Differential Response of Soil Microbial Community Structure in Coal Mining Areas during Different Ecological Restoration Processes
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Area Profile
2.2. Soil Sample Collection and Determination of Physicochemical Parameters
2.3. Microbial High-Throughput Sequencing
2.4. Data Processing and Statistical Analysis
2.5. Molecular Ecological Networks
3. Results
3.1. Changes in Soil Nutrient and Moisture Indicators
3.2. Analysis of Microbial α Diversity
3.3. Characterization of the Composition and Variation of Bacterial Communities and Analysis of β Diversity
3.4. Relationship between Soil Environmental Factors and Microbial Communities
3.5. Microbial Network Analysis
4. Discussion
4.1. Microbial Community Composition and Structure Analysis
4.2. Soil Microbial Molecular Ecological Networks and Key Species Analysis
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Ma, S.Y.; De Frenne, P.; Vanhellemont, M.; Wasof, S.; Boeckx, P.; Brunet, J.; Cousins, S.; Decocq, G.; Kolb, A.; Lemke, I.; et al. Local soil characteristics determine the microbial communities under forest understorey plants along a latitudinal gradient. Basic Appl. Ecol. 2019, 36, 34–44. [Google Scholar] [CrossRef]
- Cui, H.; Wang, C.H.; Gu, Z.H.; Zhu, H.H.; Fu, S.L.; Yao, Q. Evaluation of soil storage methods for soil microbial community using genetic and metabolic fingerprintings. Eur. J. Soil Biol. 2014, 63, 55–63. [Google Scholar] [CrossRef]
- Wagg, C.; Hautier, Y.; Pellkofer, S.; Banerjee, S.; Schmid, B.; van der Heijden, M.G. Diversity and asynchrony in soil microbial communities stabilizes ecosystem functioning. eLife 2021, 10, 62813. [Google Scholar] [CrossRef]
- Waldrop, M.P.; Firestone, M.K. Response of microbial community composition and function to soil climate change. Microb. Ecol. 2006, 52, 716–724. [Google Scholar] [CrossRef] [PubMed]
- Steinauer, K.; Chatzinotas, A.; Eisenhauer, N. Root exudate cocktails: The link between plant diversity and soil microorganisms? Ecol. Evol. 2016, 6, 7387–7396. [Google Scholar] [CrossRef] [Green Version]
- Behera, N.; Sahani, U. Soil microbial biomass and activity in response to Eucalyptus plantation and natural regeneration on tropical soil. For. Ecol. Manag. 2003, 174, 1–11. [Google Scholar] [CrossRef]
- Mohseni, N.; Bol, R. Variation in the rate of land subsidence induced by groundwater extraction and its effect on the response pattern of soil microbial communities. Earth Surf. Process. Landf. 2021, 46, 1898–1908. [Google Scholar] [CrossRef]
- de Vries, F.T.; Manning, P.; Tallowin, J.R.B.; Mortimer, S.R.; Pilgrim, E.S.; Harrison, K.A.; Hobbs, P.J.; Quirk, H.; Shipley, B.; Cornelissen, J.H.C.; et al. Abiotic drivers and plant traits explain landscape-scale patterns in soil microbial communities. Ecol. Lett. 2012, 15, 1230–1239. [Google Scholar] [CrossRef] [PubMed]
- Nunan, N.; Leloup, J.; Ruamps, L.S.; Pouteau, V.; Chenu, C. Effects of habitat constraints on soil microbial community function. Sci. Rep. 2017, 7, 4280. [Google Scholar] [CrossRef] [Green Version]
- Balser, T.C.; Firestone, M.K. Linking microbial community composition and soil processes in a California annual grassland and mixed-conifer forest. Biogeochemistry 2005, 73, 395–415. [Google Scholar] [CrossRef]
- Widdig, M.; Heintz-Buschart, A.; Schleuss, P.M.; Guhr, A.; Borer, E.T.; Seabloom, E.W.; Spohn, M. Effects of nitrogen and phosphorus addition on microbial community composition and element cycling in a grassland soil. Soil Biol. Biochem. 2020, 151, 108041. [Google Scholar] [CrossRef]
- Sanchez, E.; Zabaleta, R.; Fabani, M.P.; Rodriguez, R.; Mazza, G. Effects of the amendment with almond shell, bio-waste and almond shell-based biochar on the quality of saline-alkali soils. J. Environ. Manag. 2022, 318, 115604. [Google Scholar] [CrossRef] [PubMed]
- Peng, W.X.; Wang, F.; Song, T.Q.; Tan, Q.J.; Du, H.; Zeng, F.P.; Wang, K.L.; Zhang, H.; Zeng, Z.X. The Biogeography of Forest Soil Microbial Functional Diversity Responds to Forest Types across Guangxi, Southwest China. Forests 2021, 12, 1578. [Google Scholar] [CrossRef]
- Liu, Z.F.; Fu, B.J.; Zheng, X.X.; Liu, G.H. Plant biomass, soil water content and soil N, P ratio regulating soil microbial functional diversity in a temperate steppe: A regional scale study. Soil Biol. Biochem. 2010, 42, 445–450. [Google Scholar] [CrossRef]
- Fu, D.G.; Wu, X.N.; Duan, C.Q.; Smith, A.R.; Jones, D.L. Traits of dominant species and soil properties co -regulate soil microbial communities across land restoration types in a subtropical plateau region of Southwest China. Ecol. Eng. 2020, 153, 105897. [Google Scholar] [CrossRef]
- Yinga, O.E.; Kumar, K.S.; Chowlani, M.; Tripathi, S.K.; Khanduri, V.P.; Singh, S.K. Influence of land-use pattern on soil quality in a steeply sloped tropical mountainous region, India. Arch. Agron. Soil Sci. 2022, 68, 852–872. [Google Scholar] [CrossRef]
- Wang, X.; Li, Y.; Wei, Y.; Meng, H.S.; Cao, Y.Z.; Lead, J.R.; Hong, J.P. Effects of fertilization and reclamation time on soil bacterial communities in coal mining subsidence areas. Sci. Total Environ. 2020, 739, 139882. [Google Scholar] [CrossRef]
- Liu, X.; Bai, Z.; Zhou, W.; Cao, Y.G.; Zhang, G.J. Changes in soil properties in the soil profile after mining and reclamation in an opencast coal mine on the Loess Plateau, China. Ecol. Eng. 2017, 98, 228–239. [Google Scholar] [CrossRef] [Green Version]
- Li, Z.; Wu, S.L.; Zhang, S.W.; Nie, C.J.; Li, Y.; Huang, Y.F. Optimization of Land Reuse Structure in Coal Mining Subsided Areas Considering Regional Economic Development: A Case Study in Pei County, China. Sustainability 2020, 12, 3335. [Google Scholar] [CrossRef] [Green Version]
- Hu, T.H.; Chang, J.; Liu, X.X.; Feng, S. Integrated methods for determining restoration priorities of coal mining subsidence areas based on green infrastructure: A case study in the Xuzhou urban area, of China. Ecol. Indic. 2018, 94, 164–174. [Google Scholar] [CrossRef]
- Zhu, M.; Bazail, N.A.; Li, X.L.; Huang, M.; Hui, W. Research on wetland ecological restoration of coal mining subsidence area in Suzhou, China. Fresenius Environ. Bull. 2017, 26, 5177–5183. [Google Scholar]
- Yao, X.M.; Cui, X. Agricultural suitability assessment and rehabilitation of subsided coal mines: A case study of the Dawu coal mine in Jiangsu, Eastern China. Geosci. Lett. 2021, 8, 28. [Google Scholar] [CrossRef]
- Ayala-Orozco, B.; Gavito, M.E.; Mora, F.; Siddique, I.; Balvanera, P.; Jaramillo, V.J.; Cotler, H.; Romero-Duque, L.P.; Martínez-Meyer, E. Resilience of soil properties to land-use change in a tropical dry forest ecosystem. Land Degrad. Dev. 2018, 29, 315–325. [Google Scholar] [CrossRef]
- Van der Heijden, M.; Bardgett, R.D.; Van Straalen, N.M. The unseen majority: Soil microbes as drivers of plant diversity and productivity in terrestrial ecosystems. Ecol. Lett. 2008, 11, 296–310. [Google Scholar] [CrossRef] [PubMed]
- Liu, J.G. Study on Measures for Restoration and Management of Mine Geological Environment in Coal Mining Subsidence Area. Huabei Nat. Resour. 2017, 3, 118–121. [Google Scholar]
- Cheng, W.; Bian, Z.F.; Dong, J.H.; Lei, S.G. Soil properties in reclaimed farmland by filling subsidence basin due to underground coal mining with mineral wastes in China. Trans. Nonferrous Met. Soc. China 2014, 24, 2627–2635. [Google Scholar] [CrossRef]
- Wright, I.A.; McCarthy, B.; Belmer, N.; Price, P. Subsidence from an underground coal mine and mine wastewater discharge causing water pollution and degradation of aquatic ecosystems. Water Air Soil Pollut. 2015, 226, 348. [Google Scholar] [CrossRef]
- Bi, Y.L. Research advance of application of arbuscular mycorrhizal fungi to ecological remediation in subsided land of coal mining areas. Mycosystema 2017, 36, 800–806. [Google Scholar]
- Ma, J.; Gonzalez-Ollauri, A.; Zhang, Q.; Xiao, D.; Chen, F. Ecological network analysis to assess the restoration success of disturbed mine soil in Zoucheng, China. Land Degrad. Dev. 2021, 32, 5393–5411. [Google Scholar] [CrossRef]
- Ezeokoli, O.T.; Mashigo, S.K.; Paterson, D.G.; Bezuidenhout, C.C.; Adeleke, R.A. Microbial community structure and relationship with physicochemical properties of soil stockpiles in selected South African opencast coal mines. Soil Sci. Plant Nutr. 2019, 65, 332–341. [Google Scholar] [CrossRef]
- Ezeokoli, O.T.; Bezuidenhout, C.C.; Maboeta, M.S.; Khasa, D.P.; Adeleke, R.A. Structural and functional differentiation of bacterial communities in post-coal mining reclamation soils of South Africa: Bioindicators of soil ecosystem restoration. Sci. Rep. 2020, 10, 1759. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Hou, H.P.; Wang, C.; Ding, Z.Y.; Zhang, S.L.; Yang, Y.J.; Ma, J.; Chen, F.; Li, J.R. Variation in the Soil Microbial Community of Reclaimed Land over Different Reclamation Periods. Sustainability 2018, 10, 2286. [Google Scholar] [CrossRef] [Green Version]
- Liu, Y.; Lei, S.G.; Gong, C.G. Comparison of plant and microbial communities between an artificial restoration and a natural restoration topsoil in coal mining subsidence area. Environ. Earth Sci. 2019, 78, 204. [Google Scholar] [CrossRef]
- Tan, M.; Zhou, X.; Li, G.; Ge, M.Y. Soil characteristics and microbial responses in post-mine reclamation areas in a typical resource-based city, China. J. Environ. Manag. 2021, 29, 273–286. [Google Scholar] [CrossRef]
- Brooks, J.P.; Adeli, A.; Smith, R.K.; McGrew, R.; Lang, D.J.; Read, J.J. Bacterial Community Structure Recovery in Reclaimed Coal Mined Soil under Two Vegetative Regimes. J. Environ. Qual. 2019, 48, 1029–1037. [Google Scholar] [CrossRef]
- Li, P.F.; Zhang, X.C.; Hao, M.D.; Cui, Y.X.; Zhu, S.L.; Zhang, Y.J. Effects of Vegetation Restoration on Soil Bacterial Communities, Enzyme Activities, and Nutrients of Reconstructed Soil in a Mining Area on the Loess Plateau, China. Sustainability 2019, 11, 2295. [Google Scholar] [CrossRef] [Green Version]
- Rodriguez, L.; Ruiz, E.; Alonso-Azcarate, J.; Rincón, J. Heavy metal distribution and chemical speciation in tailings and soils around a Pb-Zn mine in Spain. J. Environ. Manag. 2009, 90, 1106–1116. [Google Scholar] [CrossRef]
- Fan, D.; Zhang, Y.; Qin, S.; Wu, B. Relationships between Artemisia ordosica communities and environmental factors following sand-dune stabilization in the Mu Us desert, northwest China. J. For. Res. 2017, 28, 115–124. [Google Scholar] [CrossRef] [Green Version]
- Olsen, S.R. Estimation of Available Phosphorus in Soils by Extraction with Sodium Bicarbonate (No. 939); Department of Agriculture: Washington, DC, USA, 1954.
- Fu, S.F.; He, S.; Shi, X.S.; Katukuri, N.R.; Dai, M.; Guo, R.B. The chemical properties and microbial community characterization of the thermophilic microaerobic pretreatment process. Bioresour. Technol. 2015, 198, 497–502. [Google Scholar] [CrossRef]
- Koistinen, J.; Sjoblom, M.; Spilling, K. Total Nitrogen Determination by a Spectrophotometric Method. Methods Mol. Biol. 2020, 1980, 81–86. [Google Scholar]
- Zhou, S.L.; Sun, Y.; Yue, G.C.; Zhang, H.; Wang, Z.Q.; Liu, S.C.; Peng, R.Z.; Yuan, S.C.; Li, Z.X.; Cui, J.S. Spatial Distribution Characteristics and Driving Factors of Aerobic Denitrification Bacterial Community Structure from Baiyangdian Lake in Xiong’an New Area During the Winter Freezing Period. Environ. Sci. 2020, 41, 11. [Google Scholar]
- Zhang, Z.W.; Gen, Z.Y.; Zhang, T.N.; Zhou, S.L.; Cui, J.S.; Luo, X. Spatiotemporal characteristics and key driving factors of microbial community evolution based on high-throughput absolute quantification sequencing in the Gangnan Reservoir. Acta Sci. Circumstantiae 2022, 42, 16. [Google Scholar]
- Chen, Z.J.; Lin, L.N.; Li, Y.J.; Chen, Y.; Zhang, H.; Han, H.; Wu, N.C.; Nicola, F.; Li, Y.Y.; Ren, X.M. Shifts in Rhizosphere Bacterial Community Structure, Co-occurrence Network, and Function of Miscanthus Following Cadmium Exposure. Environ. Sci. 2021, 42, 8. [Google Scholar]
- Deng, Y.; Jiang, Y.H.; Yang, Y.F.; He, Z.L.; Luo, F.; Zhou, J.Z. Molecular ecological network analyses. BMC Bioinform. 2012, 13, 113. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Zhou, J.; Deng, Y.; Luo, F.; He, Z.L.; Tu, Q.C.; Zhi, X.Y. Functional Molecular Ecological Networks. mBio 2010, 1, e00169-10. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Deng, Y.; Zhang, P.; Qin, Y.J.; Tu, Q.C.; Yang, Y.F.; He, Z.L.; Schadt, C.W.; Zhou, J.Z. Network succession reveals the importance of competition in response to emulsified vegetable oil amendment for uranium bioremediation. Environ. Microbiol. 2016, 18, 205–218. [Google Scholar] [CrossRef] [PubMed]
- Tya, B.; Jxab, C.; Zzb, C.; Ywa, B. Effects of biochar-based fertilizer on soil bacterial network structure in a karst mountainous area—ScienceDirect. Catena 2021, 206, 105535. [Google Scholar]
- Ma, J.; Lu, Y.Q.; Zhang, Q.; Li, X.X.; Xiao, D.; Chen, F. Effects of Coal Mining Subsidence on Soil Microbial Community in the Loess Plateau. Acta Pedol. Sin. 2021, 58, 11. [Google Scholar]
- Newman, M.E.J. Modularity and community structure in networks. Proc. Natl. Acad. Sci. USA 2006, 103, 8577–8582. [Google Scholar] [CrossRef]
- Zhou, J.; Deng, Y.; Luo, F.; He, Z.L.; Yang, Y.F. Phylogenetic Molecular Ecological Network of Soil Microbial Communities in Response to Elevated CO2. Mbio 2011, 2, e00122-11. [Google Scholar] [CrossRef] [Green Version]
- Berry, D.; Widder, S. Deciphering microbial interactions and detecting keystone species with co-occurrence networks. Front. Microbiol. 2014, 5, 219. [Google Scholar] [CrossRef] [Green Version]
- Li, B.; Li, Y.S.; Wei, J.B.; Song, Y.X.; Shi, R.J.; Hou, Y.X.; Liu, S.Y. Effects of Different Land Use Typess on the Molecular Ecological Network of Soil Bacteria. Environ. Sci. 2020, 41, 10. [Google Scholar]
- Zhang, Z.C.; Yang, J.Y.; Hao, B.H.; Hao, L.J.; Luo, J.Q.; Li, X.; Diao, F.W.; Zhang, J.X.; Guo, W. Potential of Arbuscular Mycorrhizal Fungi, Biochar, and Combined Amendment on Sandy Soil Improvement Driven by Microbial Community. Environ. Sci. 2021, 42, 2066–2079. [Google Scholar]
- Luo, C.; Rodriguez-R, L.M.; Johnston, E.R.; Wu, L.; Cheng, L.; Xue, K.; Tu, Q.; Deng, Y.; He, Z.; Shi, J.Z.; et al. Soil microbial community responses to a decade of warming as revealed by comparative metagenomics. Appl. Environ. Microbiol. 2014, 80, 1777. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Tan, L.; Gu, S.; Li, S.; Ren, Z.H.; Deng, Y.; Liu, Z.H.; Gong, Z.H.; Xiao, W.J.; Hu, Q.L. Responses of Microbial Communities and Interaction Networks to Different Management Practices in Tea Plantation Soils. Sustainability 2019, 11, 4428. [Google Scholar] [CrossRef] [Green Version]
- Gu, S.S.; Hu, Q.L.; Cheng, Y.Q.; Bai, L.Y.; Liu, Z.H.; Xiao, W.J.; Gong, Z.H.; Wu, Y.N.; Feng, K.; Deng, Y.; et al. Application of organic fertilizer improves microbial community diversity and alters microbial network structure in tea (Camellia sinensis) plantation soils. Soil Tillage Res. 2019, 195, 104356. [Google Scholar] [CrossRef]
- Chen, M.L.; Zeng, Q.C.; Huang, Y.M.; Ni, Y.X. Effects of the Farmland-to-Forest/Grassland Conversion Program on the Soil Bacterial Community in the Loess Hilly Region. Environ. Sci. 2018, 39, 1824–1832. [Google Scholar]
- Huang, J.Y.; Li, C.X. Main factors of soil microbial diversity and their effect on cropland. J. Henan Univ. Sci. Technol. (Agric. Sci.) 2004, 24, 10–13. [Google Scholar]
- Ma, J.; Nergui, S.; Han, Z.; Huang, G.N.; Li, H.R.; Zhang, R.; Zhu, L.Y.; Liao, J.F. The Variation of the Soil Bacterial and Fungal Community Is Linked to Land Use Types in Northeast China. Sustainability 2019, 11, 3286. [Google Scholar] [CrossRef] [Green Version]
- Ma, J.; Lu, Y.; Chen, F.; Li, X.X.; Xiao, D.; Wang, H. Molecular Ecological Network Complexity Drives Stand Resilience of Soil Bacteria to Mining Disturbances among Typical Damaged Ecosystems in China. Microorganisms 2020, 8, 433. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Li, J.; Xin, Z.; Yan, J.; Li, H.; Chen, J.; Ding, G. Physicochemical and microbiological assessment of soil quality on a chronosequence of a mine reclamation site. Eur. J. Soil Sci. 2018, 69, 1056–1067. [Google Scholar] [CrossRef]
- Yuan, C.Y.; Li, F.Y.; Yuan, Z.Q.; Li, G.Y.; Liang, X.Q. Response of bacterial communities to mining activity in the alpine area of the Tianshan Mountain region, China. Environ. Sci. Pollut. Res. 2021, 28, 15806–15818. [Google Scholar] [CrossRef]
- Ma, J.; Dong, W.X.; Zhu, Y.F.; Xiao, D.; Cheng, F. Characteristics and Assembly Process of Reclaimed Soil Microbial Communities in Eastern Plain Mining Areas. Environ. Sci. 2022, 43, 3844–3853. [Google Scholar]
- Wolinska, A.; Kuzniar, A.; Zielenkiewicz, U.; Izak, Z.; Szafranek-Nakonieczna, A.; Banach, A.; Błaszczyk, M. Bacteroidetes as a sensitive biological indicator of agricultural soil usage revealed by a culture-independent approach. Appl. Soil Ecol. 2017, 119, 128–137. [Google Scholar] [CrossRef]
- Armstrong, A.; Waldron, S.; Whitaker, J.; Ostle, N.J. Wind farm and solar park effects on plant-soil carbon cycling: Uncertain impacts of changes in ground-level microclimate. Glob. Chang. Biol. 2014, 20, 1699–1706. [Google Scholar]
- Schlesinger, W.H.; Dietze, M.C.; Jackson, R.B.; Phillips, R.P.; Rhoades, C.C.; Rustad, L.E.; Vose, J.M. Forest biogeochemistry in response to drought. Glob. Chang. Biol. 2016, 22, 2318–2328. [Google Scholar] [CrossRef]
- Classen, A.T.; Sundqvist, M.K.; Henning, J.A.; Newman, G.S.; Moore, J.A.M.; Cregger, M.A.; Moorhead, L.C.; Patterson, C.M. Direct and indirect effects of climate change on soil microbial and soil microbial-plant interactions: What lies ahead? Ecosphere 2015, 6, 1–21. [Google Scholar] [CrossRef]
- Baharin, K.A.; Rahman, H.A.; Hassan, M.Y.; Gan, C.K. Short-term forecasting of solar photovoltaic output power for tropical climate using ground-based measurement data. J. Renew. Sustain. Energy 2016, 8, 053701. [Google Scholar]
- Wang, J.N.; Wang, J.J.; Zhang, Z.; Li, Z.F.; Zhang, Z.G.; Zhao, D.C.; Wang, L.D.; Lu, F.; Li, Y.Z. Shifts in the Bacterial Population and Ecosystem Functions in Response to Vegetation in the Yellow River Delta Wetlands. Msystems 2020, 5, e00412-20. [Google Scholar] [PubMed]
- Li, J.; Yang, C.; Zhou, H.; Shao, S.Q. Responses of plant diversity and soil microorganism diversity to water and nitrogen additions in the Qinghai-Tibetan Plateau. Glob. Ecol. Conserv. 2020, 22, e01003. [Google Scholar]
- Magill, A.H.; Aber, J.D. Variation in soil net mineralization rates with dissolved organic carbon additions. Soil Biol. Biochem. 2000, 32, 597–601. [Google Scholar] [CrossRef] [Green Version]
- Guo, P.T.; Wu, W.; Liu, H.B.; Li, M.F. Effects of land use and topographical attributes on soil properties in an agricultural landscape. Soil Res. 2011, 49, 606–613. [Google Scholar] [CrossRef]
- Keshavarzi, A.; Sarmadian, F.; Omran, E.; Iqbal, M. A neural network model for estimating soil phosphorus using terrain analysis. Egypt. J. Remote Sens. Space Sci. 2015, 18, 127–135. [Google Scholar] [CrossRef] [Green Version]
- Yan, P.; Lin, K.R.; Yu, C.X.; Tu, X.J. Spatial Variability of Soil Phosphorus and Potassium and Its Influencing Factors in the Fragile Red Beds Ecosystem in Southern China. Pol. J. Environ. Stud. 2021, 30, 5307–5315. [Google Scholar] [CrossRef]
- Siles, J.A.; Margesin, R. Abundance and Diversity of Bacterial, Archaeal, and Fungal Communities along an Altitudinal Gradient in Alpine Forest Soils: What Are the Driving Factors? Microb. Ecol. 2016, 72, 207–220. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Araujo, R.; Gupta VV, S.R.; Reith, F.; Reith, F.; Bissett, A.; Mele, P.; Franco, C.M.M. Biogeography and emerging significance of Actinobacteria in Australia and Northern Antarctica soils. Soil Biol. Biochem. 2020, 146, 107805. [Google Scholar] [CrossRef]
- Polti, M.A.; Daniel Aparicio, J.; Benimeli, C.S.; Amoroso, M.J. Simultaneous bioremediation of Cr (VI) and lindane in soil by actinobacteria. Int. Biodeterior. Biodegrad. 2014, 88, 48–55. [Google Scholar] [CrossRef]
- Roman, J.R.; Chilton, A.M.; Canton, Y.; Muñoz-Rojas, M. Assessing the viability of cyanobacteria pellets for application in arid land restoration. J. Environ. Manag. 2020, 270, 110795. [Google Scholar] [CrossRef] [PubMed]
- Meng, H.Q.; Xiong, R.P.; Wang, C.; Gao, C.L. Spatial Variability of Soil Moisture, Organic Matter Content and Soil Texture in Coal Mining Subsidence Area as Affected by Land Use. Acta Petrol. Sin. 2018, 55, 12. [Google Scholar]
- Yan, T.T.; Xue, J.H.; Zhou, Z.D.; Wu, Y.B. Biochar-based fertilizer amendments improve the soil microbial community structure in a karst mountainous area. Sci. Total Environ. 2021, 794, 148757. [Google Scholar] [CrossRef] [PubMed]
- Sun, J.; Yang, L.; Wei, J.; Quan, J.; Yang, X. The responses of soil bacterial communities and enzyme activities to the edaphic properties of coal mining areas in Central China. PLoS ONE 2020, 15, e0231198. [Google Scholar] [CrossRef] [PubMed]
- Peura, S.; Bertilsson, S.; Jones, R.I.; Eiler, A. Resistant microbial cooccurrence patterns inferred by network topology. Appl. Environ. Microbiol. 2015, 81, 2090–2097. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Wang, Z.Y.; Wang, J.; Gao, Y.; Dang, X.H.; Meng, Z.J. Impacts of photovoltaic power station construction on Ecology Environment in sandy area. Bull. Soil Water Conserv. 2019, 39, 191–196. [Google Scholar]
- Wang, Y.; Zhang, R.; Zheng, Q.; Deng, Y.; Van, N.J.; Zhou, J.Z.; Jiao, N.Z. Bacterioplankton community resilience to ocean acidification: Evidence from microbial network analysis. ICES J. Mar. Sci. 2016, 73, 865–875. [Google Scholar] [CrossRef]
Sample | NO3-N (mg/kg) | AN (mg/kg) | AP (mg/kg) | AK (mg/kg) | SOM (g/kg) | pH | SWC (%) |
---|---|---|---|---|---|---|---|
PV | 9.50 ± 5.21 a | 66.34 ± 29.58 a | 15.99 ± 12.03 a | 32.05 ± 11.01 b | 10.85 ± 6.71 a | 7.76 ± 0.05 a | 6.10 ± 1.60 a |
NR | 3.68 ± 1.98 b | 23.69 ± 11.80 b | 8.61 ± 1.96 a | 45.50 ± 14.02 b | 11.38 ± 5.68 a | 7.77 ± 0.04 a | 6.25 ± 2.58 a |
RC | 5.74 ± 3.98 ab | 58.64 ± 26.38 a | 13.09 ± 8.90 a | 72.52 ± 47.76 a | 15.87 ± 4.97 a | 7.72 ± 0.06 a | 6.75 ± 1.51 a |
HNR | 7.96 ± 4.15 a | 57.51 ± 33.93 a | 18.03 ± 11.10 a | 33.64 ± 12.14 b | 14.55 ± 5.28 a | 7.75 ± 0.07 a | 7.12 ± 3.09 a |
Network Parameters | PV | NR | RC | HNR |
---|---|---|---|---|
Similarity thresholds | 0.8 | 0.79 | 0.79 | 0.79 |
Total nodes | 152 | 152 | 152 | 142 |
Total links | 502 | 267 | 506 | 476 |
Positive links | 340 (67.73%) | 225 (84.27%) | 428 (84.58%) | 370 (77.73%) |
Average degree | 6.605 | 3.513 | 6.658 | 6.704 |
Average clustering coefficient | 0.313 | 0.268 | 0.341 | 0.344 |
Geodesic efficiency | 0.333 | 0.265 | 0.353 | 0.327 |
Modularity | 0.515 | 0.683 | 0.433 | 0.454 |
Total module | 18 | 24 | 13 | 14 |
Average path distance | 3.79 | 4.854 | 3.668 | 4.017 |
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations. |
© 2022 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Guo, Y.; Wu, J.; Yu, Y. Differential Response of Soil Microbial Community Structure in Coal Mining Areas during Different Ecological Restoration Processes. Processes 2022, 10, 2013. https://doi.org/10.3390/pr10102013
Guo Y, Wu J, Yu Y. Differential Response of Soil Microbial Community Structure in Coal Mining Areas during Different Ecological Restoration Processes. Processes. 2022; 10(10):2013. https://doi.org/10.3390/pr10102013
Chicago/Turabian StyleGuo, Yangnan, Junlong Wu, and Yan Yu. 2022. "Differential Response of Soil Microbial Community Structure in Coal Mining Areas during Different Ecological Restoration Processes" Processes 10, no. 10: 2013. https://doi.org/10.3390/pr10102013
APA StyleGuo, Y., Wu, J., & Yu, Y. (2022). Differential Response of Soil Microbial Community Structure in Coal Mining Areas during Different Ecological Restoration Processes. Processes, 10(10), 2013. https://doi.org/10.3390/pr10102013