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Effects of Hypochlorous Acid, Calcium Chloride and Phosphoric Acid in a Highly Saline Solution on Cell Death Rate and Growth Rate of Porphyra yezoensis and Ulva intestinalis

고염수 처리제에 차아염소산, 염화칼슘 및 인산 첨가가 방사무늬김(Pyropia yezoensis)과 창자파래(Ulva intestinalis)의 사세포율과 엽체 성장에 미치는 영향

  • Kwon, O-Nam (East Coastal Life Science Institute, Gangneung-Wonju National University) ;
  • Yun, Yeoung-Rang (Honam South-Eastern Laver Complex Solution Business Cooperation) ;
  • Shin, Il-Shik (Department of Marine Food Science and Technology, Gangneung-Wonju National University)
  • 권오남 (강릉원주대학교 동해안생명과학연구소) ;
  • 윤영랑 (호남남서부김활성처리제사업협동조합) ;
  • 신일식 (강릉원주대학교 해양식품공학과)
  • Received : 2018.11.20
  • Accepted : 2018.12.11
  • Published : 2018.12.31

Abstract

We investigated the effects of a highly saline solution (HS) containing hypochlorous acid, calcium chloride ($CaCl_2$), and phosphoric acid ($H_3PO_4$) on cell death and growth rate of laver Porphyra yezoensis and green laver Ulva intestinalis. Cell death rates of laver treated with HS and HS plus hypochlorous acid (HS + HOCl) in the harvesting stage were less than 0.5%, and there were no significant differences between the HS and HS + HOCl treatments. However, cell death of green laver treated with HS + HOCl in the harvesting stage was greater than 81.2%. These results indicate that the addition of HOCl is highly effective to eradicate noxious green laver without causing damage to laver. The addition of HOCl and $H_3PO_4$ to HS did not increase the area or weight of laver blades. A combination treatment of $CaCl_2$ and HS, however, significantly increased the area and weight of laver lades compared to controls (P<0.05).

Keywords

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Fig. 1. Change of Laver Pyropia yezoensis and Green laver Ulva intestinalis cells by treatment with HS+HOCl on early and harveststage of Laver. HS, High salty solution.

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Fig. 2. The death cell ratio of Laver Pyropia yezoensis and Green laver Ulva intestinalis by treatment with HS and HS+HOCl atearly and harvest stage of laver. Values with different characters are signifcantly different (P<0.05). (a) early stage of laver; (b)harvest stage of laver; (c) early stage of green laver; (d) harvest stage of green Laver. HS, High salty solution.

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Fig. 3. The effects of addition of HOCl, CaCl2 and H3PO4 to HS on increase of Laver Pyropia yezoensis blade area. Values with different characters are significantly different (P<0.05). HS, High salty solution.

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Fig. 4. The effects of addition of HOCl, CaCl2 and H3PO4 to HS on increase of Laver Pyropia yezoensis blade weight. Values with different characters are significantly different (P<0.05). HS, High salty solution.

Table 1. Composition (%) of high salty complex solution used for measurement of death cell ratio of Laver Pyropia yezoensis and Green laver Ulva intestinalis blade

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Table 2. Composition (%) of high salty complex solutions used for measurement of growth rate of Laver Pyropia yezoensis leaves in this study

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References

  1. Dukan S and Touati D. 1996. Hypochlorous acid stress in Escherichia coli: resistance, DNA damage, and comparison with hydrogen peroxide stress. J Bacteriol 178, 6145-6150. https://doi.org/10.1128/jb.178.21.6145-6150.1996.
  2. Duncan DB. 1955. Multiple-range and multiple F-tests. Biometrics 11, 1-42. https://doi.org/10.2307/3001478
  3. FAO (Food and Agriculture Organization of the United Nations). 2016. The state of world fisheries and aquaculture 2016. Retrieved from http://www.fao.org/publications/sofia/2016/en/?platform= on Jun 2, 2017.
  4. Griffin NJ, Bolton JJ and Anderson RJ. 1999. The effects of a simulated harvest on Porphyra (Bangiales, Rhodophyta) in South Africa. Hydrobiologia 398, 183-189. https://doi.org/10.1023/A:1017034028769.
  5. Iwasaki H. 1967. Nutritional studies of the edible seaweed Phophyra tenera. II. Nutrition of Conchocelis. J Phycology 3, 30-34. https://doi.org/10.1111/j.1529-8817.1967.tb04625.x.
  6. Jimenez-Escrig and Sanchez-Muniz FJ. 2000. Dietary fibre from edible seaweeds: Chemical structure, physicochemical properties and effects on cholesterol metabolism. Nutrition Res 20, 585-598. https://doi.org/10.1016/S0271-5317(00)00149-4.
  7. Kim MH. 2013. Development of fungicide for red rot disease of cultivated Porphyra. Master Thesis of Kongju University, Kongju, Korea.
  8. KMI (Korea Maritime Institute). 2017. The monthly review of fishery export information. Dec. 2017. K-Fish Information Center, Pusan, Korea.
  9. KTSPI (Korea Trade Statistics Promotion Institute). 2017. Trade Statistics Service. Retrieved from http://www.trass.or.kr/service/statistic/StatisticsViewServlet?main ServiceURL=P02M02D010 on Jun 25, 2017.
  10. Kuffner IB and Paul VJ. 2001. Effects on nitrate, phosphate and iron on the growth of macroalgae and benthic cyanobacteria from Cocos Lagoon, Guam. Mar Ecol Prog Ser 63, 63-72.
  11. Liu X and Gordon ME. 1987. Tissue and cell culture of New Zealnad Pterocladia and Porphyra species. Hydrobiologia 151, 147-154.
  12. MAFF (Ministry of Agriculture, Forestry and Fisheries in Japan). 1995. Reports of acid treatment on Nori aquaculture. MAFF, Tokyo, Japan.
  13. McArthus DM and Moss BL. 1977. The ultrastructure of cell walls in Enteromorpha intestinalis (L.) Link. Br Phycol J 12, 359-368. https://doi.org/10.1080/00071617700650381
  14. McKenna SM and Davies KJA. 1988. Bacterial killing by phagocytes: Potential role(s) of hypochlorous acid and hydrogen peroxide in protein turnover, DNA synthesis, and RNA synthesis. Basic Life Sci 49, 829-832.
  15. MIFAFF (Ministry for Food, Agriculture, Forestry and Fisheries). 2008. A notice about standard of active agent on Nori aquaculture. Retrieved from on Oct 1, 2018.
  16. MOF (Ministry of Oceans and Fisheries). 2016. Statistical Yearbook of Fisheries Production. Retrieved from http://www.fips.go.kr/jsp/sf/ss/ss_kind_law_list.jsp?menuDepth=070104 on Jun 1, 2017.
  17. MOF (Ministry of Oceans and Fisheries). 2017. http://www.mof.go.kr/article-/view.do?articleKey=17528&searchSelect=title&boardKey=35&searchStartDate=2017-09-22&searchEndDate=2017-10-23&menuKey=402&tPageNo=2. on Oct 1, 2018.
  18. Song HI, Kim DH, Kim JR and Kim SU. 1993. A study on the occurrence of the laver disease, with its environmental factors in the laver farming area. Bull Nat'l Fish Res Dev Inst Korea 47, 177-195.
  19. Tait MI, Milne AM, Grant D, Somers JA, Staples J, Long WF, Williamson FB and Wilson SB. 1990. Porphyra cell cultures: isolation, growth and polysaccharide production. J Appl Phycol 2, 63-70. https://doi.org/10.1007/BF02179770
  20. Ueki C, Nagasato C, Motomura T and Saga N. 2008. Reexamination of the pit plugs and the characteristic membranous structures in Porphyra yezoensis (Bangiales, Rhodophyta). Phycologia 47, 5-11. https://doi.org/10.2216/0031-8884(2008)47[5:ROTPPA]2.0.CO;2.
  21. Wiencke C and Lauchli A. 1980. Growth, cell volume, and fine structure of Porphyra umbilicalis in relation to osmotic tolerance. Planta 150, 303-311. https://doi.org/10.1007/BF00384660.