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2015 | 24 | 4 |

Tytuł artykułu

Composition of ethyl acetate extracts from three plant materials (shaddock peel, pomegranate peel, pomegranate seed) and their algicidal activities

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
Many studies have involved the isolation and identification of allelochemicals from aquatic plants, but the algicidal properties of terrestrial plants have received less attention. This study aims to identify allelochemicals of ethyl acetate extracts from three plant materials (shaddock peel, pomegranate peel, pomegranate seed) and to investigate their inhibitory effects on Microcystis aeruginosa. The ethyl acetate extracts of the three plant materials were identified by GC-MS. Finally, 19 kinds of compounds (including organic acids, ester, ketone, sterol, etc.) were obtained and eight kinds of organic acids and N-phenyl-2-Naphthalenamine were proved to be allelochemicals. The inhibitory effects of the ethyl acetate extracts were also explored by M. aeruginosa bioassay. This showed that the inhibition percentages of ethyl acetate extracts of the three plant materials on the growth of M. aeruginosa were 43.9%, 47.5%, and 40.3%, respectively, when the algae were treated at a dosage of 20 mg/L extracts.

Słowa kluczowe

Wydawca

-

Rocznik

Tom

24

Numer

4

Opis fizyczny

p.1803-1807,ref.

Twórcy

autor
  • School of Municipal and Environmental Engineering, Henan University of Urban Construction, Pingdingshan, Henan province 467036, P.R. China
autor
  • School of Municipal and Environmental Engineering, Henan University of Urban Construction, Pingdingshan, Henan province 467036, P.R. China
autor
  • Chinese Research Academy of Environmental Sciences, Beijing 100012, P.R. China
autor
  • School of Municipal and Environmental Engineering, Henan University of Urban Construction, Pingdingshan, Henan province 467036, P.R. China
autor
  • School of Municipal and Environmental Engineering, Henan University of Urban Construction, Pingdingshan, Henan province 467036, P.R. China
autor
  • School of Municipal and Environmental Engineering, Henan University of Urban Construction, Pingdingshan, Henan province 467036, P.R. China
autor
  • School of Municipal and Environmental Engineering, Henan University of Urban Construction, Pingdingshan, Henan province 467036, P.R. China

Bibliografia

  • 1. BRIAND E., GUGGER M., FRANCOIS J. C., BERNARD C., HUMBERT J. F., QUIBLIER C. Temporal variations in the dynamics of potentially microcystin-producing strains in a bloom-forming Planktothrix agardhii (cyanobacterium) population. Appl. Environ. Microb. 74, (12), 3839, 2008.
  • 2. LOPEZ C. B., JEWETT E. B., DORTCH Q., WALTON B. T., HUDNELL H. K. Scientific assessment of freshwater harmful algal blooms. In: Interagency Working Group on Harmful Algal Blooms, Hypoxia, and Human Health of the Joint Subcommittee on Ocean Science and Technology. Washington, DC. 2008.
  • 3. ZHANG M., WANG Z. Q., XU J., LIU Y. Q., NI L. Y., CAO T., XIE P. Ammonium, microcystins, and hypoxia of blooms in eutrophic water cause oxidative stress and C-N imbalance in submersed and floating-leaved aquatic plants in Lake Taihu, China. Chemosphere 82, (3), 329, 2011.
  • 4. SHAO J. H., LI R. H., LEPO J. E., GU J. D. Potential for control of harmful cyanobacterial blooms using biologically derived substances: Problems and prospects. J. Environ. Manage. 125, 149, 2013.
  • 5. HONG Y., HU H. Y., SAKODA A., SAGEHASHI M. Isolation and characterization of antialgal allelochemicals from Arundo donax L. Allelopathy J. 25, (2), 357, 2010.
  • 6. NAKAI S., YAMADA S., HOSOMI M. Anti-cyanobacterial fatty acids released from Myriophyllum spicatum. Hydrobiologia 543, (1), 71, 2005.
  • 7. WANG H. Q., LIANG F., QIAO N., DONG J. X., ZHANG L. Y., GUO Y. F. Chemical composition of volatile oil from two emergent plants and their algae inhibition activity. Pol. J. Environ. Stud. 23, (6), 2371, 2014.
  • 8. ZHANG S. H., CHENG S. P., WANG H. Q., HE F., WU Z. B. Allelopathic interactions between the Potamogeton spp and toxic cyanobacteria (Microcystis aeruginosa). Allelopathy J. 23, (2), 379, 2009.
  • 9. ZHANG C., YI Y. L., HAO K., LIU G. L., WANG G. X. Algicidal activity of Salvia miltiorrhiza Bung on Microcystis aeruginosa – Towards identification of algicidal substance and determination of inhibition mechanism. Chemosphere 93, (6), 997, 2013.
  • 10. BALL A. S., WILLIAMS M., VINCENT D., ROBINSON J. Algal growth control by a barley straw extract. Bioresource Technol. 77, (2), 177, 2001.
  • 11. BARRETT P. R. F., LITTLEJOHN J. W., CURNOW J. Long-term algal control in a reservoir using barley straw. Hydrobiologia 415, 309, 1999.
  • 12. UALLACHÁIN D. Ó., FENTON O. Barley (Hordeum vulgare)-induced growth inhibition of algae: a review. J. Appl. Phycol. 22, (5), 651, 2010.
  • 13. WAYBRIGHT T. J., TERLIZZI D. E., FERRIER M. D. Chemical characterization of the aqueous algistatic fraction of barley straw (Hordeum vulgare) inhibiting Microcystis aeruginosa. J. Appl. Phycol. 21, (3), 333, 2009.
  • 14. YI Y. L., LEI Y., YIN Y. B., ZHANG H. Y., WANG G. X. The antialgal activity of 40 medicinal plants against Microcystis aeruginosa. J. Appl. Phycol. 24, (4), 847, 2012.
  • 15. ZHANG S. L., ZHANG B., XING K. Z., ZHANG X. M., TIAN X. P., DAI W. Inhibitory effects of golden thread (Coptis chinensis) and berberine on Microcystis aeruginosa. Water Sci. Technol. 61, (3), 763, 2010.
  • 16. LANSKY E. P., NEWMAN R. A. Punica granatum (pomegranate) and its potential for prevention and treatment of inflammation and cancer. J. Ethnopharmacol. 109, (2), 177, 2007.
  • 17. FADAVI A., BARZEGAR M., HOSSEIN AZIZI M. Determination of fatty acids and total lipid content in oilseed of 25 pomegranates varieties grown in Iran. J. Food Compos. Anal. 19, (6), 676, 2006.
  • 18. ISMAIL T., SESTILI P., AKHTAR S. Pomegranate peel and fruit extracts: A review of potential anti-inflammatory and anti-infective effects. J. Ethnopharmacol. 143, (2), 397, 2012.
  • 19. JING P., YE T., SHI H. M., SHENG Y., SLAVIN M., GAO B. Y., LIU L. W., YU L. L. Antioxidant properties and phytochemical composition of China-grown pomegranate seeds. Food Chem. 132, (3), 1457, 2012.
  • 20. GUNDOGDU M., YILMAZ H. Organic acid, phenolic profile and antioxidant capacities of pomegranate (Punica granatum L.) cultivars and selected genotypes. Sci. Hortic. 143, 38, 2012.
  • 21. MIRDEHGHAN S. H., RAHEMI M. Seasonal changes of mineral nutrients and phenolics in pomegranate (Punica granatum L.) fruit. Sci. Hortic. 111, (2), 120, 2007.
  • 22. SAAD H., Charrier-El Bouhtoury F., PIZZI A., RODE K., CHARRIER B., AYED N. Characterization of pomegranate peels tannin extractives. Ind. Crop. Prod. 40, 239, 2012.
  • 23. OBOH G., ADEMOSUN A. O. Shaddock peels (Citrus maxima) phenolic extracts inhibit α-amylase, α-glucosidase and angiotensin I-converting enzyme activities: A nutraceutical approach to diabetes management. Diabetes & Metabolic Syndrome: Clinical Research & Reviews 5, (3), 148, 2011.
  • 24. RIPPKA R., DERUELLES J., WATERBURY J. B., HERDMAN M., STANIER R. Y. Generic assignments, strain histories and properties of pure cultures of cyanobacteria. J. Gen. Microbiol. 111, (1), 1, 1979.
  • 25. GAO Y. N., LIU B. Y., XU D., ZHOU Q. H., HU C. Y., GE F. J., ZHANG L. P., WU Z. B. Phenolic compounds exuded from two submerged freshwater macrophytes and their allelopathic effects on Microcystis aeruginosa. Pol. J. Environ. Stud. 20, (5), 1153, 2011.
  • 26. HONG Y., HU H. Y. Effects of the aquatic extracts of Arundo donax L. on the growth of freshwater algae. Allelopathy J. 20, (2), 315, 2007.
  • 27. NAKAI S., INOUEY., HOSOMI M., MURAKAMI A. Myriophyllum spicatum-released allelopathic polyphenols inhibiting growth of blue-green algae Microcystis aeruginosa. Water Res. 34, (11), 3026, 2000.
  • 28. ZHANG S. H., CHENG S. P., SUN P. S., WANG H. Q., WU Z. B. Isolation and identification of antialgal compounds from Potamogeton maackianus by activity-guided fractionation. Allelopathy J. 28, (1), 95, 2011.
  • 29. GROSS E. M., MEYER H., SCHILLING G. Release and ecological impact of algicidal hydrolysable polyphenols in Myriophyllum spicatum. Phytochemistry 41, (1), 133, 1996.
  • 30. PILLINGER J. M., COOPER J. A., RIDGE I. Role of Phenolic Compounds in the antialgal activity of barley straw. J. Chem. Ecol. 20, (7), 1557, 1994.
  • 31. TANG C. S., WAISS Jr A. C. Short-chain fatty acids as growth inhibitors in decomposing wheat straw. J. Chem. Ecol. 4, (2), 225, 1978.
  • 32. PLANAS D., SARHAN F., DUBE L., GODMAIRE H., CADIEUX C. Ecological significance of phenolic compounds of Myriophyllum spicatum. Verh. Internat. Verein. Limnol. 21, 1492, 1981.
  • 33. JANDL G., SCHULTEN H. R., LEINWEBER P. Quantification of long-chain fatty acids in dissolved organic matter and soils. J. Plant Nutr. Soil Sc. 165, (2), 133, 2002.
  • 34. WU J. T., CHIANG Y. R., HUANG W. Y., JANE W. N. Cytotoxic effects of free fatty acids on phytoplankton algae and cyanobacteria. Aquat. Toxicol. 80, (4), 338, 2006.
  • 35. ZHANG T. T., ZHENG C. Y., HU W., XU W. W., WANG H. F. The allelopathy and allelopathic mechanism of phenolic acids on toxic Microcystis aeruginosa. J. Appl. Phycol. 22, (1), 71, 2010.
  • 36. LEGRAND C., RENGEFORS K., FISTAROL G. O., GRANÉLI E. Allelopathy in phytoplankton: biochemical, ecological and evolutionary aspects. Phycologia 42, (4), 406, 2003.
  • 37. DZIGA D., SUDA M., BIALCZYK J., CZAJA-PROKOP U., LECHOWSKI Z. The alteration of Microcystis aeruginosa biomass and dissolved microcystin-LR concentration following exposure to plant-producing phenols. Environ. Toxicol. 22, (4), 341, 2007.
  • 38. QIAN H. F., YU S. Q., SUN Z. Q., XIE X. C., LIU W. P., FU Z. W. Effects of copper sulfate, hydrogen peroxide and N-phenyl-2-naphthylamine on oxidative stress and the expression of genes involved photosynthesis and microcystin disposition in Microcystis aeruginosa. Aquat. Toxicol. 99, (3), 405, 2010.
  • 39. SUN X. M., LIU B. Y., LU Z. Y., WU Z. B. Study on oxidative damage to Microcystis aeruginosa mediated by allelochemical pyrogallic acid from submerged macrophytes. China Environmental Science 33, (10), 1835, 2013 [In Chinese].
  • 40. LEU E., KRIEGER-LISZKAY A., GOUSSIAS C., GROSS E. M. Polyphenolic allelochemicals from the aquatic angiosperm Myriophyllum spicatum inhibit photosystem II. Plant Physiol. 130, (4), 2011, 2002.
  • 41. SHAO J. H., WU Z. X., YU G. L., PENG X., LI R. H. Allelopathic mechanism of pyrogallol to Microcystis aeruginosa PCC7806 (Cyanobacteria): From views of gene expression and antioxidant system. Chemosphere 75, (7), 924, 2009.
  • 42. ZHANG T. T., ZHANG C.Y., HE M., WU A. P., NIE L. W. Inhibition on algae of fatty acids and the structure-effect relationship. China Environmental Science 29, (3), 274, 2009 [In Chinese].
  • 43. HU C. Y., GE F. J., ZHANG S. H., LIU B. Y., WANG J., GAO Y. N., WU Z. B. Isolation of antialgal compounds from Potamogeton malaianus and algal inhibitory effects of common fatty acids. Journal of Lake Sciences 22, (4), 569, 2010 [In Chinese].
  • 44. ZHANG T. T., HE M., WU A. P., NIE L. W. Allelopathic effects of submerged macrophyte Chara vulgaris on toxic Microcystis aeruginosa. Allelopathy J. 23, (2), 391, 2009.
  • 45. GENG X. J., FAN Y., WANG X. Q., FU H. L., LAN L. Q. Effects of an allelochemical, N-phenyl-2-naphthylamine, from Eichhornia crassipes on the growth of Microcystis aeruginosa. Journal of Sichuan University (Natural Science Edition) 46, (5), 1493, 2009 [In Chinese].

Typ dokumentu

Bibliografia

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Identyfikator YADDA

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