Antimicrobial Effect of the Wood Vinegar from Cryptomeria japonica Sapwood on Plant Pathogenic Microorganisms

  • Published : 2005.10.01

Abstract

The antimicrobial effect of the wood vinegar of C. japanica sapwood and its constituents was evaluated against Ralstonia salanacearum, Phytophthora capsid, Fusarium oxysporum, and Pythium splendens. Phenols and guaiacols had a strong antimicrobial effect against four kinds of microorganisms, but methanol and acetic acid exhibited little or no antimicrobial activity.

Keywords

References

  1. Kim, S. G., Y. H. Kim, J. S. Kim, M. S. Ahn, S. J. Heo, J. H. Hur, and D. S. Han. 2000. Herbicidal activity of wood vinegar from Quercus mongolica Fisch. Kor. J. Pesticide Sci. 4: 82-88
  2. Toth, L. and K. Potthast. 1984. Chemical aspects of the smoking of meat and meat products. Adv. Food Res. 29: 87-158
  3. Jeong, C. H. and K. H. Shin. 2002. Nitrite-scavenging and antioxidant activities of wood vinegar. Kor. J. Food Preservation 9: 351-355
  4. Park, W. M., W. H. Choi, I. J. Yoo, J. R. Ji, and D. H. Chung. 1998. Effects of pyroligneous liquor and preservatives on the quality of fermented sausages. Kor. J. Food Sci. Anim. Resour. 18: 75-80
  5. Ohta, A. and L. Zhang. 1994. Acceleration of mycelial growth and fruiting body production of edible mushrooms by wood vinegars fractions. J. Wood Sci. 40: 429-433
  6. Yatagai, M., M. Nishimoto, K. Hori, T. Ohira, and A. Shibata. 2002. Tenniticidal activity of wood vinegar, its components and their homologues. J. Wood Sci. 48: 338-342 https://doi.org/10.1007/BF00831357
  7. Sugiura, G. 1972. Mokuzai Kokyo Handbook. Forestry and Res. Inst. (ed). Maruzen, Tokyo. p. 930
  8. Kurosawa, T., T. Miyamoto, S. Natsume, and H. Sugiyama. 1996. Inhibitive effect of wood vinegar from Japanese oak (Quercus mongolica var. grosseserrata) on the growth of Racodium therryanum. Transactions of the Meeting in Hokkaido 44: 216-217
  9. Inoue, S., T. Hata, Y. Imamura, and D. Meier. 2000. Components and antifungal efficiency of wood-vine gar-liquor prepared under different carbonization conditions. Wood Res. 87: 34-36
  10. Megro, S., S. Kawachi, and T. Tanaka. 1992. Protection of Lentinus edodes from Mycoparasites by acetic acid and wood vinegars. Mokuzai Gakkaishi 38: 1057-1062
  11. Kim, J., J.-G. Kim, B.-K. Park, O. Choi, C. S. Park, and I. Hwang. 2003. Identification of genes for biosynthesis of antibacterial compound from Pseudomonas fluorescens B 16, and its activity against Ralstonia solanacearum. J. Microbiol. Biotechnol. 13: 292-300
  12. Ikegami, F., T. Sekine, and Y Fujii. 1998. Anti-dermaptophyte activity of phenolic compounds in 'mokusaku-eki'. Yakugaku Zasshi 118: 27-30 https://doi.org/10.1248/yakushi1947.118.1_27
  13. Lee, H.-S. 2003. Inhibitory effects of quinizarin isolated from Cassia tora seeds against human intestinal bacteria and aflatoxin $B_{1}$ biotransformation. J. Microbiol. Biotechnol. 13: 529-536
  14. Kim, M.-J., S.-H. Lee, J.-H. Cho, M.-K. Kim, and H.-S. Lee. 2003. Growth responses of seven intestinal bacteria against Phellodendron amurense root-derived materials. J. Microbiol. Biotechnol. 13: 522-528
  15. Yatagai, M. and G. Unrinin. 1989. By-products of wood carbonization. V. Germination and growth regulation effects of wood vinegars components and their homo logs on plant seeds-acids and neutrals. J. Wood Sci. 35: 564-571
  16. Matsui, T., Y. Matsushita, K. Sugamoto, Y. Tokuda, K. Kodama, K. Nakata, M. ada, and H. Yamauchi. 2000. Preparation and analysis of carbonization products from Sugi (Cryptomeriajaponica D. Don) wood. Nippon Kagaku Kaishi 53-61
  17. Kofujita, H., M. Ota, K. Takahashi, Y. Kawai, and Y. Hayashi. 2002. A diterpene quinine trom the bark of Cryptomeriajaponica. Phytochem 61: 895-898 https://doi.org/10.1016/S0031-9422(02)00352-7
  18. Kim, Y. H., S. K. Kim, K. S. Kim, and Y. H. Lee. 2001. Composition of constituents of commercial wood vinegar liquor in Korea. J. Kor. Soc. Agric. Chem. Biotechnol. 44: 262-268
  19. Maga, J. and Z. Chen. 1987. Pyrazine composition of wood smoke as influenced by wood source and smoke generation variables. Flavour J. 1: 37-42
  20. Guillen, M. D. and M. L. Ibargoitia. 1999. Influence of the moisture content on the composition of the liquid smoke produced in the pryolysis process of Fagus sylvatica L. J. Agric. Food Chem. 47: 4162-4136
  21. Matsuda, T., T. Yano, A. Maruyama, and H. Kumagai. 1994. Antimicrobial activities of organic acids determined by minimum inhibitory concentrations at different pH ranged from 4.0 to 7.0. Nippon Shokuhin Kogyo Gakkaishi 41: 687-702 https://doi.org/10.3136/nskkk1962.41.687
  22. Nishimura, T. 1987. Antibacteral and antifungal activities of phenolic compounds viewed from their structures. 1. J. Antibact. Antifung. Agents 15: 23-32
  23. Nishimura, T. 1987. Antibacteral and antifungal activities of phenolic compounds viewed from their structures. 2. J. Antibact. Antifimg. Agents 15: 69-80