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Published on: April 6, 2022
Pyrimidine dimer formation and oxidative damage in M13 bacteriophage inactivation by ultraviolet C irradiation
Yohei Kurosaki1, Hideki Abe, Hiroshi Morioka
1Hokkaido Red Cross Blood Center, Japanese Red Cross, Laboratory of Biophysical Chemistry, Graduate School of Pharmaceutical Sciences, Hokkaido University, Sapporo, Japan.
Abstract:
The mechanism by which UV-C irradiation inactivates M13 bacteriophage was studied by analyzing the M13 genome using agarose gel electrophoresis and South-Western blotting for pyrimidine dimers. The involvement of singlet oxygen (1O2) was also investigated using azide and deuterium oxide and under deoxygenated conditions. With a decrease in M13 infectivity on irradiation, single-stranded circular genomic DNA (sc-DNA) was converted to Form I and Form II, which had an electrophoretic mobility between that of sc-DNA and linear-form DNA. However, the amount of sc-DNA remaining was not correlated with the survival of M13. The formation of cyclobutane pyrimidine dimers (CPD) and pyrimidine (6-4) pyrimidone photoproducts ((6-4)PP) increased as a function of irradiation dose. The decrease in M13 infectivity was highly correlated with the increase in CPD and (6-4)PP, whereas no change was seen in M13 coat protein on sodium dodecyl sulfate-polyacrylamide gel electrophoresis. 8-Oxo-7,8-dihydro-2'-deoxyguanosine did not form in the M13 genome after UV-C irradiation. Inactivation of M13 was neither enhanced by deuterium oxide nor inhibited by azide. Deoxygenation of the M13 suspension did not affect the inactivation, indicating that 1O2 did not participate in the inactivation of M13 by UV-C irradiation under these conditions. These results indicated that UV-C irradiation induced not only CPD and (6-4)PP formation but also additional tertiary structural change in DNA inside the M13 virions, resulting in primary damage and a loss of infectivity. The indirect effect of UV-C irradiation such as 1O2 production followed by oxidative damage to nucleic acids and proteins might have contributed less, if at all, to the inactivation of M13 than the direct effect of UV-C.
Insights
UV-C irradiation inactivates M13 bacteriophage primarily by directly damaging its DNA, forming pyrimidine dimers and causing structural changes. Singlet oxygen plays a minimal role in this inactivation process.
Area of Science:
- Microbiology
- Photochemistry
- Molecular Biology
Background:
- M13 bacteriophage is a common model organism for studying viral inactivation mechanisms.
- Ultraviolet C (UV-C) irradiation is known to damage DNA, but the precise mechanisms of M13 inactivation are not fully understood.
- The potential role of reactive oxygen species, such as singlet oxygen (1O2), in UV-C-induced inactivation requires investigation.
Purpose of the Study:
- To elucidate the mechanism of M13 bacteriophage inactivation by UV-C irradiation.
- To determine the contribution of direct DNA damage versus indirect oxidative damage to M13 inactivation.
- To investigate the involvement of singlet oxygen in the UV-C inactivation process.
Main Methods:
- Analysis of M13 genomic DNA using agarose gel electrophoresis and South-Western blotting.
- Quantification of pyrimidine dimers, specifically cyclobutane pyrimidine dimers (CPD) and pyrimidine (6-4) pyrimidone photoproducts ((6-4)PP).
- Investigation of singlet oxygen involvement using azide, deuterium oxide, and deoxygenated conditions.
Main Results:
- UV-C irradiation decreased M13 infectivity and altered genomic DNA structure.
- Formation of CPD and (6-4)PP increased with UV-C dose and strongly correlated with infectivity loss.
- Singlet oxygen did not appear to play a significant role in M13 inactivation under the tested conditions.
Conclusions:
- UV-C inactivation of M13 bacteriophage is primarily due to direct DNA damage, including CPD and (6-4)PP formation, and subsequent tertiary structural changes within the virion.
- Indirect effects mediated by singlet oxygen contribute minimally, if at all, to M13 inactivation by UV-C.
- The study highlights the dominant role of direct photoproducts in UV-C-induced viral inactivation.
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