Preview

Dokuchaev Soil Bulletin

Advanced search

Detection of Toxicity of heavy metal pollution in soils based on their respiratory activity in native soils and simulated substrates (a case-study of the protected area “YAMSKAYA steppe”)

https://doi.org/10.19047/0136-1694-2016-85-131-149

Abstract

The area “Yamskaya Steppe” of “Belogorye” preserve is located in Belgorod Oblast near the concentration of mining factories: Lebedinskiy and Stoylenskiy mining and concentration complex (MCC), complexes of “KMA-ore” and Oskol metallurgical, TPP etc. Taking into account that the “Yamskaya Steppe” is a SPNR and along with that bears a significant technogenic burden, it is necessary to investigate the properties of dominating soils and to provide the assessment of its contamination by heavy metals (HM). The main purpose of the work was to assess the toxicity of contamination of the soils of “Yamskaya Steppe” by HM in correlation to the investigated respiration activity of microorganisms of native soils of monitoring areas (MA) and artificially created mixes of soils with the dust from shops of factories, containing high concentrations of HM. The investigation of the native soils did not show the correlation of the basal respiration and the type of the soil. However weak and single case showed the correlation of basal breath and the type land use. Only in two soils of the whole 21 soils from the investigated MA the signs of disturbance of functioning of microbial community were revealed. The measurement of the bulk forms of HM showed relative increase in concentrations of Сu, Zn, Zr, Sn, Pb, As on these MA. The experiments with artificial mixtures allowed us to conclude that the implementation of the dust with HM, taken from the shops of Lebedinskiy MCC, affect the microbial activity. That causes the intensification of СО2 emission as incase of measuring of basal respiration rate and in case of substrata-induced respiration. However, that impact might be possible only in conditions of equal amount of the soil and dust in artificial mixtures, but this is impossible in natural conditions. It is necessary to find more senstive indicators of HM contamination for the investigated soils.

About the Authors

N. O. Bakunovich
Institute of Physicochemical and Biological Problems of Soil Science, Russian Academy of Sciences
Russian Federation


O. S. Khokhlova
Institute of Physicochemical and Biological Problems of Soil Science, Russian Academy of Sciences
Russian Federation


T. N. Myakshina
Institute of Physicochemical and Biological Problems of Soil Science, Russian Academy of Sciences
Russian Federation


A. V. Rusakov
Institute of Earth Sciences of Saint-Petersburg State University
Russian Federation


A. S. Shapovalov
State Natural Reserve “Belogorye”
Russian Federation


References

1. Благодатская Е.В., Ананьева Н.Д., Мякшина Т.Н. Характеристика состояния микробного сообщества по величине метаболического коэффициента // Почвоведение. 1995. № 2. С. 205-210.

2. Девятова Т.А. Биоэкологические принципы мониторинга и диагностика загрязнения почв // Вестник ВГУ. Сер. Химия. Биология. Фармация. 2005. № 1. С. 105-106.

3. Евдокимова Г.А., Зенкова И.В. Влияние выбросов алюминиевого завода на биоту почв Кольского полуострова // Почвоведение. 2003. № 8. С. 973-979.

4. Кабиров P.P., Сагитова А.Р., Суханова Н.В. Разработка и использование многокомпонентной тест-системы для оценки токсичности почвенного покрова городской территории // Экология. 1997. № 6. С. 408-411.

5. Классификация и диагностика почв России. Смоленск: Ойкумена, 2004. 342 с.

6. Мостовая А.С., Курганова И.Н., Лопес де Гереню В.О., Хохлова О.С., Русаков А.В., Шаповалов А.С. Изменение микробиологической активности серых лесных почв в процессе естественного лесовосстановления // Вестник ВГУ. Сер. Химия. Биология. Фармация. 2015. № 2. С. 64-72.

7. Терехова В.А. Биоиндикация и биотестирование в экологическом контроле // Использование и охрана природных ресурсов в России. Информационно-аналитический бюл. 2007. № 1 (91). С. 88-90.

8. Филимонова Ж.В., Покаржевский А.Д., Зайцев A.C., Криволуцкий Д.А., Фергуф С.К. Экологические механизмы устойчивости почвенной биоты к загрязнению металлами // Докл. РАН. 2000. Т. 370. С. 571-573.

9. Шунелько Е.В., Федорова А.И. Экологическая оценка городских почв и выявление уровня токсичности тяжелых металлов методом биотестирования // Вестн. Воронеж. гос ун-та. География и экология. 2000. №. 4. С. 77-83.

10. Яковлев А.С. Биологическая диагностика и мониторинг состояния почв // Почвоведение. 2000. № 1. С. 70-79.

11. Aceves M.B., Ansorena C.G.J., Dendooven L., Brookes P.C. Soil microbial biomass and organic e in a gradient of zinc concentrations in soils around a mine spoil tip // Soil Biol. Biochem. 1999. V. 31. P. 867-876.

12. Anderson T.H., Domsch K.H. The metabolic quotient for CO2 (qCO2) as a specific activity parameter to assess the effects of environmental conditions, such as pH, on the microbial biomass of forest soils // Soils Biol. Biochem. 1993. V. 25. P. 393-395.

13. Berg C., Ekbohm G., Soederstroem B.E., Staaf H. Reduction of decomposition rates of Scots pine needle litter due to heavy-metal pollution // Water, Air Soil Pollution. 1991. V. 59. P. 165-178.


Review

For citations:


Bakunovich N.O., Khokhlova O.S., Myakshina T.N., Rusakov A.V., Shapovalov A.S. Detection of Toxicity of heavy metal pollution in soils based on their respiratory activity in native soils and simulated substrates (a case-study of the protected area “YAMSKAYA steppe”). Dokuchaev Soil Bulletin. 2016;(85):131-149. (In Russ.) https://doi.org/10.19047/0136-1694-2016-85-131-149

Views: 845


Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 License.


ISSN 0136-1694 (Print)
ISSN 2312-4202 (Online)