Влияние ионов меди и цинка на зеленую микроводоросль Chlorella vulgaris

Авторы

  • Валентина Владимировна Галямина Институт экологии и генетики микроорганизмов УрО РАН – филиал ПФИЦ УрО РАН, Пермь, Россия
  • Дмитрий Юрьевич Шаравин Институт экологии и генетики микроорганизмов УрО РАН – филиал ПФИЦ УрО РАН, Пермь, Россия

DOI:

https://doi.org/10.17072/1994-9952-2026-2-139-149

Ключевые слова:

Chlorella vulgaris, ионы меди и цинка, хлорофиллы, каротиноиды, углеводы, пролин, токсичность

Аннотация

Представлены результаты исследования токсического действия меди и цинка в диапа­зоне концентраций 1–17 мкМ Cu2+ и 5–60 мкМ Zn2+ на пресноводную зеленую микроводоросль Chlorella vulgaris IMBR-19. В недельном эксперименте оценку токсичности тяжелых металлов давали по таким показателям, как численность живых и мертвых клеток, содержание внутриклеточных пигментов, угле­водов и пролина. Установлено, что наибольшим угнетающим действием по отношению к хлорелле обла­дает медь. Пороговыми концентрациями, при которых рост культуры не наблюдается, а количество мертвых клеток приближается к 100%, были 13 и 40 мкМ для меди и цинка соответственно. Установ­лено, что при увеличении концентрации тяжелых металлов (в диапазоне роста микроводоросли) не про­исходит статистически достоверного снижения концентрации фотосинтетических пигментов. Для кон­центраций 7–11 мкМ меди обнаружен существенный рост содержания хлорофиллов и каротиноидов. По­лученные данные свидетельствуют, что при повышении концентрации тяжелых металлов происходит увеличение содержания углеводов в клетках хлореллы в 2 и 3 раза по сравнению с контролем в случае меди и цинка соответственно. Аналогичная зависимость была выявлена и в случае с пролином, где опытные варианты с медью и цинком при 13 мкМ и 30 мкМ соответственно превышали контроль в 2.7 и 4 раза.

Биографии авторов

  • Валентина Владимировна Галямина, Институт экологии и генетики микроорганизмов УрО РАН – филиал ПФИЦ УрО РАН, Пермь, Россия
    канд. биол. наук, инженер Лаборатории клеточной иммунологии и нанобиотехнологии
  • Дмитрий Юрьевич Шаравин, Институт экологии и генетики микроорганизмов УрО РАН – филиал ПФИЦ УрО РАН, Пермь, Россия
    канд. биол. наук, м.н.с. Лаборатории клеточной иммунологии и нанобиотехнологии

Библиографические ссылки

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31. Ogbonna J.C., Nweze N.O., Ogbonna C.N. Effects of light on cell growth, chlorophyll, and carote-noid contents of Chlorella sorokiniana and Ankistrodesmus falcatus in poultry dropping medium. Journal of applied biology and biotechnology. V. 9, No. 2 (2021): pp. 157-163. DOI: 10.7324/JABB.2021.9215.

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34. Zhang W., Tan N.G.J., Fu B., Li S.F.Y. Metallomics and NMR-based metabolomics of Chlorella sp. re¬veal the synergistic role of copper and cadmium in multi metal toxicity and oxidative stress. Metallom-ics. V. 7 (2015). Art. 426. DOI: 10.1039/c4mt00253a.

35. Zhou G.J., Peng F.Q., Zhang L.J., Ying G.G. Biosorption of zinc and copper from aqueous solutions by two freshwater green microalgae Chlorella pyrenoidosa and Scenedesmus obliquus. Environmental science and pollution research international. V. 19, No. 7 (2012): pp. 2918-2929. DOI: 10.1007/s11356-012-0800-9.

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Опубликован

2026-07-07

Как цитировать

Влияние ионов меди и цинка на зеленую микроводоросль Chlorella vulgaris. (2026). Вестник Пермского университета. Серия Биология, 17(2), 139-149. https://doi.org/10.17072/1994-9952-2026-2-139-149

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