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Non-homologous DNA end joining in normal and cancer cells and its dependence on break structures
Tomasz Poplawski1, Elzbieta Pastwa, Janusz Blasiak
1Department of Molecular Genetics, University of Lodz, Banacha, Lodz Poland.
Abstract:
DNA double-strand breaks (DSBs) are a serious threat to the cell, for if not or miss-repaired, they can lead to chromosomal aberration, mutation and cancer. DSBs in human cells are repaired via non-homologous DNA end joining (NHEJ) and homologous recombination repair pathways. In the former process, the structure of DNA termini plays an important role, as does the genetic constitution of the cells, through being different in normal and pathological cells. In order to investigate the dependence of NHEJ on DSB structure in normal and cancer cells, we used linearized plasmids with various, complementary or non-complementary, single-stranded or blunt DNA termini, as well as whole-cell extract isolated from normal human lymphocytes, chronic myeloid leukemia K562 cells and lung cancer A549 cells. We observed a pronounced variability in the efficacy of NHEJ reaction depending on the type of ends. Plasmids with complementary and blunt termini were more efficiently repaired than the substrate with 3' protruding single-strand ends. The hierarchy of the effectiveness of NHEJ was on average, from the most effective to the least, A549/ normal lymphocytes/ K562. Our results suggest that the genetic constitution of the cells together with the substrate terminal structure may contribute to the efficacy of the NHEJ reaction. This should be taken into account on considering its applicability in cancer chemo- or radiotherapy by pharmacologically modulating NHEJ cellular responses.
Insights
DNA end-joining repair efficiency varies with DNA break structure and cell type. Cancer cells like A549 show higher non-homologous DNA end joining (NHEJ) activity than normal cells or K562 leukemia cells.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- DNA double-strand breaks (DSBs) are critical DNA lesions.
- Improper repair of DSBs can lead to mutations and cancer.
- Non-homologous DNA end joining (NHEJ) is a primary DSB repair pathway.
Purpose of the Study:
- To investigate how DNA break structure influences NHEJ efficiency.
- To compare NHEJ activity in normal versus cancer cells.
- To understand the role of cellular genetic makeup in NHEJ.
Main Methods:
- Used linearized plasmids with diverse DNA termini (blunt, single-stranded, complementary).
- Employed whole-cell extracts from normal human lymphocytes, K562 (leukemia), and A549 (lung cancer) cells.
- Assessed the efficacy of the NHEJ reaction for different substrates and cell types.
Main Results:
- NHEJ efficiency significantly varied based on DNA termini structure.
- Complementary and blunt DNA termini were repaired more effectively than 3' protruding ends.
- Repair hierarchy: A549 cells > normal lymphocytes > K562 cells.
Conclusions:
- Both DNA break structure and cellular genetic background impact NHEJ efficacy.
- Findings suggest potential for modulating NHEJ in cancer therapy (chemo- or radiotherapy).
- Consideration of NHEJ modulation could enhance cancer treatment strategies.
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