analysis.
Main Results:
- Significant differences in DDR were observed among lymphocyte subsets in healthy individuals.
- NK cells showed a strong γH2AX response, while B cells exhibited reduced response and survival.
- γH2AX induction inversely correlated with p-CHK2 and p53 responses; DDR was abrogated in AT patients.
Conclusions:
- Lymphocyte subsets display differential DDR capacities influenced by maturation, inversely correlating with DNA damage-induced survival.
- Stratifying DDR analysis by lymphocyte subset is crucial for diagnostic applications.
- The study highlights distinct radiosensitivities among lymphocyte types and identifies potential biomarkers for DDR assessment.

