Sphagnum papillosum - Unknown
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Internal ID UUID644078ef13f95296874145
Scientific name Sphagnum papillosum
Authority Lindb.
First published in Contr. Fl. Crypt. As. 280 1872

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Synonyms Top

Scientific name Authority First published in
Sphagnum cymbifolium var. papillosum (Lindb.) Schimp. Syn. Musc. Eur. (ed. 2) 848 1876
Sphagnum hakkodense Warnst. & Cardot Bull. Herb. Boissier 2: 710 1907
Sphagnum ochraceum Warnst. Samml. Eur. Torfm. 147 1888
Sphagnum papillosum var. laeve Warnst. Sitzungsber. Naturf.-Ges. Dorpat 10: 429 1895
Sphagnum papillosum var. sublaeve Limpr. ex Roll Flora 69: 471 1886
Sphagnum waghornei Warnst. Hedwigia 33: 329, 336 1894

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Language Common/alternative name
English papillose sphagnum
Czech rašeliník bradavčitý
Welsh mawnfwsogl papilog
Estonian näsajas turbasammal
Finnish kalvakkarahkasammal
French sphaigne papilleuse
Norwegian Bokmål vortetorvmose
Dutch wrattig veenmos
Polish torfowiec brodawkowaty
Swedish sotvitmossa
Chinese 疣泥炭藓

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Distribution (via POWO/KEW) Top

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Links to other databases Top

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Database ID/link to page
World Flora Online wfo-0001189947
USDA Plants SPPA71
Tropicos 35174721
INPN 6774
The Plant List tro-35174721
Open Tree Of Life 998021
Observations.org 17619
NCBI Taxonomy 231123
NBN Atlas NBNSYS0000036069
Nature Serve 2.127066
iNaturalist 143516
GBIF 2668996
EPPO SHGPP
EOL 928374
Elurikkus 7378
Wikipedia Sphagnum_papillosum
PaleoBotany 115733

Genomes (via NCBI) Top

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Scientific Literature Top

Below are displayed the latest 15 articles published in PMC (PubMed Central®) and other sources (DOI number only)!
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Title Authors Publication Released IDs
Peatland restoration pathways to mitigate greenhouse gas emissions and retain peat carbon Mander Ü, Espenberg M, Melling L, Kull A Biogeochemistry 08-Dec-2023
PMCID:PMC11068583
doi:10.1007/s10533-023-01103-1
PMID:38707516
Molecular and physiological responses to desiccation indicate the abscisic acid pathway is conserved in the peat moss, Sphagnum Nibau C, van de Koot W, Spiliotis D, Williams K, Kramaric T, Beckmann M, Mur L, Hiwatashi Y, Doonan JH J Exp Bot 06-Apr-2022
PMCID:PMC9291362
doi:10.1093/jxb/erac133
PMID:35383351
Phenolic-Rich Plant Extracts With Antimicrobial Activity: An Alternative to Food Preservatives and Biocides? Oulahal N, Degraeve P Front Microbiol 04-Jan-2022
PMCID:PMC8764166
doi:10.3389/fmicb.2021.753518
PMID:35058892
Autumn destabilization of deep porewater CO2 store in a northern peatland driven by turbulent diffusion Campeau A, Vachon D, Bishop K, Nilsson MB, Wallin MB Nat Commun 25-Nov-2021
PMCID:PMC8616934
doi:10.1038/s41467-021-27059-0
PMID:34824219
Changes in vegetation structure and composition of a lowland mire over a sixty‐five‐year interval Lovegrove AT, Newton AC, Evans PM, Diaz A, Newton AC, Davy L, Newbould PJ Ecol Evol 12-Nov-2020
PMCID:PMC7771134
doi:10.1002/ece3.6984
PMID:33391690
Tropical peatland carbon storage linked to global latitudinal trends in peat recalcitrance Hodgkins SB, Richardson CJ, Dommain R, Wang H, Glaser PH, Verbeke B, Winkler BR, Cobb AR, Rich VI, Missilmani M, Flanagan N, Ho M, Hoyt AM, Harvey CF, Vining SR, Hough MA, Moore TR, Richard PJ, De La Cruz FB, Toufaily J, Hamdan R, Cooper WT, Chanton JP Nat Commun 07-Sep-2018
PMCID:PMC6128871
doi:10.1038/s41467-018-06050-2
PMID:30194308
The influence of oxygen and methane on nitrogen fixation in subarctic Sphagnum mosses Kox MA, Aalto SL, Penttilä T, Ettwig KF, Jetten MS, van Kessel MA AMB Express 05-May-2018
PMCID:PMC5936483
doi:10.1186/s13568-018-0607-2
PMID:29730829
Distinct Anaerobic Bacterial Consumers of Cellobiose-Derived Carbon in Boreal Fens with Different CO2/CH4 Production Ratios Juottonen H, Eiler A, Biasi C, Tuittila ES, Yrjälä K, Fritze H Appl Environ Microbiol 01-Feb-2017
PMCID:PMC5288814
doi:10.1128/AEM.02533-16
PMID:27913414
Evaluation of a wetland classification system devised for management in a region with a high cover of peatlands: an example from the Cook Inlet Basin, Alaska Gracz M, Glaser PH Wetl Ecol Manag 19-Oct-2016
PMCID:PMC7115032
doi:10.1007/s11273-016-9504-0
PMID:32269420
Emissions of methane from northern peatlands: a review of management impacts and implications for future management options Abdalla M, Hastings A, Truu J, Espenberg M, Mander Ü, Smith P Ecol Evol 13-Sep-2016
PMCID:PMC5513236
doi:10.1002/ece3.2469
PMID:28725384
Abundant Trimethylornithine Lipids and Specific Gene Sequences Are Indicative of Planctomycete Importance at the Oxic/Anoxic Interface in Sphagnum-Dominated Northern Wetlands Moore EK, Villanueva L, Hopmans EC, Rijpstra WI, Mets A, Dedysh SN, Sinninghe Damsté JS Appl Environ Microbiol 19-Aug-2015
PMCID:PMC4542221
doi:10.1128/AEM.00324-15
PMID:26150465
Predicting climate change effects on wetland ecosystem services using species distribution modeling and plant functional traits Moor H, Hylander K, Norberg J Ambio 09-Jan-2015
PMCID:PMC4288999
doi:10.1007/s13280-014-0593-9
PMID:25576286
Clonal in vitro propagation of peat mosses (Sphagnum L.) as novel green resources for basic and applied research Beike AK, Spagnuolo V, Lüth V, Steinhart F, Ramos-Gómez J, Krebs M, Adamo P, Rey-Asensio AI, Angel Fernández J, Giordano S, Decker EL, Reski R Plant Cell Tissue Organ Cult 14-Nov-2014
PMCID:PMC4551280
doi:10.1007/s11240-014-0658-2
PMID:26321779
Methanotrophy induces nitrogen fixation during peatland development Larmola T, Leppänen SM, Tuittila ES, Aarva M, Merilä P, Fritze H, Tiirola M Proc Natl Acad Sci U S A 30-Dec-2013
PMCID:PMC3896166
doi:10.1073/pnas.1314284111
PMID:24379382
Size matters for violent discharge height and settling speed of Sphagnum spores: important attributes for dispersal potential Sundberg S Ann Bot 01-Jan-2009
PMCID:PMC2814761
doi:10.1093/aob/mcp288
PMID:20123930

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