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Updated: Jul 5, 2026

Laser Microirradiation to Study In Vivo Cellular Responses to Simple and Complex DNA Damage
Published on: January 31, 2018
Oxidative stress induces cell cycle-dependent Mre11 recruitment, ATM and Chk2 activation and histone H2AX
Hong Zhao1, Frank Traganos, Anthony P Albino
1Brander Cancer Research Institute and Department of Pathology, New York Medical College, Valhalla, New York 10595, USA.
Abstract:
DNA damage response recruits complex molecular machinery involved in DNA repair, arrest of cell cycle progression, and potentially in activation of apoptotic pathway. Among the first responders is the Mre11- (MRN) complex of proteins (Mre11, Rad50, Nbs1), essential for activation of ATM; the latter activates checkpoint kinase 2 (Chk2) and phosphorylates histone H2AX. In the present study the recruitment of Mre11 and phosphorylation of ATM, Chk2 and H2AX (gammaH2AX) detected immunocytochemically were measured by laser scanning cytometry to assess kinetics of these events in A549 cells treated with H(2)O(2). Recruitment of Mre11 was rapid, peaked at 10 min of exposure to the oxidant, and was of similar extent in all phases of the cell cycle. ATM and Chk2 activation as well as H2AX phosphorylation reached maximum levels after 30 min of treatment with H(2)O(2); the extent of phosphorylation of each was most prominent in S-, less in G(1)-, and the least in G(2)M- phase cells. A strong correlation between activation of ATM and Chk2, measured in the same cells, was seen in all phases of the cycle. In untreated cells activated Chk2 and Mre11 were distinctly present in centrosomes while in interphase cells they had characteristic punctate nuclear localization. The punctate expression of activated Chk2 both in untreated and H(2)O(2) treated cells was accentuated when measured as maximal pixel rather than integrated value of immunofluorescence (IF) per nucleus, and was most pronounced in G(1) cells, likely reflecting the function of Chk2 in activating Cdc25A. Subpopulations of G(1) and G(2)M cells with strong maximal pixel of Chk2-Thr68(P) IF in association with centrosomes were present in untreated cultures. Cytometric multiparameter assessment of the DNA damage response utilizing quantitative image analysis that allows one to measure inhomogeneity of fluorochrome distribution (e.g., maximal pixel) offers unique advantage in studies of the response of different cell constituents in relation to cell cycle position.
Insights
The Mre11-Rad50-Nbs1 complex rapidly responds to DNA damage, initiating ATM and Chk2 activation and histone H2AX phosphorylation, with varying cell cycle phase prominence.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- DNA damage response involves intricate molecular machinery for repair, cell cycle arrest, and apoptosis.
- The Mre11-Rad50-Nbs1 (MRN) complex is a key early responder, activating ATM, which in turn activates Chk2 and phosphorylates H2AX.
Purpose of the Study:
- To quantitatively assess the kinetics of DNA damage response markers in A549 cells treated with hydrogen peroxide.
- To investigate the cell cycle-dependent recruitment and activation of DNA damage response proteins using laser scanning cytometry.
Main Methods:
- Immunocytochemistry and laser scanning cytometry were employed to measure Mre11 recruitment and phosphorylation of ATM, Chk2, and H2AX (gammaH2AX).
- Quantitative image analysis, including maximal pixel intensity, was used to assess protein localization and activation in relation to cell cycle phases.
Main Results:
- Mre11 recruitment was rapid, peaking at 10 minutes, and occurred similarly across all cell cycle phases.
- ATM and Chk2 activation, along with H2AX phosphorylation, peaked at 30 minutes, with maximal levels observed in S-phase cells.
- Activated Chk2 and Mre11 showed distinct localization in centrosomes (untreated) and punctate nuclear patterns (interphase), with enhanced Chk2 punctate expression in G1 cells.
Conclusions:
- The study elucidates the temporal dynamics and cell cycle-dependent nature of early DNA damage response events.
- Quantitative image analysis, particularly measuring fluorescence distribution inhomogeneity, provides valuable insights into DNA damage response mechanisms.
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