Cyanobacteria and loess—an underestimated interaction
暂无分享,去创建一个
F. Lehmkuhl | J. Meriluoto | S. Marković | G. Codd | U. Hambach | I. Obreht | Z. Svirčev | Tamara Dulić
[1] F. Lehmkuhl,et al. A critical reevaluation of palaeoclimate proxy records from loess in the Carpathian Basin , 2019, Earth-Science Reviews.
[2] G. Certini,et al. Cyanobacteria Inoculation Improves Soil Stability and Fertility on Different Textured Soils: Gaining Insights for Applicability in Soil Restoration , 2018, Front. Environ. Sci..
[3] Christian Zeeden,et al. Approaches and challenges to the study of loess—Introduction to the LoessFest Special Issue , 2018, Quaternary Research.
[4] S. Chamizo,et al. What stabilizes biological soil crusts in the Negev Desert? , 2018, Plant and Soil.
[5] P. Nunn. 50 years of research on α-amino-β-methylaminopropionic acid (β-methylaminoalanine). , 2017, Phytochemistry.
[6] Yongding Liu,et al. Cyanobacterial inoculation (cyanobacterisation): Perspectives for the development of a standardized multifunctional technology for soil fertilization and desertification reversal , 2017 .
[7] J. Meriluoto,et al. Cyanobacterial diversity and toxicity of biocrusts from the Caspian Lowland loess deposits, North Iran , 2017 .
[8] E. Javaux,et al. Cyanobacterial Contribution to Travertine Deposition in the Hoyoux River System, Belgium , 2017, Microbial Ecology.
[9] F. Lehmkuhl,et al. Tracing the influence of Mediterranean climate on Southeastern Europe during the past 350,000 years , 2016, Scientific Reports.
[10] Bettina Weber,et al. Biological Soil Crusts: An Organizing Principle in Drylands , 2016, Ecological Studies.
[11] Tobias Sprafke,et al. Loess: Rock, sediment or soil - What is missing for its definition? , 2016 .
[12] Yuan-Ming Zhang,et al. Enhanced Recovery of Biological Soil Crusts After Disturbance , 2016 .
[13] B. Weber,et al. Microstructure and Weathering Processes Within Biological Soil Crusts , 2016 .
[14] C. Colesie,et al. Composition and Macrostructure of Biological Soil Crusts , 2016 .
[15] Yunge Zhao,et al. Development of artificial moss-dominated biological soil crusts and their effects on runoff and soil water content in a semi-arid environment , 2015 .
[16] F. Rossi,et al. Role of Cyanobacterial Exopolysaccharides in Phototrophic Biofilms and in Complex Microbial Mats , 2015, Life.
[17] G. Gao,et al. Biological soil crusts: An eco-adaptive biological conservative mechanism and implications for ecological restoration , 2015 .
[18] D. Cowan,et al. Microbial ecology of hot desert edaphic systems. , 2015, FEMS microbiology reviews.
[19] L. Diels,et al. Microbial fixation of CO2 in water bodies and in drylands to combat climate change, soil loss and desertification. , 2014, New biotechnology.
[20] P. Cox,et al. Neurotoxic amino acids and their isomers in desert environments , 2015 .
[21] P. Cox,et al. The persistence of cyanobacterial toxins in desert soils , 2015 .
[22] Yuan-Ming Zhang,et al. Responses of microbial activities and soil physical-chemical properties to the successional process of biological soil crusts in the Gurbantunggut Desert, Xinjiang , 2015, Journal of Arid Land.
[23] R. P. Rastogi,et al. The high-energy radiation protectant extracellular sheath pigment scytonemin and its reduced counterpart in the cyanobacterium Scytonema sp. R77DM. , 2014, Bioresource technology.
[24] Christian George,et al. Polluted dust promotes new particle formation and growth , 2014, Scientific Reports.
[25] J. Protze,et al. Timing and spatial distribution of loess and loess-like sediments in the mountain areas of the northeastern Tibetan Plateau , 2014 .
[26] I. Smalley,et al. Loessification and hydroconsolidation: There is a connection , 2014 .
[27] Ping Li,et al. Effects of artificially cultivated biological soil crusts on soil nutrients and biological activities in the Loess Plateau , 2014, Journal of Arid Land.
[28] J. Metcalf,et al. Cyanotoxins as a potential cause of dog poisonings in desert environments , 2014, Veterinary Record.
[29] B. Weber,et al. Response of biological soil crusts to raindrop erosivity and underlying influences in the hilly Loess Plateau region, China , 2014, Biodiversity and Conservation.
[30] Z. Ding,et al. A 249 kyr stack of eight loess grain size records from northern China documenting millennial‐scale climate variability , 2014 .
[31] N. Pietrasiak,et al. Biogeomorphology of a Mojave Desert landscape — Configurations and feedbacks of abiotic and biotic land surfaces during landform evolution , 2014 .
[32] Yongding Liu,et al. Artificially accelerating the reversal of desertification: cyanobacterial inoculation facilitates the succession of vegetation communities. , 2014, Environmental science & technology.
[33] Chongfeng Bu,et al. The Study of Biological Soil Crusts: Hotspots and Prospects , 2013 .
[34] B. Buck,et al. Geomorphic controls on biological soil crust distribution: A conceptual model from the Mojave Desert (USA) , 2013 .
[35] D. Muhs. The geologic records of dust in the Quaternary , 2013 .
[36] I. Smalley,et al. Importance of biological loess crusts for loess formation in semi-arid environments , 2013 .
[37] Chunxiang Hu,et al. Assessing Level of Development and Successional Stages in Biological Soil Crusts with Biological Indicators , 2013, Microbial Ecology.
[38] Soil Loss and Runoff in Semiarid Ecosystems: A Complex Interaction Between Biological Soil Crusts, Micro-topography, and Hydrological Drivers , 2013, Ecosystems.
[39] E. Schwab,et al. Current Usage of Symbiosis and Associated Terminology , 2012 .
[40] O. Bens,et al. Dew formation on the surface of biological soil crusts in central European sand ecosystems , 2012 .
[41] F. Oldfield,et al. Delayed build-up of Arctic ice sheets during 400,000-year minima in insolation variability , 2012, Nature.
[42] B. Buck,et al. Biological Soil Crusts in the Mojave Desert, USA: Micromorphology and Pedogenesis , 2012 .
[43] C. F. Musil,et al. Differential interception and evaporation of fog dew and water vapour and elemental accumulation by lichens explain their relative abundance in a coastal desert , 2012 .
[44] Y. Cantón,et al. Biological soil crust development affects physicochemical characteristics of soil surface in semiarid ecosystems , 2012 .
[45] A. Goudie,et al. Weathering and the global carbon cycle: Geomorphological perspectives , 2012 .
[46] P. Cox,et al. Cyanotoxins in desert environments may present a risk to human health. , 2012, The Science of the total environment.
[47] F. Garcia-Pichel,et al. Prevalence of Ca2+-ATPase-Mediated Carbonate Dissolution among Cyanobacterial Euendoliths , 2011, Applied and Environmental Microbiology.
[48] I. Smalley,et al. Loess is [almost totally formed by] the accumulation of dust , 2011 .
[49] I. Berman‐Frank,et al. Dust- and mineral-iron utilization by the marine dinitrogen-fixer Trichodesmium , 2011 .
[50] G. Kukla,et al. The last million years recorded at the Stari Slankamen (Northern Serbia) loess-palaeosol sequence: revised chronostratigraphy and long-term environmental trends , 2011 .
[51] Yunge Zhao,et al. Artificial culture of biological soil crusts and its effects on overland flow and infiltration under simulated rainfall , 2011 .
[52] S. Marković,et al. Dust deposition and climate in the Carpathian Basin over an independently dated last glacial-interglacial cycle , 2011 .
[53] Liu Yongding. Comparison Studies on Dew Condensation of Different Developmental Artificial Crusts in Hopq Desert , 2011 .
[54] Chunxiang Hu,et al. Successional stages of biological soil crusts and their microstructure variability in Shapotou region (China) , 2011, Environmental Earth Sciences.
[55] Qunjie Gao,et al. Microbial excavation of solid carbonates powered by P-type ATPase-mediated transcellular Ca2+ transport , 2010, Proceedings of the National Academy of Sciences.
[56] G. Kidron,et al. Properties and spatial distribution of microbiotic crusts in the Negev Desert, Israel , 2010 .
[57] E. Zaady,et al. Biogenic soil crusts and soil depth: a long‐term case study from the Central Negev desert highland , 2010 .
[58] A. Schwabe,et al. Regeneration processes of biological soil crusts, macro-cryptogams and vascular plant species after fine-scale disturbance in a temperate region: Recolonization or successional replacement? , 2010 .
[59] Yongding Liu,et al. Influence of dew on biomass and photosystem II activity of cyanobacterial crusts in the Hopq Desert, northwest China , 2009 .
[60] R. Reid,et al. Processes of carbonate precipitation in modern microbial mats , 2009 .
[61] Yongding Liu,et al. THE TECHNOLOGY OF MAN-MADE ALGAL CRUST AND ITS APPLICATIONS IN CONTROL OF DESERTIFICATION: THE TECHNOLOGY OF MAN-MADE ALGAL CRUST AND ITS APPLICATIONS IN CONTROL OF DESERTIFICATION , 2009 .
[62] A. Schwabe,et al. Community Assembly of Biological Soil Crusts of Different Successional Stages in a Temperate Sand Ecosystem, as Assessed by Direct Determination and Enrichment Techniques , 2009, Microbial Ecology.
[63] Yongding Liu,et al. Feasibility of cyanobacterial inoculation for biological soil crusts formation in desert area , 2009 .
[64] T. Pócs,et al. Cyanobacterial crust types, as strategies for survival in extreme habitats. , 2009 .
[65] W. Bradley,et al. Beyond Guam: Cyanobacteria, BMAA and sporadic amyotrophic lateral sclerosis , 2009, Amyotrophic lateral sclerosis : official publication of the World Federation of Neurology Research Group on Motor Neuron Diseases.
[66] Rao Ben. THE TECHNOLOGY OF MAN-MADE ALGAL CRUST AND ITS APPLICATIONS IN CONTROL OF DESERTIFICATION , 2009 .
[67] A. Veldkamp,et al. Controls on plant functional surface cover types along a precipitation gradient in the Negev Desert of Israel , 2009 .
[68] D. Eldridge,et al. Grazing and drought reduce cyanobacterial soil crusts in an Australian Acacia woodland , 2008 .
[69] Matthew A. Bowker,et al. A simple classification of soil types as habitats of biological soil crusts on the Colorado Plateau, USA , 2008 .
[70] J. Vandenberghe,et al. (www.interscience.wiley.com) DOI: 10.1002/jqs.1124 Late Pleistocene loess-palaeosol sequences in the Vojvodina region, north Serbia , 2022 .
[71] A. Gorbushina. Life on the rocks. , 2007, Environmental microbiology.
[72] A. Thomas,et al. Spatial and temporal distribution of cyanobacterial soil crusts in the Kalahari: Implications for soil surface properties , 2007 .
[73] C. Kaushik,et al. Effect of indigenous cyanobacterial application on structural stability and productivity of an organically poor semi-arid soil , 2007 .
[74] Yongding Liu,et al. Relationships between the biomass of algal crusts in fields and their compressive strength , 2007 .
[75] Jeffrey E. Herrick,et al. Wind erodibility of soils at Fort Irwin, California (Mojave Desert), USA, before and after trampling disturbance: implications for land management , 2007 .
[76] D. Muhs. LOESS DEPOSITS, ORIGINS AND PROPERTIES , 2007 .
[77] J. Belnap. The potential roles of biological soil crusts in dryland hydrologic cycles , 2006 .
[78] Tao Wang,et al. Effects of microbiotic crusts on dew deposition in the restored vegetation area at Shapotou, northwest China , 2006 .
[79] Ian Jefferson,et al. An approach to the problem of loess deposit formation: Some comments on the ‘in situ’ or ‘soil-eluvial’ hypothesis , 2006 .
[80] B. Díez,et al. Watering, Fertilization, and Slurry Inoculation Promote Recovery of Biological Crust Function in Degraded Soils , 2006, Microbial Ecology.
[81] F. Garcia-Pichel. Plausible mechanisms for the boring on carbonates by microbial phototrophs , 2006 .
[82] S. Gíslason,et al. The effect of crystallinity on dissolution rates and CO2 consumption capacity of silicates , 2006 .
[83] A. Thomas,et al. Cyanobacterial soil crusts and woody shrub canopies in Kalahari rangelands , 2005 .
[84] ZHANGYuanming. The microstructure and formation of biological soil crusts in their early developmental stage , 2005 .
[85] Yuan-Ming Zhang,et al. The microstructure and formation of biological soil crusts in their early developmental stage , 2005 .
[86] Peter A. Corning,et al. Holistic Darwinism: Synergy, Cybernetics, and the Bioeconomics of Evolution , 2005 .
[87] B. Büdel,et al. Reshaping of sandstone surfaces by cryptoendolithic cyanobacteria: bioalkalization causes chemical weathering in arid landscapes , 2004 .
[88] A. Thomas,et al. Kalahari sand soils: spatial heterogeneity, biological soil crusts and land degradation , 2004 .
[89] Lirong Song,et al. Effect of desert soil algae on the stabilization of fine sands , 2002, Journal of Applied Phycology.
[90] Yongding Liu,et al. Primary succession of algal community structure in desert soil , 2003 .
[91] JAYNE BELNAP,et al. Boundaries in Miniature: Two Examples from Soil , 2003 .
[92] Jayne Belnap,et al. The world at your feet: desert biological soil crusts , 2003 .
[93] É. Verrecchia,et al. Bacterially Induced Mineralization of Calcium Carbonate in Terrestrial Environments: The Role of Exopolysaccharides and Amino Acids , 2003 .
[94] A. Lang. Phases of soil erosion-derived colluviation in the loess hills of South Germany , 2003 .
[95] Mj Acea,et al. Cyanobacterial inoculation of heated soils: effect on microorganisms of C and N cycles and on chemical composition in soil surface , 2003 .
[96] J. Leys,et al. Exploring some relationships between biological soil crusts, soil aggregation and wind erosion , 2003 .
[97] D. Muhs,et al. Quaternary loess-Paleosol sequences as examples of climate-driven sedimentary extremes , 2003 .
[98] A. Bronger. Correlation of loess–paleosol sequences in East and Central Asia with SE Central Europe: towards a continental Quaternary pedostratigraphy and paleoclimatic history , 2003 .
[99] J. Belnap,et al. Biological Soil Crusts: Structure, Function, and Management , 2003, Ecological Studies.
[100] G. Kidron,et al. The role of dew as a moisture source for sand microbiotic crusts in the Negev Desert, Israel , 2002 .
[101] Yongding Liu,et al. Cementing mechanism of algal crusts from desert area , 2002 .
[102] Shuzhen Peng,et al. Onset of Asian desertification by 22 Myr ago inferred from loess deposits in China , 2002, Nature.
[103] Arnon Karnieli,et al. Temporal dynamics of soil and vegetation spectral responses in a semi-arid environment , 2002 .
[104] M. Potts,et al. Life and death of dried prokaryotes. , 2002, Research in microbiology.
[105] A. Lukešová. Soil Algae in Brown Coal and Lignite Post‐Mining Areas in Central Europe (Czech Republic and Germany) , 2001 .
[106] E. Derbyshire,et al. Geological hazards in loess terrain, with particular reference to the loess regions of China , 2001 .
[107] Christian Défarge,et al. Role of a cyanobacterial cover on structural stability of sandy soils in the Sahelian part of western Niger , 2001 .
[108] Á. Prieto-Fernández,et al. Microbial populations in heated soils inoculated with cyanobacteria , 2001, Biology and Fertility of Soils.
[109] J. Belnap,et al. Biological Soil Crusts: Characteristics and Distribution , 2001 .
[110] J. Belnap. Biological Soil Crusts and Wind Erosion , 2001 .
[111] J. Belnap. Comparative Structure of Physical and Biological Soil Crusts , 2001 .
[112] Jayne Belnap,et al. Disturbance and Recovery of Biological Soil Crusts , 2001 .
[113] J. Belnap. Microbes and Microfauna Associated with Biological Soil Crusts , 2001 .
[114] R. M. Palma,et al. Changes in soil enzyme activities following additions of cyanobacterial biomass and exopolysaccharide , 2000 .
[115] H. Paerl,et al. The role of microbes in accretion, lamination and early lithification of modern marine stromatolites , 2000, Nature.
[116] E. Zaady,et al. Patterns of CO2 exchange in biological soil crusts of successional age , 2000 .
[117] Robert Riding,et al. Microbial carbonates: the geological record of calcified bacterial–algal mats and biofilms , 2000 .
[118] Don Paul Kovarcik,et al. Active Fe-Containing Superoxide Dismutase and Abundant sodF mRNA in Nostoc commune(Cyanobacteria) after Years of Desiccation , 2000, Journal of bacteriology.
[119] P. Vitousek,et al. Controls over the accumulation and decline of a nitrogen‐fixing lichen, Stereocaulon vulcani, on young Hawaiian lava flows , 1999 .
[120] Christian Défarge,et al. Morphology and microstructure of microbiotic soil crusts on a tiger bush sequence (Niger, Sahel) , 1999 .
[121] C. Cockell,et al. Ultraviolet radiation screening compounds , 1999, Biological reviews of the Cambridge Philosophical Society.
[122] S. Pérez,et al. Conformational and configurational features of acidic polysaccharides and their interactions with calcium ions: a molecular modeling investigation. , 1999, Carbohydrate research.
[123] Jeffrey R. Johansen,et al. Microbiotic Crusts and Ecosystem Processes , 1999 .
[124] S. Sedov,et al. Weathering and clay mineral formation in two Holocene soils and in buried paleosols in Tadjikistan: towards a Quaternary paleoclimatic record in Central Asia , 1998 .
[125] J. Belnap,et al. Vulnerability of desert biological soil crusts to wind erosion: the influences of crust development, soil texture, and disturbance , 1998 .
[126] J. Belnap,et al. Photosynthesis of green algal soil crust lichens from arid lands in southern Utah, USA: role of water content on light and temperature responses of CO2 exchange , 1997 .
[127] Cheryl McKenna Neuman,et al. Wind transport of sand surfaces crusted with photoautotrophic microorganisms , 1996 .
[128] J. Belnap,et al. MICROENVIRONMENTS AND MICROSCALE PRODUCTIVITY OF CYANOBACTERIAL DESERT CRUSTS 1 , 1996 .
[129] J. Dumont,et al. Spherulites in calcrete laminar crusts; biogenic CaCO 3 precipitation as a major contributor to crust formation , 1995 .
[130] É. Verrecchia. On the relationship between the pore-throat morphology index ("a") and fractal dimension (D f ) of pore networks in carbonate rocks; discussion , 1995 .
[131] H. Viles. Ecological perspectives on rock surface weathering : towards a conceptual model , 1995 .
[132] P. Márton. The role of principles and methods in loess-paleosol investigations , 1995 .
[133] M. Pécsi. The role of principles and methods in loess-paleosol investigations , 1995 .
[134] K. Pye. The nature, origin and accumulation of loess , 1995 .
[135] Jayne Belnap,et al. Surface disturbances: Their role in accelerating desertification , 1995, Environmental monitoring and assessment.
[136] M. Potts. Desiccation tolerance of prokaryotes , 1994, Microbiological reviews.
[137] J. Belnap,et al. Soil microstructure in soils of the Colorado Plateau: the role of the cyanobacterium Microcoleus vaginatus , 1993 .
[138] Xu Xz,et al. A study of siliceous pneumoconiosis in a desert area of Sunan County, Gansu Province, China. , 1993 .
[139] Jayne Belnap,et al. Recovery rates of cryptobiotic crusts: inoculant use and assessment methods , 1993 .
[140] R. Castenholz,et al. Occurrence of UV-Absorbing, Mycosporine-Like Compounds among Cyanobacterial Isolates and an Estimate of Their Screening Capacity , 1993, Applied and environmental microbiology.
[141] P. Yang,et al. A study of siliceous pneumoconiosis in a desert area of Sunan County, Gansu Province, China. , 1993, Biomedical and environmental sciences : BES.
[142] Otto L. Lange,et al. Taxonomic composition and photosynthetic characteristics of the biological soil crusts covering sand dunes in the western Negev Desert , 1992 .
[143] H. Saiyed,et al. Non-occupational pneumoconiosis at high altitude villages in central Ladakh. , 1991, British journal of industrial medicine.
[144] R. Castenholz,et al. CHARACTERIZATION AND BIOLOGICAL IMPLICATIONS OF SCYTONEMIN, A CYANOBACTERIAL SHEATH PIGMENT 1 , 1991 .
[145] B. Corrin,et al. Silicosis in a Himalayan village population: role of environmental dust. , 1991, Thorax.
[146] A. Danin,et al. Trapping of airborne dust by mosses in the Negev Desert, Israel , 1991 .
[147] A. Oren,et al. Accumulation of Trehalose and Sucrose in Cyanobacteria Exposed to Matric Water Stress , 1991, Applied and environmental microbiology.
[148] M. Pécsi. Loess is not just the accumulation of dust , 1990 .
[149] N. West,et al. Structure and Function of Microphytic Soil Crusts in Wildland Ecosystems of Arid to Semi-arid Regions , 1990 .
[150] S. Pickett,et al. Changing perspectives in community dynamics: A theory of successional forces. , 1989, Trends in ecology & evolution.
[151] Dongsheng Liu,et al. Loess and the environment , 1985 .
[152] D. W. Goodall,et al. Land Aridization and Drought Control , 1980 .
[153] H. J. Larsen,et al. Plant and soil responses to a commercial blue-green algae inoculant , 1980 .
[154] G. Kukla. Pleistocene land—sea correlations I. Europe , 1977 .