RAS BiologyМикробиология Microbiology

  • ISSN (Print) 0026-3656
  • ISSN (Online) 3034-5464

Rhodococcus qingshengii GlMm1 as the Basis of a Biosensor for Determination of the Fungicide Carbendazim

PII
10.31857/S0026365624020086-1
DOI
10.31857/S0026365624020086
Publication type
Status
Published
Authors
Volume/ Edition
Volume 93 / Issue number 2
Pages
145-148
Abstract
The possible application of Rhоdococcus qingshengii strain GlMm1, isolated from a Dead Sea clay sample, as the basis of a biosensor for determining the benzimidazole fungicide carbendazim was investigated. High sensitivity of the biosensor under neutral pH and up to 500 mM NaCl at 2 to 160 μM carbendazim was maintained for up to 30 days.
Keywords
амперометрический микробный биосенсор родококки Rhоdococcus qingshengii кислородный электрод фунгицид карбендазим
Date of publication
15.03.2024
Year of publication
2024
Number of purchasers
0
Views
37

References

  1. 1. Китова А.Е., Кувичкина Т.Н., Аринбасарова А.Ю., Решетилов А.Н. Деградация 2,4-динитрофенола свободными и иммобилизованными клетками Rhodococcus erythropolis HL PM-1 // Прикл. биохим. микробиол. 2004. Т. 40. С. 307‒311.
  2. 2. Kitova A.E., Kuvichkina T.N., Arinbasarova A.Y., Reshetilov A.N. Degradation of 2,4-dinitrophenol by free and immobilized cells of Rhodococcus erythropolis HL PM-1 // Appl. Biochem. Microbiol. 2004. V. 40. P. 258–261.
  3. 3. Кувичкина Т.Н., Будина Д.В., Олькова А.С., Решетилов А.Н. Оценка присутствия ди-(2-этилгексил)фталата в поливинилхлоридных пластикатах масс-спектрометрическим и биосенсорным методами // Теоретическая и прикладная экология. 2015. № 4. С. 11‒15.
  4. 4. Патент на полезную модель 2015. № 156 546.
  5. 5. Belova A.A., Kaparullina E.N., Agafonova N.V., Grouzdev D.S., Kopitsyn D.S., Machulin A.V., Doronina N.V. Ancylobacter crimeensis sp. nov., a new species of aerobic methylotrophic bacteria isolated from Oak phyllosphere // Microbiology (Moscow). 2023. V. 92.P. 598–608.
  6. 6. Fang H., Wang Y., Gao C., Yan H., Dong B., Yu Y. Isolation and characterization of Pseudomonas sp. CBW capable of degrading carbendazim // Biodegradation. 2010. V. 21. P. 939–946.
  7. 7. Pande G. Domian S.J., Russell R.J., Brearley C., Kotsonis S., Cakeshott J.G. Cloning and biochemical characterization of a novel carbendazim (metyl-1H-benzimidazol-2-ylcarbamate)-hydrolyzing esterase from newly isolated Nocardiodes sp. strain SG-4G fnd its potential for use ln enzymatic bioremediation // Appl. Environ. Microbiol. 2010. V. 75. P. 2040‒2945.
  8. 8. Singh S., Singh N., Kumar V., Datta S., Wani B., Singh D., Singh K., Singh J. Toxicity, monitoring and biodegradation of the fungicide carbendazim // Environ. Chem. Lett. 2016. V. 14. Р. 317‒329.
  9. 9. Xu J.L., He J., Wang Z.C., Wang K., Li W.J., Tang S.K., Li S.P. Rhodococcus qingshengii sp. nov., a carbendazim-degrading bacterium // Int. J. Syst. Evol. Microbiol. 2007. V. 57. Р.2754‒2757.
  10. 10. Zhang M., Bai X., Li Q., Zhang L., Zhu Q., Gao S., Ke Zh., Jiang M., Hu J., Qiu J., Hong Q. Functional analysis, diversity and distribution of carbendazim hydrolases Mhel and CbmA, responsible for the initial step in carbendazim degradation // Environ. Microbiol. 2022. V. 24. P. 4803‒4817.
QR
Translate

Индексирование

Scopus

Scopus

Scopus

Crossref

Scopus

Higher Attestation Commission

At the Ministry of Education and Science of the Russian Federation

Scopus

Scientific Electronic Library