Bacterial Diversity of Historic Iron-Containing Water Sources of the Kaliningrad Region

Мұқаба

Дәйексөз келтіру

Толық мәтін

Ашық рұқсат Ашық рұқсат
Рұқсат жабық Рұқсат берілді
Рұқсат жабық Тек жазылушылар үшін

Аннотация

The Kaliningrad region has a rich historical heritage, including several water sources with high iron content. Known since the end of the 19th century, they are rich in ferrous iron, which is oxidized by bacterial communities. They include many different taxonomic groups of bacteria. In this work, for the first time, profiling of microbial communities of iron-containing sources in the Kaliningrad region was carried out; During the study, 6 samples were taken from four geographical locations. Based on the results of profiling, taxonomic groups were identified belonging to the phyla Acidobacteriota, Desulfobacteriota, Cyanobacteriota, Proteobacteria, Nitrospirota, and among the predominant groups the gammaproteobacterium of the genus Gallionella stands out.

Толық мәтін

Рұқсат жабық

Авторлар туралы

E. Suprunov

I. Kant Baltic Federal University

Email: Li.sun.v.29@gmail.com
Ресей, Kaliningrad, 236016

I. Shnurova

I. Kant Baltic Federal University

Email: Li.sun.v.29@gmail.com
Ресей, Kaliningrad, 236016

B. Efimenko

I. Kant Baltic Federal University

Email: Li.sun.v.29@gmail.com
Ресей, Kaliningrad, 236016

V. Lisun

I. Kant Baltic Federal University

Хат алмасуға жауапты Автор.
Email: Li.sun.v.29@gmail.com
Ресей, Kaliningrad, 236016

Әдебиет тізімі

  1. ЦВ 1.04.46-00 А “МВИ массовой концентрации железа в пробах питьевых и природных вод фотометрическим методом.” Редакция 2, 2008 г.
  2. Anandan R., Dharumadurai D., Manogaran G. P. An introduction to Actinobacteria // Actinobacteria ‒ basics and biotechnological applications / Eds. D. Dhanasekaran, Y. Jiang. IntechOpen, 2016. P. 4‒5.
  3. Emerson D., Scott J. J., Benes J., Bowden W. Microbial iron oxidation in the Arctic tundra and its implications for biogeochemical cycling // Appl. Environ. Microbiol. 2015. V. 81. P. 8066‒8075.
  4. Emerson D., Weiss J. V. Bacterial iron oxidation in circumneutral freshwater habitats: findings from the field and the laboratory // Geomicrobiol. J. 2004. V. 21. P. 405‒414.
  5. Reis M. P., Avila M. P., Costa P. S., Barbosa F. A., Laanbroek H. J., Chartone-Souza E., Nascimento A. M. The influence of human settlement on the distribution and diversity of iron-oxidizing bacteria belonging to the Gallionellaceae in tropical streams // Front. Microbiol. 2014. V. 5. Art. 630.
  6. Singh V. K., Singh A. L., Singh R., Kumar A. Iron oxidizing bacteria: insights on diversity, mechanism of iron oxidation and role in management of metal pollution // Environ. Sustain. 2018. V. 1. P. 221–231.
  7. Smalley N. E. Taipale S., De Marco P., Doronina N. V., Kyrpides N., Shapiro N., Kalyuzhnaya M. G. Functional and genomic diversity of methylotrophic Rhodocyclaceae: description of Methyloversatilis discipulorum sp. nov. // Int. J. Syst. Evol. Microbiol. 2015. V. 65. P. 2227‒2233.

Қосымша файлдар

Қосымша файлдар
Әрекет
1. JATS XML
2. Fig. 1. The general profile of microbial communities of sediments (a) and microbial mats (b) of the studied samples. The ratio of representatives of families within the phylum Pseudomonadota in sediments (c) and microbial mats (d).

Жүктеу (302KB)
3. Fig. 2. Values of the Shannon and Simpson alpha diversity indices for sediment samples and microbial mats (a). A heat map showing differences in sample communities from different geographical points in the Kaliningrad region (b). The color of the square shows the similarity between each two samples. The range from blue to red corresponds to the similarity from near to far.

Жүктеу (185KB)

© Russian Academy of Sciences, 2024