Sun Exposure Shapes Functional Grouping of Fungi in Cryptoendolithic Antarctic Communities
暂无分享,去创建一个
J. Stajich | L. Selbmann | L. Zucconi | S. Onofri | Claudia Coleine | Nuttapon Pombubpa | C. Coleine
[1] J. Stajich,et al. Antarctic Cryptoendolithic Fungal Communities Are Highly Adapted and Dominated by Lecanoromycetes and Dothideomycetes , 2018, Front. Microbiol..
[2] E. Dadachova,et al. Resistance of an Antarctic cryptoendolithic black fungus to radiation gives new insights of astrobiological relevance. , 2018, Fungal biology.
[3] Jonathan M Palmer,et al. Non-biological synthetic spike-in controls and the AMPtk software pipeline improve mycobiome data , 2018, PeerJ.
[4] Michelle A. Jusino,et al. Non-biological synthetic spike-in controls and the AMPtk software pipeline improve fungal high throughput amplicon sequencing data , 2017, bioRxiv.
[5] L. Selbmann,et al. Effect of environmental parameters on biodiversity of the fungal component in lithic Antarctic communities , 2017, Extremophiles.
[6] J. Peñuelas,et al. Abrupt changes in the composition and function of fungal communities along an environmental gradient in the high Arctic , 2017, Molecular ecology.
[7] S. Cary,et al. Endolithic microbial diversity in sandstone and granite from the McMurdo Dry Valleys, Antarctica , 2017, Polar Biology.
[8] I. Shuryak,et al. Melanin is effective in protecting fast and slow growing fungi from various types of ionizing radiation , 2017, Environmental microbiology.
[9] J. Welker,et al. Changes in composition and abundance of functional groups of arctic fungi in response to long-term summer warming , 2016, Biology Letters.
[10] Ben Nichols,et al. VSEARCH: a versatile open source tool for metagenomics , 2016, PeerJ.
[11] J. Welker,et al. Compositional and functional shifts in arctic fungal communities in response to experimentally increased snow depth , 2016 .
[12] S. Cary,et al. Endolithic microbial diversity in sandstone and granite from the McMurdo Dry Valleys, Antarctica , 2016, Polar Biology.
[13] Scott T. Bates,et al. FUNGuild: An open annotation tool for parsing fungal community datasets by ecological guild , 2016 .
[14] J. P. Harrison,et al. Habitability: A Review. , 2016, Astrobiology.
[15] Elke Rabbow,et al. Survival of Antarctic Cryptoendolithic Fungi in Simulated Martian Conditions On Board the International Space Station. , 2015, Astrobiology.
[16] C. Spearman. The proof and measurement of association between two things. , 2015, International journal of epidemiology.
[17] J. Welker,et al. Long-term warming alters richness and composition of taxonomic and functional groups of arctic fungi. , 2015, FEMS microbiology ecology.
[18] L. Selbmann,et al. Rock black fungi: excellence in the extremes, from the Antarctic to space , 2015, Current Genetics.
[19] M. Göker,et al. Towards an integrated phylogenetic classification of the Tremellomycetes , 2015, Studies in mycology.
[20] R. Wilkins,et al. Microsatellite analyses of the Antarctic endemic lichen Buellia frigida Darb. (Physciaceae) suggest limited dispersal and the presence of glacial refugia in the Ross Sea region , 2015, Polar Biology.
[21] L. Selbmann,et al. Mapping the lithic colonization at the boundaries of life in Northern Victoria Land, Antarctica , 2014, Polar Biology.
[22] C. Nusbaum,et al. Rich and cold: diversity, distribution and drivers of fungal communities in patterned‐ground ecosystems of the North American Arctic , 2014, Molecular ecology.
[23] Andrey M. Yurkov,et al. Description of Taphrina antarcticaf.a. sp. nov., a new anamorphic ascomycetous yeast species associated with Antarctic endolithic microbial communities and transfer of four Lalaria species in the genus Taphrina , 2014, Extremophiles.
[24] D. Cowan,et al. Microbial ecology and biogeochemistry of continental Antarctic soils , 2014, Front. Microbiol..
[25] Kabir G. Peay,et al. Sequence Depth, Not PCR Replication, Improves Ecological Inference from Next Generation DNA Sequencing , 2014, PloS one.
[26] M. Callaham,et al. Deep Ion Torrent sequencing identifies soil fungal community shifts after frequent prescribed fires in a southeastern US forest ecosystem. , 2013, FEMS microbiology ecology.
[27] Kessy Abarenkov,et al. Fungal community analysis by high-throughput sequencing of amplified markers – a user's guide , 2013, The New phytologist.
[28] Petr Baldrian,et al. Estimation of fungal biomass in forest litter and soil , 2013 .
[29] L. Selbmann,et al. Biodiversity, evolution and adaptation of fungi in extreme environments , 2013 .
[30] L. Selbmann,et al. Potential extinction of Antarctic endemic fungal species as a consequence of global warming. , 2012, The Science of the total environment.
[31] K. Sterflinger,et al. Fungi in hot and cold deserts with particular reference to microcolonial fungi , 2012 .
[32] Elke Rabbow,et al. Survival of rock-colonizing organisms after 1.5 years in outer space. , 2012, Astrobiology.
[33] H. Kauserud,et al. High consistency between replicate 454 pyrosequencing analyses of ectomycorrhizal plant root samples , 2012, Mycorrhiza.
[34] K. Hyde,et al. Low-diversity fungal assemblage in an Antarctic Dry Valleys soil , 2012, Polar Biology.
[35] Charles K. Lee,et al. The Inter-Valley Soil Comparative Survey: the ecology of Dry Valley edaphic microbial communities , 2011, The ISME Journal.
[36] L. Selbmann,et al. Resistance to UV-B induced DNA damage in extreme-tolerant cryptoendolithic Antarctic fungi: detection by PCR assays. , 2011, Fungal biology.
[37] I. Hogg,et al. Global change and Antarctic terrestrial biodiversity , 2011, Polar Biology.
[38] B. Metz. The Intergovernmental Panel on Climate Change , 2011 .
[39] T. Bruns,et al. Quantifying microbial communities with 454 pyrosequencing: does read abundance count? , 2010, Molecular ecology.
[40] N. Lennon,et al. Phylogenetic and ecological analyses of soil and sporocarp DNA sequences reveal high diversity and strong habitat partitioning in the boreal ectomycorrhizal genus Russula (Russulales; Basidiomycota). , 2010, The New phytologist.
[41] Ian R. McDonald,et al. On the rocks: the microbiology of Antarctic Dry Valley soils , 2010, Nature Reviews Microbiology.
[42] M. Lau,et al. Correction for Pointing et al., Highly specialized microbial diversity in hyper-arid polar desert , 2009, Proceedings of the National Academy of Sciences.
[43] N. Lennon,et al. Molecular phylogenetic biodiversity assessment of arctic and boreal ectomycorrhizal Lactarius Pers. (Russulales; Basidiomycota) in Alaska, based on soil and sporocarp DNA , 2009, Molecular ecology.
[44] Josefino C. Comiso,et al. Warming of the Antarctic ice-sheet surface since the 1957 International Geophysical Year , 2009, Nature.
[45] A. Casadevall,et al. Ionizing radiation: how fungi cope, adapt, and exploit with the help of melanin. , 2008, Current opinion in microbiology.
[46] R. Currah,et al. Two new species of Pseudogymnoascus with Geomyces anamorphs and their phylogenetic relationship with Gymnostellatospora , 2006, Mycologia.
[47] Rytas Vilgalys,et al. Fungal Community Analysis by Large-Scale Sequencing of Environmental Samples , 2005, Applied and Environmental Microbiology.
[48] D. Cowan,et al. Endangered antarctic environments. , 2004, Annual review of microbiology.
[49] M. Grube,et al. Endolithic growth of two Lecidea lichens in granite from continental Antarctica detected by molecular and microscopy techniques. , 2004, The New phytologist.
[50] Norman R. Pace,et al. Microbial Diversity of Cryptoendolithic Communities from the McMurdo Dry Valleys, Antarctica , 2003, Applied and Environmental Microbiology.
[51] C. McKay,et al. Polar endoliths – an anti-correlation of climatic extremes and microbial biodiversity , 2002 .
[52] L. Kappen. Some aspects of the great success of lichens in Antarctica , 2000, Antarctic Science.
[53] C. Kurtzman,et al. Cryptococcus antarcticus sp. nov. and Cryptococcus albidosimilis sp. nov., Basidioblastomycetes from Antarctic soils , 1992 .
[54] E. Friedmann,et al. Endolithic Microorganisms in the Antarctic Cold Desert , 1982, Science.
[55] W. Hempfling,et al. Cryptococcus vishniacii sp. nov., an Antarctic Yeast , 1979 .
[56] R. E. Cameron,et al. Microbiology of the dry valleys of antarctica. , 1972, Science.
[57] L. Selbmann,et al. Mapping the lithic colonization at the boundaries of life in Northern Victoria Land, Antarctica , 2014, Polar Biology.
[58] L. Selbmann,et al. Cryptococcusvaughanmartiniae sp. nov. and Cryptococcusonofrii sp. nov.: two new species isolated from worldwide cold environments , 2014, Extremophiles.
[59] L. Selbmann,et al. Taxonomic and phenotypic characterization of yeasts isolated from worldwide cold rock-associated habitats. , 2014, Fungal biology.
[60] L. Selbmann,et al. Black Yeasts in Cold Habitats , 2014 .
[61] Robert C. Edgar,et al. Search and clustering orders of magnitude faster than BLAST , 2010 .
[62] G. Horneck,et al. Resistance of Antarctic black fungi and cryptoendolithic communities to simulated space and Martian conditions , 2008, Studies in mycology.
[63] L. Selbmann,et al. UvA-DARE (Digital Academic Repository) Drought meets acid: Three new genera in a dothidealean clade of extremotolerant , 2008 .
[64] M. Grube,et al. Fungal Associations at the Cold Edge of Life , 2007 .
[65] Sang Joon Kim,et al. A Mathematical Theory of Communication , 2006 .
[66] L. Selbmann,et al. Fungi at the edge of life: cryptendolithic black fungi from Antarctic desert , 2005 .
[67] G. S. Hoog,et al. Fungi of the Antarctic: Evolution under extreme conditions , 2005 .
[68] C. McKay,et al. The cryptoendolithic microbial environment in the Ross Desert of Antarctica: Satellite-transmitted continuous nanoclimate data, 1984 to 1986 , 2004, Polar Biology.
[69] J. Frisvad,et al. Extremophilic fungi in arctic ice: a relationship between adaptation to low temperature and water activity , 2003 .
[70] Ø. Hammer. PAST - PAlaeontological STatistics , 2001 .
[71] W. Bossert,et al. The Measurement of Diversity , 2001 .
[72] T. White. Amplification and direct sequencing of fungal ribosomal RNA genes for phylogenetics , 1990 .
[73] H. Vishniac. Cryptococcus friedmannii, a new species of yeast from the Antarctic. , 1985, Mycologia.