Immobilized Microorganisms-based Biopreparation as a Major Component for New Generation High-effeciency Organic Fertilizers

封面

如何引用文章

全文:

开放存取 开放存取
受限制的访问 ##reader.subscriptionAccessGranted##
受限制的访问 订阅存取

详细

Two biopreparations made of the bacteria Bacillus megaterium and Azotobacter chroococcum immobilized in modified polyvinyl alcohol hydrogel have been created. It has been shown that after application of the constructed biopreparations, an increase in soil moisture content (by a factor of two), germination (by up 100%), the length of the cress stem and roots (15–30%) was achieved. The addition of Azotobacter chroococcum-based biopreparation led to a 2-time increase of nitrogen in soil. The survival period for bacteria immobilized in hydrogel based on polyvinyl alcohol modified with succinic acid was longer than 30 days. It is concluded that the studied biopreparationsexhibited high potential as a major material for efficient biofertilizer of new generation.

作者简介

N. Yudina

Tula State University

Email: anatol@ibpm.pushchino.ru
Russia, 300012, Tula

T. Kozlova

Tula State University

Email: anatol@ibpm.pushchino.ru
Russia, 300012, Tula

T. Abramova

Skryabin Institute of biochemistry and physiology of microorganisms, Russian Academy of Sciences – a separate subdivision of the Federal Research Center, Pushchino Scientific Center for Biological Research
of the Russian Academy of Sciences

Email: anatol@ibpm.pushchino.ru
Russia, 142290, Moscow region, Pushchino

V. Arlyapov

Tula State University

Email: anatol@ibpm.pushchino.ru
Russia, 300012, Tula

L. Asulyan

Tula State University

Email: anatol@ibpm.pushchino.ru
Russia, 300012, Tula

V. Alferov

Tula State University

Email: anatol@ibpm.pushchino.ru
Russia, 300012, Tula

A. Reshetilov

Skryabin Institute of biochemistry and physiology of microorganisms, Russian Academy of Sciences – a separate subdivision of the Federal Research Center, Pushchino Scientific Center for Biological Research
of the Russian Academy of Sciences

编辑信件的主要联系方式.
Email: anatol@ibpm.pushchino.ru
Russia, 142290, Moscow region, Pushchino

参考

  1. Aasfar A., Bargaz A., Yaakoubi K., Hilali A., Bennis I., Zeroual Y., MeftahKadmiri I. // Front. Microbiol. 2021. V. 12. P. 354–372.
  2. Saxena A.K., Kumar M., Chakdar H., Anuroopa N., Bagyaraj D.J. // J. Applied Microbiol. 2020. V. 128. № 6. P. 1583–1594.
  3. Bindraban P.S., Dimkpa C., Nagarajan L., Roy A., Rabbinge R. // Biol. and Fertility of Soils. 2015. V. 51. № 8. P. 897–911.
  4. Saha B., Saha S., Das A., Bhattacharyya P.K., Basak N., Sinha A.K., Poddar P. // In “Agriculturally Important Microbes for Sustainable Agriculture.” Singapore: Springer, 2017. P. 81–128.
  5. Sumbul A., Ansari R.A., Rizvi R., Mahmood I. // Saudi J. Boil. Sciences. 2020. V. 27. № 12. P. 3634–3640.
  6. Гинь Т.А., Соколова М.Т., Казаринова Т.Ф. // Изв. Вузов. Прикл. хим. и биотехнол. 2012. № 2. С. 68–73.
  7. Arlyapov V.A., Yudina N.Y., Asulyan L.D., Kamanina O.A., Alferov S.V., Shumsky A.N., Reshetilov A.N. // 3 Biotech. 2020. V. 10. № 5. P. 1–11.
  8. Arlyapov V.A., Yudina N.Yu., Asulyan L.D., Alferov S.V., Alferov V.A., Reshetilov A.N. // Enzyme and Microbial Technol. 2013. № 53. P. 257–262.
  9. Yudina N.Yu., Arlyapov V.A., Chepurnova M.A., Alferov S.V., Reshetilov A.N. // Enzyme and Microbial Technol. 2015. № 78. P. 46–53.
  10. Асулян Л.Д., Бояркина В.В., Агаева М.В. Гидрогели поливинилового спирта как влагоудерживающие сорбенты // Изв. Тул. ГУ Естеств. науки. 2021. № 1. С. 13–19.
  11. Kamoun E.A., Loutfy S.A., Hussein Y., Kenawy E.R.S. // Intern. J. Biological Macromolecules. 2021. V. 187. P. 755–768.
  12. Husain M.S.B., Gupta A., Alashwal B.Y., Sharma S. // Energy Sources. Part A: Recovery, Utilization, and Environmental Effects. 2018. V. 40. № 20. P. 2388–2393.
  13. Alipoori S., Mazinani S., Aboutalebi S.H., Sharif F. // J. Energy Storage. 2020. V. 27. P. 101072.
  14. Arefian M., Hojjati M., Tajzad I., Mokhtarzade A., Mazhar M., Jamavari A. // J. Composites and Compounds. 2020. V. 2. № 3. C. 69–76.
  15. Wen N., Jiang B., Wang X., Shang Z., Jiang D., Zhang L., Guo Z. // The Chemical Record. 2020. V. 20. № 8. P. 773–792.
  16. Rynkowska E., Fatyeyeva K., Marais S., Kujawa J., Kujawski W. // Polymers. 2019. V. 11. № 11. P. 1799.
  17. Ahmad A.L., Yusuf N.M., Ooi B.S. // Desalination. 2012. V. 287. P. 35–40.
  18. do Nascimento F.C., de Aguiar L.C.V., Costa L.A.T., Fernandes M.T., Marassi R.J., Gomes A.D.S., de Castro J.A. // Polymer Bulletin. 2021. V. 78. № 2. P. 917–929.
  19. Нораев М.Г., Машенцева Н.Г. // Роль технических наук в развитии общества. 2017. С. 158–163.
  20. Степин С.Г., Дикусар Е.А. // Достижения фундаментальной, клинической медицины и фармации. Витебск: УО “Витебский государственный медицинский университет”, 2015. С. 174–175.
  21. Сидоренко О.Д. // Агрохимия. 2012. № 11. С. 48–51.
  22. Saeid A., Prochownik E., Dobrowolska–Iwanek J. // Molecules. 2018. V. 23. № 11. P. 2897.
  23. Харькова А.С., Арляпов В.А., Туровкая А.Д., Автух А.Н., Стародумова И.П., Решетилов А.Н. // Прикл. биохимия и микробиология. 2019. Т. 55. № 2. С. 199–209.
  24. Hakeem K.R., Sabir M., Ozturk M., Akhtar M., Ibrahim F.H. // Reviews of Environmen. Contamination and Toxicology. 2016. V. 242. P. 183–217.

补充文件

附件文件
动作
1. JATS XML
2.

下载 (213KB)
3.

下载 (78KB)
4.

下载 (1MB)

版权所有 © Н.Ю. Юдина, Т.Н. Козлова, Т.Н. Абрамова, В.А. Арляпов, Л.Д. Асулян, В.А. Алферов, А.Н. Решетилов, 2023