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Author (up) Gazitua, M.C.; Morgante, V.; Poupin, M.J.; Ledger, T.; Rodriguez-Valdecantos, G.; Herrera, C.; Gonzalez-Chavez, M.D.; Ginocchio, R.; Gonzalez, B. doi  openurl
  Title The microbial community from the early-plant colonizer (Baccharis linearis) is required for plant establishment on copper mine tailings Type
  Year 2021 Publication Scientific Reports Abbreviated Journal Sci. Rep.  
  Volume 11 Issue 1 Pages 10448  
  Keywords BACTERIAL COMMUNITIES; HEAVY-METALS; PHYTOSTABILIZATION; REVEGETATION; RHIZOSPHERE; REMEDIATION; IMPACT; GROWTH; NORTH  
  Abstract Plants must deal with harsh environmental conditions when colonizing abandoned copper mine tailings. We hypothesized that the presence of a native microbial community can improve the colonization of the pioneer plant, Baccharis linearis, in soils from copper mining tailings. Plant growth and microbial community compositions and dynamics were determined in cultivation pots containing material from two abandoned copper mining tailings (Huana and Tambillos) and compared with pots containing fresh tailings or surrounding agricultural soil. Controls without plants or using irradiated microbe-free substrates, were also performed. Results indicated that bacteria (Actinobacteria, Gammaproteobacteria, and Firmicutes groups) and fungi (Glomus genus) are associated with B. linearis and may support plant acclimation, since growth parameters decreased in both irradiated (transiently without microbial community) and fresh tailing substrates (with a significantly different microbial community). Consistently, the composition of the bacterial community from abandoned copper mining tailings was more impacted by plant establishment than by differences in the physicochemical properties of the substrates. Bacteria located at B. linearis rhizoplane were clearly the most distinct bacterial community compared with those of fresh tailings, surrounding soil and non-rhizosphere abandoned tailings substrates. Beta diversity analyses showed that the rhizoplane bacterial community changed mainly through species replacement (turnover) than species loss (nestedness). In contrast, location/geographical conditions were more relevant than interaction with the plants, to explain fungal community differences.  
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  ISSN 2045-2322 ISBN Medium  
  Area Expedition Conference  
  Notes WOS:000658433400011 Approved  
  Call Number UAI @ alexi.delcanto @ Serial 1425  
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Author (up) Morgante, V.; Lopez-Lopez, A.; Flores, C.; Gonzalez, M.; Gonzalez, B.; Vasquez, M.; Rossello-Mora, R.; Seeger, M. pdf  doi
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  Title Bioaugmentation with Pseudomonas sp strain MHP41 promotes simazine attenuation and bacterial community changes in agricultural soils Type
  Year 2010 Publication Fems Microbiology Ecology Abbreviated Journal FEMS Microbiol. Ecol.  
  Volume 71 Issue 1 Pages 114-126  
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  Abstract Bioremediation is an important technology for the removal of persistent organic pollutants from the environment. Bioaugmentation with the encapsulated Pseudomonas sp. strain MHP41 of agricultural soils contaminated with the herbicide simazine was studied. The experiments were performed in microcosm trials using two soils: soil that had never been previously exposed to s-triazines (NS) and soil that had > 20 years of s-triazine application (AS). The efficiency of the bioremediation process was assessed by monitoring simazine removal by HPLC. The simazine-degrading microbiota was estimated using an indicator for respiration combined with most-probable-number enumeration. The soil bacterial community structures and the effect of bioaugmentation on these communities were determined using 16S RNA gene clone libraries and FISH analysis. Bioaugmentation with MHP41 cells enhanced simazine degradation and increased the number of simazine-degrading microorganisms in the two soils. In highly contaminated NS soil, bioaugmentation with strain MHP41 was essential for simazine removal. Comparative analysis of 16S rRNA gene clone libraries from NS and AS soils revealed high bacterial diversity. Bioaugmentation with strain MHP41 promoted soil bacterial community shifts. FISH analysis revealed that bioaugmentation increased the relative abundances of two phylogenetic groups (Acidobacteria and Planctomycetes) in both soils. Although members of the Archaea were metabolically active in these soils, their relative abundance was not altered by bioaugmentation.  
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  Series Volume Series Issue Edition  
  ISSN 0168-6496 ISBN Medium  
  Area Expedition Conference  
  Notes WOS:000272452100013 Approved  
  Call Number UAI @ eduardo.moreno @ Serial 76  
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