Macromolecular fungal ice nuclei in Fusarium: effects of physical and chemical processing
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Ulrich Pöschl | Linda E. Hanson | Cindy E. Morris | Anna T. Kunert | David G. Schmale III | U. Pöschl | C. Morris | J. Fröhlich-Nowoisky | K. Tang | L. Hanson | Mira L. Pöhlker | Kai Tang | Carola S. Krevert | Carsten Wieder | Kai R. Speth | Janine Fröhlich-Nowoisky | M. Pöhlker | A. Kunert | C. Wieder | C. Krevert
[1] J. Abbatt,et al. Oxidative Processing Lowers the Ice Nucleation Activity of Birch and Alder Pollen , 2018 .
[2] Ulrich Pöschl,et al. Ice nucleation activity in the widespread soil fungus Mortierella alpina , 2015 .
[3] D. Schmale,et al. Isolates of Fusarium graminearum collected 40–320 meters above ground level cause Fusarium head blight in wheat and produce trichothecene mycotoxins , 2012, Aerobiologia.
[4] P. Amato,et al. Microorganisms isolated from the water phase of tropospheric clouds at the Puy de Dôme: major groups and growth abilities at low temperatures. , 2007, FEMS microbiology ecology.
[5] E. Bigg,et al. Urediospores of rust fungi are ice nucleation active at > −10 °C and harbor ice nucleation active bacteria , 2013 .
[6] J. Seinfeld,et al. Atmospheric Chemistry and Physics: From Air Pollution to Climate Change , 1998 .
[7] C. Dellago,et al. Perspectives on the Future of Ice Nucleation Research: Research Needs and Unanswered Questions Identified from Two International Workshops , 2017 .
[8] M. Andreae,et al. Bioaerosols in the Earth system: Climate, health, and ecosystem interactions , 2016 .
[9] G. Vali,et al. Atmospheric Ice Nuclei from Decomposing Vegetation , 1972, Nature.
[10] Paul J. DeMott,et al. In situ detection of biological particles in cloud ice-crystals , 2009 .
[11] S. Kreidenweis,et al. Sources of organic ice nucleating particles in soils , 2016 .
[12] B. Murray,et al. The adsorption of fungal ice-nucleating proteins on mineral dusts: a terrestrial reservoir of atmospheric ice-nucleating particles , 2016 .
[13] John F. Leslie,et al. The Fusarium laboratory manual. , 2006 .
[14] W. Marasas,et al. Characterization and Distribution of Fusarium Acuminatum Subsp. Armeniacum Subsp. Nov. , 1993 .
[15] Ulrich Pöschl,et al. Twin-plate Ice Nucleation Assay (TINA) with infrared detection for high-throughput droplet freezing experiments with biological ice nuclei in laboratory and field samples , 2018, Atmospheric Measurement Techniques.
[16] G Capitani,et al. Molecular organisation of the ice nucleation protein InaV from Pseudomonas syringae , 1997, FEBS letters.
[17] B. Murray,et al. Ice nucleation by particles immersed in supercooled cloud droplets. , 2012, Chemical Society reviews.
[18] W. Bryden,et al. Toxicity and trichothecene production by Fusarium acuminatum subsp. acuminatum and Fusarium acuminatum subsp. armeniacum. , 1993, Natural toxins.
[19] T. Kommedahl. Occurrence ofFusariumSpecies in Roots and Stalks of Symptomless Corn Plants During the Growing Season , 1979 .
[20] G. Vali,et al. World-wide Source of Leaf-derived Freezing Nuclei , 1973, Nature.
[21] S. Lindow,et al. Xanthomonas campestris pv. translucens strains active in ice nucleation , 1987 .
[22] H. Kurata,et al. Chemotaxonomy of Gibberella zeae with special reference to production of trichothecenes and zearalenone , 1983, Applied and environmental microbiology.
[23] S. S. Hirano,et al. Relationship between Ice Nucleation Frequency of Bacteria and Frost Injury. , 1982, Plant physiology.
[24] Ice nucleation by water-soluble macromolecules , 2014 .
[25] U. Pöschl,et al. High diversity of fungi in air particulate matter , 2009, Proceedings of the National Academy of Sciences.
[26] D. Schmale,et al. Seasonal associations and atmospheric transport distances of fungi in the genus Fusarium collected with unmanned aerial vehicles and ground-based sampling devices , 2014 .
[27] M. Jestoi,et al. Mycotoxin production of Fusarium langsethiae and Fusarium sporotrichioides on cereal-based substrates , 2012, Mycotoxin Research.
[28] G. Vali,et al. Microbiology and atmospheric processes: the role of biological particles in cloud physics , 2007 .
[29] C. Sing,et al. Impact of Direct Soil Exposures from Airborne Dust and Geophagy on Human Health , 2010, International journal of environmental research and public health.
[30] P. Amato,et al. Quantification of ice nuclei active at near 0 C temperatures in low-altitude clouds at the Puy de Dôme atmospheric station , 2014 .
[31] Paul J. DeMott,et al. Measurement of Ice Nucleation-Active Bacteria on Plants and in Precipitation by Quantitative PCR , 2013, Applied and Environmental Microbiology.
[32] Shane D Ross,et al. Highways in the sky: scales of atmospheric transport of plant pathogens. , 2015, Annual review of phytopathology.
[33] J Vandekerckhove,et al. Identification and purification of a bacterial ice-nucleation protein. , 1986, Proceedings of the National Academy of Sciences of the United States of America.
[34] R. Jaenicke,et al. Primary biological aerosol particles in the atmosphere: a review , 2012 .
[35] A. Bertram,et al. Revisiting properties and concentrations of ice nucleating particles in the sea surface microlayer and bulk seawater in the Canadian Arctic during summer , 2018 .
[36] K. E. Zachariassen,et al. Ice nucleation and antinucleation in nature. , 2000, Cryobiology.
[37] C. Morris,et al. A User's Guide to a Data Base of the Diversity of Pseudomonas syringae and Its Application to Classifying Strains in This Phylogenetic Complex , 2014, PloS one.
[38] T. Clauss,et al. Characterization of airborne ice-nucleation-active bacteria and bacterial fragments , 2015 .
[39] J. Klett,et al. Microphysics of Clouds and Precipitation , 1978, Nature.
[40] G. Vali. Quantitative Evaluation of Experimental Results an the Heterogeneous Freezing Nucleation of Supercooled Liquids , 1971 .
[41] S. C. Mossop. Atmospheric ice nuclei , 1963 .
[42] K. O’Donnell,et al. New Fusarium species and combinations within the Gibberella fujikuroi species complex , 1998 .
[44] J. D. Elsas,et al. Hitchhikers on the fungal highway: The helper effect for bacterial migration via fungal hyphae , 2011 .
[45] H. Meusel,et al. Atmospheric protein chemistry influenced by anthropogenic air pollutants: nitration and oligomerization upon exposure to ozone and nitrogen dioxide. , 2017, Faraday discussions.
[46] A. Latifi,et al. An ice nucleation protein from Fusarium acuminatum: cloning, expression, biochemical characterization and computational modeling , 2014, Biotechnology Letters.
[47] Rimy Malla,et al. Monitoring the Long-Distance Transport of Fusarium graminearum from Field-Scale Sources of Inoculum. , 2014, Plant disease.
[48] T. Koop,et al. BINARY: an optical freezing array for assessing temperature and time dependence of heterogeneous ice nucleation , 2014 .
[49] T. Aoki,et al. Identification of Ice-nucleating Active Fungus Isolated from the Gut of the Rice Stem Borer, Chilo suppressalis Walker(Lepidoptera: Pyralidae) and a Search for Ice-nucleating Active Fusarium Species. , 1995 .
[50] S. Borrmann,et al. The ice nucleating ability of pollen: Part III: New laboratory studies in immersion and contact freezing modes including more pollen types , 2005 .
[51] Benjamin J. Murray,et al. Ice nucleation by fertile soil dusts: relative importance of mineral and biogenic components , 2014 .
[52] H. Tsumuki,et al. An ice-nucleating active fungus isolated from the gut of the rice stem borer, Chilo suppressalis Walker (Lepidoptera: Pyralidae) , 1992 .
[53] C. Morris,et al. Biological residues define the ice nucleation properties of soil dust , 2011 .
[54] B. Murray,et al. The relevance of nanoscale biological fragments for ice nucleation in clouds , 2015, Scientific Reports.
[55] H. Nirenberg,et al. Fusarium langsethiae sp. nov. on cereals in Europe. , 2004, International journal of food microbiology.
[56] G. Payne,et al. Infection and Fumonisin Production by Fusarium verticillioides in Developing Maize Kernels. , 2004, Phytopathology.
[57] T. Šantl-Temkiv,et al. Ice Nucleation Activity and Aeolian Dispersal Success in Airborne and Aquatic Microalgae , 2018, Front. Microbiol..
[58] E. Anaissie,et al. Taxonomy, biology, and clinical aspects of Fusarium species , 1994, Clinical Microbiology Reviews.
[59] J. Leslie,et al. Production of Beauvericin, Moniliformin, Fusaproliferin, and Fumonisins B1, B2, and B3 by Fifteen Ex-Type Strains of Fusarium Species , 2002, Applied and Environmental Microbiology.
[60] H. Bauer,et al. Spores of many common airborne fungi reveal no ice nucleation activity in oil immersion freezing experiments , 2013 .
[61] J. Seinfeld,et al. Atmospheric Chemistry and Physics: From Air Pollution to Climate Change , 1997 .
[62] H. Erickson. Size and Shape of Protein Molecules at the Nanometer Level Determined by Sedimentation, Gel Filtration, and Electron Microscopy , 2009, Biological Procedures Online.
[63] Patrick Minnis,et al. Dust and Biological Aerosols from the Sahara and Asia Influence Precipitation in the Western U.S. , 2013, Science.
[64] Tricia L. Humphreys,et al. Sensitivity of Partially Purified Ice Nucleation Activity of Fusarium acuminatum SRSF 616 , 2001, Current Microbiology.
[65] K. O’Donnell,et al. Fusarium fractiflexum sp. nov. and two other species within theGibberella fujikuroi species complex recently discovered in Japan that form aerial conidia in false heads , 2001 .
[66] A. Prenni,et al. New Directions: Need for defining the numbers and sources of biological aerosols acting as ice nuclei , 2010 .
[67] U. Pöschl,et al. Bioprecipitation: a feedback cycle linking Earth history, ecosystem dynamics and land use through biological ice nucleators in the atmosphere , 2014, Global change biology.
[68] Ruprecht Jaenicke,et al. The ice nucleating ability of pollen:: Part II. Laboratory studies in immersion and contact freezing modes , 2002 .
[69] Microorganisms of the upper atmosphere. IV. Microorganisms of a land air mass as it traverses an ocean. , 1966, Applied microbiology.
[70] C. Morris,et al. Ice nucleation active particles are efficiently removed by precipitating clouds , 2015, Scientific Reports.
[71] A. Bertram,et al. A marine biogenic source of atmospheric ice-nucleating particles , 2015, Nature.
[72] King Eo,et al. Two simple media for the demonstration of pyocyanin and fluorescin. , 1954 .
[73] K. McNeill,et al. Photomineralization mechanism changes the ability of dissolved organic matter to activate cloud droplets and to nucleate ice crystals , 2019, Atmospheric Chemistry and Physics.
[74] C. Morris,et al. Ice nucleators, bacterial cells and Pseudomonas syringae in precipitation at Jungfraujoch , 2017 .
[75] C. Morris,et al. Freezing nucleation apparatus puts new slant on study of biological ice nucleators in precipitation , 2013 .
[76] Hauke Harms,et al. Taking the fungal highway: mobilization of pollutant-degrading bacteria by fungi. , 2005, Environmental science & technology.
[77] J. Löndahl,et al. Effects of Ice Nucleation Protein Repeat Number and Oligomerization Level on Ice Nucleation Activity , 2018 .
[78] R. Campbell,et al. Novel dimeric β-helical model of an ice nucleation protein with bridged active sites , 2011, BMC Structural Biology.
[79] Craig Powers,et al. Microbial ice nucleators scavenged from the atmosphere during simulated rain events , 2017 .
[80] Bingbing Wang,et al. The Role of Organic Aerosol in Atmospheric Ice Nucleation: A Review , 2018 .
[81] D. Schmale,et al. Variation in susceptibility to pitch canker disease, caused by Fusarium circinatum, in native stands of Pinus muricata , 2003 .
[82] Corinna Hoose,et al. Heterogeneous ice nucleation on atmospheric aerosols: a review of results from laboratory experiments , 2012 .
[83] S. Lindow,et al. Size of bacterial ice-nucleation sites measured in situ by radiation inactivation analysis. , 1988, Proceedings of the National Academy of Sciences of the United States of America.
[84] S. Jeffers,et al. Fusarium Root and Crown Rot: A Disease of Container-Grown Hostas. , 2000, Plant disease.
[85] H. Bauer,et al. Suspendable macromolecules are responsible for ice nucleation activity of birch and conifer pollen , 2012 .
[86] H. Antoun,et al. Ice Nucleation Activity in Fusarium acuminatum and Fusarium avenaceum , 1992, Applied and environmental microbiology.
[87] Markus D. Petters,et al. Revisiting ice nucleation from precipitation samples , 2015 .
[88] D. Schmale,et al. Ice nucleation active bacteria in precipitation are genetically diverse and nucleate ice by employing different mechanisms , 2017, The ISME Journal.
[89] R. Green,et al. Physical and functional repetition in a bacterial ice nucleation gene , 1985, Nature.
[90] W. Bryden,et al. Toxigenicity of Fusarium species and subspecies in section Gibbosum from different regions of Australia , 1993 .
[91] Z. Jia,et al. Modeling Pseudomonas syringae Ice-Nucleation Protein as aβ-Helical Protein , 2001 .
[92] Shane D. Ross,et al. Small fluctuations in the recovery of fusaria across consecutive sampling intervals with unmanned aircraft 100 m above ground level , 2012, Aerobiologia.
[93] A. Bertram,et al. Revisiting properties and concentrations of ice-nucleating particles in the sea surface microlayer and bulk seawater in the Canadian Arctic during summer , 2019, Atmospheric Chemistry and Physics.