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120 related items for PubMed ID: 37694628
41. Key Factors Governing Microbial Community in Extremely Acidic Mine Drainage (pH <3). Huang Y, Li XT, Jiang Z, Liang ZL, Wang P, Liu ZH, Li LZ, Yin HQ, Jia Y, Huang ZS, Liu SJ, Jiang CY. Front Microbiol; 2021; 12():761579. PubMed ID: 34917049 [Abstract] [Full Text] [Related]
42. Characterizations of heavy metal contamination, microbial community, and resistance genes in a tailing of the largest copper mine in China. Jiang X, Liu W, Xu H, Cui X, Li J, Chen J, Zheng B. Environ Pollut; 2021 Jul 01; 280():116947. PubMed ID: 33780842 [Abstract] [Full Text] [Related]
43. Hydrogeochemical and mineralogical characteristics related to heavy metal attenuation in a stream polluted by acid mine drainage: a case study in Dabaoshan Mine, China. Zhao H, Xia B, Qin J, Zhang J. J Environ Sci (China); 2012 Jul 01; 24(6):979-89. PubMed ID: 23505864 [Abstract] [Full Text] [Related]
44. Novel Microbial Assemblages Dominate Weathered Sulfide-Bearing Rock from Copper-Nickel Deposits in the Duluth Complex, Minnesota, USA. Jones DS, Lapakko KA, Wenz ZJ, Olson MC, Roepke EW, Sadowsky MJ, Novak PJ, Bailey JV. Appl Environ Microbiol; 2017 Aug 15; 83(16):. PubMed ID: 28600313 [Abstract] [Full Text] [Related]
45. Hydrochemical characteristics and microbial community evolution of Pinglu River affected by regional abandoned coal mine drainage, Guizhou Province, China. Chen D, Zhang Y, Feng Q. Environ Sci Pollut Res Int; 2023 Jun 15; 30(27):70671-70687. PubMed ID: 37155109 [Abstract] [Full Text] [Related]
46. Characterization of the microbial community composition and the distribution of Fe-metabolizing bacteria in a creek contaminated by acid mine drainage. Sun W, Xiao E, Krumins V, Dong Y, Xiao T, Ning Z, Chen H, Xiao Q. Appl Microbiol Biotechnol; 2016 Oct 15; 100(19):8523-35. PubMed ID: 27277134 [Abstract] [Full Text] [Related]
47. Advances in biotreatment of acid mine drainage and biorecovery of metals: 1. Metal precipitation for recovery and recycle. Tabak HH, Scharp R, Burckle J, Kawahara FK, Govind R. Biodegradation; 2003 Dec 15; 14(6):423-36. PubMed ID: 14669873 [Abstract] [Full Text] [Related]
48. Effect of different vegetation on copper accumulation of copper-mine abandoned land in tongling, China. Wang R, Zhang J, Sun H, Sun S, Qin G, Song Y. J Environ Manage; 2021 May 15; 286():112227. PubMed ID: 33647673 [Abstract] [Full Text] [Related]
49. [Characteristics of Microbial Community Structure in the Surrounding Farmlands of a Mercury Mining Area and Its Environmental Driving Factors]. Chen F, Yu G, Sun YB, Zhang HL, Tian X, Xia B. Huan Jing Ke Xue; 2022 Aug 08; 43(8):4342-4352. PubMed ID: 35971730 [Abstract] [Full Text] [Related]
50. [Retrieval of Copper Pollution Information from Hyperspectral Satellite Data in a Vegetation Cover Mining Area]. Qu YH, Jiao SH, Liu SH, Zhu YQ. Guang Pu Xue Yu Guang Pu Fen Xi; 2015 Nov 08; 35(11):3176-81. PubMed ID: 26978931 [Abstract] [Full Text] [Related]
51. Comparative Analyses of the Microbial Communities Inhabiting Coal Mining Waste Dump and an Adjacent Acid Mine Drainage Creek. Sun W, Xiao E, Krumins V, Dong Y, Li B, Deng J, Wang Q, Xiao T, Liu J. Microb Ecol; 2019 Oct 08; 78(3):651-664. PubMed ID: 30854582 [Abstract] [Full Text] [Related]
52. Heavy metal(loid)s shape the soil bacterial community and functional genes of desert grassland in a gold mining area in the semi-arid region. Qi R, Xue N, Wang S, Zhou X, Zhao L, Song W, Yang Y. Environ Res; 2022 Nov 08; 214(Pt 1):113749. PubMed ID: 35760114 [Abstract] [Full Text] [Related]
53. Evaluation of hazardous metal pollution in irrigation and drinking water systems in the vicinity of a coal mine area of northwestern Bangladesh. Bhuiyan MA, Islam MA, Dampare SB, Parvez L, Suzuki S. J Hazard Mater; 2010 Jul 15; 179(1-3):1065-77. PubMed ID: 20413217 [Abstract] [Full Text] [Related]
54. Profile of bacterial communities in South African mine-water samples using Illumina next-generation sequencing platform. Keshri J, Mankazana BB, Momba MN. Appl Microbiol Biotechnol; 2015 Apr 15; 99(7):3233-42. PubMed ID: 25416590 [Abstract] [Full Text] [Related]
55. Selective removal of heavy metals from metal-bearing wastewater in a cascade line reactor. Pavlović J, Stopić S, Friedrich B, Kamberović Z. Environ Sci Pollut Res Int; 2007 Nov 15; 14(7):518-22. PubMed ID: 18062485 [Abstract] [Full Text] [Related]
56. Untangling microbial diversity and assembly patterns in rare earth element mine drainage in South China. Chen Z, Fei YH, Liu WS, Ding K, Lu J, Cai X, Cui T, Tang YT, Wang S, Chao Y, Qiu R. Water Res; 2022 Oct 15; 225():119172. PubMed ID: 36191530 [Abstract] [Full Text] [Related]
57. Effects of heavy metals on microbial communities in sediments and establishment of bioindicators based on microbial taxa and function for environmental monitoring and management. Li C, Quan Q, Gan Y, Dong J, Fang J, Wang L, Liu J. Sci Total Environ; 2020 Dec 20; 749():141555. PubMed ID: 32841857 [Abstract] [Full Text] [Related]
58. Correlating microbial community profiles with geochemical conditions in a watershed heavily contaminated by an antimony tailing pond. Xiao E, Krumins V, Tang S, Xiao T, Ning Z, Lan X, Sun W. Environ Pollut; 2016 Aug 20; 215():141-153. PubMed ID: 27182975 [Abstract] [Full Text] [Related]
59. Microbial communities and geochemical dynamics in an extremely acidic, metal-rich stream at an abandoned sulfide mine (Huelva, Spain) underpinned by two functional primary production systems. Rowe OF, Sánchez-España J, Hallberg KB, Johnson DB. Environ Microbiol; 2007 Jul 20; 9(7):1761-71. PubMed ID: 17564609 [Abstract] [Full Text] [Related]
60. The variation in microbial community structure under different heavy metal contamination levels in paddy soils. Lin Y, Ye Y, Hu Y, Shi H. Ecotoxicol Environ Saf; 2019 Sep 30; 180():557-564. PubMed ID: 31128554 [Abstract] [Full Text] [Related] Page: [Previous] [Next] [New Search]