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.

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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