Wildfire and charcoal enhance nitrification and ammonium-oxidizing bacterial abundance in dry montane forest soils.
暂无分享,去创建一个
W. Holben | T. DeLuca | M. D. MacKenzie | P N Ball | M D MacKenzie | T H DeLuca | W E Holben | P. N. Ball | W. E. H. Montana
[1] D. Myrold,et al. Community composition of ammonia-oxidizing bacteria and archaea in soils under stands of red alder and Douglas fir in Oregon. , 2008, Environmental microbiology.
[2] M. Uusitalo,et al. Response of C and N transformations in birch soil to coniferous resin volatiles , 2008 .
[3] G. Aplet,et al. Charcoal and carbon storage in forest soils of the Rocky Mountain West , 2008 .
[4] T. DeLuca,et al. Estimating charcoal content in forest mineral soils , 2006 .
[5] A. Sala,et al. Effects of fire exclusion on forest structure and composition in unlogged ponderosa pine/Douglas-fir forests , 2006 .
[6] A. Sala,et al. Frequent fire alters nitrogen transformations in ponderosa pine stands of the inland northwest. , 2006, Ecology.
[7] T. DeLuca,et al. Charcoal and shrubs modify soil processes in ponderosa pine forests of western Montana , 2006, Plant and Soil.
[8] T. Urich,et al. Archaea predominate among ammonia-oxidizing prokaryotes in soils , 2006, Nature.
[9] Michael J. Gundale,et al. Temperature and source material influence ecological attributes of ponderosa pine and Douglas-fir charcoal , 2006 .
[10] A. Sala,et al. Fire exclusion and nitrogen mineralization in low elevation forests of western Montana , 2006 .
[11] W. Holben,et al. Wildfire‐Produced Charcoal Directly Influences Nitrogen Cycling in Ponderosa Pine Forests , 2006 .
[12] G. Kowalchuk,et al. Spatiotemporal stability of an ammonia-oxidizing community in a nitrogen-saturated forest soil , 2001, Microbial Ecology.
[13] W. Röling,et al. Presence of Nitrosospira cluster 2 bacteria corresponds to N transformation rates in nine acid Scots pine forest soils. , 2005, FEMS microbiology ecology.
[14] C. Kuske,et al. Changes in Nitrogen-Fixing and Ammonia-Oxidizing Bacterial Communities in Soil of a Mixed Conifer Forest after Wildfire , 2005, Applied and Environmental Microbiology.
[15] A. Hodge,et al. Dissolved organic nitrogen uptake by plants—an important N uptake pathway? , 2005 .
[16] M. Fenn,et al. Autotrophic Ammonia-Oxidizing Bacteria Contribute Minimally to Nitrification in a Nitrogen-Impacted Forested Ecosystem , 2005, Applied and Environmental Microbiology.
[17] C. White. Monoterpenes: Their effects on ecosystem nutrient cycling , 1994, Journal of Chemical Ecology.
[18] D. Burns,et al. Effects of a clearcut on the net rates of nitrification and N mineralization in a northern hardwood forest, Catskill Mountains, New York, USA , 2005 .
[19] Monica G. Turner,et al. Postfire Soil N Cycling in Northern Conifer Forests Affected by Severe, Stand-Replacing Wildfires , 2005, Ecosystems.
[20] A. Sala,et al. Forest structure and organic horizon analysis along a fire chronosequence in the low elevation forests of western Montana , 2004 .
[21] O. Zackrisson,et al. Activated carbon amendments to soil alters nitrification rates in Scots pine forests , 2004 .
[22] C. Field,et al. Ammonia-oxidizing bacteria respond to multifactorial global change. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[23] G. Lawrence,et al. Mineralization and nitrification patterns at eight northeastern USA forested research sites , 2004 .
[24] J. Prosser,et al. Cultivation-based and molecular approaches to characterisation of terrestrial and aquatic nitrifiers , 2002, Antonie van Leeuwenhoek.
[25] V. Kitunen,et al. Inhibition of nitrification in forest soil by monoterpenes , 1998, Plant and Soil.
[26] W. Boer,et al. Nitrification in Dutch heathland soils , 1990, Plant and Soil.
[27] J. H. Langenheim,et al. Inhibition of Nitrosomonas europaea by Monoterpenes from Coastal Redwood (Sequoia sempervirens) in Whole-Cell Studies , 2004, Journal of Chemical Ecology.
[28] Q. Shen,et al. Characterization of nitrifying bacteria communities of soils from different ecological regions of China by molecular and conventional methods , 2004, Biology and Fertility of Soils.
[29] C. Tebbe,et al. Liming induces growth of a diverse flora of ammonia-oxidising bacteria in acid spruce forest soil as determined by SSCP and DGGE , 2003 .
[30] P. Högberg,et al. Nitrogen acquisition from inorganic and organic sources by boreal forest plants in the field , 2003, Oecologia.
[31] D. Myrold,et al. Ammonia-Oxidizing Bacteria along Meadow-to-Forest Transects in the Oregon Cascade Mountains , 2003, Applied and Environmental Microbiology.
[32] M. Nilsson,et al. Nitrogen mineralization and phenol accumulation along a fire chronosequence in northern Sweden , 2002, Oecologia.
[33] G. Kowalchuk,et al. Nitrosomonas europaea-like bacteria detected as the dominant β-subclass Proteobacteria ammonia oxidisers in reference and limed acid forest soils , 2002 .
[34] M. Nicolaisen,et al. Denaturing gradient gel electrophoresis (DGGE) approaches to study the diversity of ammonia-oxidizing bacteria. , 2002, Journal of microbiological methods.
[35] T. Martin Embley,et al. Grassland Management Regimens Reduce Small-Scale Heterogeneity and Species Diversity of β-Proteobacterial Ammonia Oxidizer Populations , 2002, Applied and Environmental Microbiology.
[36] M. Klotz,et al. Diversity of ammonia monooxygenase operon in autotrophic ammonia-oxidizing bacteria , 2002, Archives of Microbiology.
[37] G. Kowalchuk,et al. Nitrification in acid soils: micro-organisms and mechanisms , 2001 .
[38] T. DeLuca,et al. Prescribed Fire Alters the Impact of Wildfire on Soil Biochemical Properties in a Ponderosa Pine Forest , 2001 .
[39] G. Kowalchuk,et al. Ammonia-oxidizing bacteria: a model for molecular microbial ecology. , 2001, Annual review of microbiology.
[40] M. Wagner,et al. Phylogeny of All Recognized Species of Ammonia Oxidizers Based on Comparative 16S rRNA and amoA Sequence Analysis: Implications for Molecular Diversity Surveys , 2000, Applied and Environmental Microbiology.
[41] T. DeLuca,et al. Effects of selection harvest and prescribed fire on the soil nitrogen status of ponderosa pine forests , 2000 .
[42] H. Verhoef,et al. Temporal and spatial variation of nitrogen transformations in a coniferous forest soil , 2000 .
[43] H. Fritze,et al. Charcoal as a habitat for microbes and its effect on the microbial community of the underlying humus , 2000 .
[44] G. Kowalchuk,et al. Molecular analysis of ammonia-oxidising bacteria in soil of successional grasslands of the Drentsche A (The Netherlands). , 2000, FEMS microbiology ecology.
[45] G. Kowalchuk,et al. Changes in the community structure of ammonia-oxidizing bacteria during secondary succession of calcareous grasslands. , 2000, Environmental microbiology.
[46] D. Paré,et al. Soil, pH and N availability effects on net nitrification in the forest floors of a range of boreal forest stands , 1999 .
[47] Daniel G. Neary,et al. Fire effects on belowground sustainability: a review and synthesis , 1999 .
[48] T. Martin Embley,et al. Analysis of β-Subgroup Proteobacterial Ammonia Oxidizer Populations in Soil by Denaturing Gradient Gel Electrophoresis Analysis and Hierarchical Phylogenetic Probing , 1998, Applied and Environmental Microbiology.
[49] D. Wardle,et al. The charcoal effect in Boreal forests: mechanisms and ecological consequences , 1998, Oecologia.
[50] David Posada,et al. MODELTEST: testing the model of DNA substitution , 1998, Bioinform..
[51] J. Thompson,et al. The CLUSTAL_X windows interface: flexible strategies for multiple sequence alignment aided by quality analysis tools. , 1997, Nucleic acids research.
[52] G. Kowalchuk,et al. Analysis of ammonia-oxidizing bacteria of the beta subdivision of the class Proteobacteria in coastal sand dunes by denaturing gradient gel electrophoresis and sequencing of PCR-amplified 16S ribosomal DNA fragments , 1997, Applied and environmental microbiology.
[53] S. Arno,et al. Old growth ponderosa pine and western larch stand structures: Influences of pre-1900 fires and fire exclusion. Forest Service research paper , 1997 .
[54] J. Rebek,et al. Acceleration of a Diels–Alder reaction by a self-assembled molecular capsule , 1997, Nature.
[55] G. Knudsen,et al. Isolation and purification of bacterial community DNA from environmental samples. , 1997 .
[56] S. Hart,et al. High rates of nitrification and nitrate turnover in undisturbed coniferous forests , 1997, Nature.
[57] Herbert J. Kronzucker,et al. Conifer root discrimination against soil nitrate and the ecology of forest succession , 1997, Nature.
[58] J. Prosser,et al. Molecular diversity of soil and marine 16S rRNA gene sequences related to beta-subgroup ammonia-oxidizing bacteria , 1996, Applied and environmental microbiology.
[59] David A. Wardle,et al. Key ecological function of charcoal from wildfire in the Boreal forest , 1996 .
[60] Roderic D. M. Page,et al. TreeView: an application to display phylogenetic trees on personal computers , 1996, Comput. Appl. Biosci..
[61] Thomas P. Clausen,et al. Effects of balsam poplar (Populus balsamifera) tannins and low molecular weight phenolics on microbial activity in taiga floodplain soil: implications for changes in N cycling during succession , 1996 .
[62] J. Saunders,et al. Amplification of 16S ribosomal RNA genes of autotrophic ammonia-oxidizing bacteria demonstrates the ubiquity of nitrosospiras in the environment. , 1995, Microbiology.
[63] Joe H. Scott,et al. Age-class structure of old growth ponderosa pine/douglas-fir stands and its relationship to fire history. Forest Service research paper , 1995 .
[64] J. A. Moore,et al. The Role of Nutrition in the Health of Inland Western Forests , 1994 .
[65] A. Uitterlinden,et al. Profiling of complex microbial populations by denaturing gradient gel electrophoresis analysis of polymerase chain reaction-amplified genes coding for 16S rRNA , 1993, Applied and environmental microbiology.
[66] C. White. The role of monoterpenes in soil nitrogen cycling processes in ponderosa pine , 1991 .
[67] I. Suzuki,et al. Ammonia or Ammonium Ion as Substrate for Oxidation by Nitrosomonas europaea Cells and Extracts , 1974, Journal of bacteriology.
[68] A. M. Lavermana,et al. Temporal and spatial variation of nitrogen transformations in a coniferous forest soil , 2022 .