Chamaedaphne calyculata - Unknown
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Internal ID UUID644010b146544867817088
Scientific name Chamaedaphne calyculata
Authority (L.) Moench
First published in Methodus : 457 (1794)

Description Top

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Synonyms Top

Scientific name Authority First published in
Andromeda angustifolia Pursh Fl. Amer. Sept. (Pursh) 1: 291. 1813 [Dec 1813]
Andromeda calyculata L. Sp. Pl. : 394 (1753)
Andromeda calyculata var. angustifolia Aiton Hort. Kew. [W. Aiton] 2: 70. 1789
Andromeda calyculata var. anomala Vent. Jard. Malmaison : t. 80 (1804)
Andromeda calyculata var. latifolia Aiton Hort. Kew. 2: 70 (1789)
Andromeda calyculata var. nana G.Lodd. Bot. Cab. 9: t. 862 (1821)
Andromeda calyculata var. ventricosa Aiton Hort. Kew. 2: 70 1789
Andromeda crispa Poir. Encycl. , Suppl. 1: 356 (1810)
Cassandra angustifolia (Aiton) G.Don Gen. Hist. 3: 830. 1834 [8-15 Nov 1834]
Cassandra angustifolia var. anomala (Vent.) DC. Prodr. 7: 610 (1839)
Cassandra calyculata (L.) D.Don Edinburgh New Philos. J. 17: 158 (1834)
Cassandra calyculata var. angustifolia A.Gray Syn. Fl. N. Amer. 2(1): 35 (1878)
Cassandra calyculata var. latifolia F.Seym. Fl. New England , ed. 2: 431 (1982)
Cassandra calyculata var. nana (G.Lodd.) Bean Trees & Shrubs Brit. Isles 1: 302 (1914)
Chamaedaphne calyculata var. angustifolia (Aiton) Rehder Cycl. Amer. Hort. 1: 287 (1900)
Chamaedaphne calyculata var. latifolia (Aiton) Fernald Rhodora 47: 390 (1945)
Chamaedaphne calyculata var. nana (Lodd.) Rehder Stand. Cycl. Hort. 2: 732 (1914)
Chamaedaphne calyculata subsp. nana (Lodd.) A.P.Khokhr. Sosud. Rast. Sovet. Dal'nego Vostoka 5: 144 (1991)
Chamaedaphne crispa (Poir.) Spach Hist. Nat. Vég. 9: 477 (1838)
Exolepta calyculata Raf. Amer. Monthly Mag. & Crit. Rev. 4: 193 (1819)
Hydragonum calyculatum (L.) Kuntze Revis. Gen. Pl. 2: 390 (1891)

Common names Top

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Language Common/alternative name
English leatherleaf
Belarusian балотны мірт звычайны
Czech lýkoveček drobnokališný
Danish læderløv
German torfgränke
German zwerglorbeer
German lyonia calyculata
Estonian hanevits
Finnish vaivero
Lithuanian bereinis
Lithuanian durpyninis bereinis
Polish chamedafne północna
Russian Подбел болотный
Russian Андромеда болотная
Russian Болотный мирт
Russian Болотный мирт обыкновенный
Russian Болотный мирт чашечный
Russian Хамедафне обыкновенная
Russian Хамедафне болотная
Russian Хамедафна обыкновенная
Russian Хамедафна болотная
Russian Кассандра обыкновенная
Swedish finnmyrtensläktet
Swedish finnmyrtenväxter
Swedish finnmyrtnar
Swedish finnmyrten
tt Сазкуак
Chinese 甸杜
Chinese 湿原踯躅
Chinese 地桂

Subspecies (abbr. subsp./ssp.) Top

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Varieties (abbr. var.) Top

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Subvarieties (abbr. subvar.) Top

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Forms (abbr. f.) Top

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Germination/Propagation Top

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Sow seeds at 20°C, expecting germination within 3 months without further temperature treatment.
Requires Light or Surface Sowing: These seeds need light to germinate and should not be covered with soil or only very lightly. They are often very small and sown directly on the surface of the growing medium.
peat based medium

Distribution (via POWO/KEW) Top

Legend for the distribution data:
- Doubtful data
- Extinct
- Introduced
- Native
  • Asia-temperate
    • China
      • Inner Mongolia
      • Manchuria
    • Eastern Asia
      • Japan
      • Korea
    • Mongolia
      • Mongolia
    • Russian Far East
      • Amur
      • Kamchatka
      • Khabarovsk
      • Magadan
      • Primorye
      • Sakhalin
    • Siberia
      • Altay
      • Buryatiya
      • Chita
      • Irkutsk
      • Krasnoyarsk
      • West Siberia
      • Yakutskiya
  • Europe
    • Eastern Europe
      • Baltic States
      • Belarus
      • Central European Russia
      • East European Russia
      • North European Russia
      • Northwest European Russia
      • Ukraine
    • Middle Europe
      • Poland
    • Northern Europe
      • Finland
      • Sweden
  • Northern America
    • Eastern Canada
      • Labrador
      • New Brunswick
      • Newfoundland
      • Nova Scotia
      • Ontario
      • Prince Edward Island
      • Québec
    • North-central U.S.A.
      • Illinois
      • Iowa
      • Minnesota
      • Wisconsin
    • Northeastern U.S.A.
      • Connecticut
      • Indiana
      • Maine
      • Massachusetts
      • Michigan
      • New Hampshire
      • New Jersey
      • New York
      • Ohio
      • Pennsylvania
      • Rhode Island
      • Vermont
      • West Virginia
    • Southeastern U.S.A.
      • Delaware
      • Georgia
      • Maryland
      • North Carolina
      • South Carolina
    • Subarctic America
      • Alaska
      • Northwest Territorie
      • Nunavut
      • Yukon
    • Western Canada
      • Alberta
      • British Columbia
      • Manitoba
      • Saskatchewan

Links to other databases Top

Suggest others/fix!
Database ID/link to page
World Flora Online wfo-0000599524
Canadensys 5504
USDA Plants CHCA2
Tropicos 12300013
INPN 762065
KEW urn:lsid:ipni.org:names:1058520-2
The Plant List kew-2715460
Open Tree Of Life 324770
Observations.org 116444
NCBI Taxonomy 13417
Nature Serve 2.152623
IUCN Red List 64310601
IPNI 1058520-2
iNaturalist 132767
GBIF 5333436
Freebase /m/0g5c61
WisFlora 12906
FEIS plants/shrub/chacal
EPPO CHDCA
EOL 583612
Elurikkus 3618
USDA GRIN 10105
PFAF Chamaedaphne calyculata

Genomes (via NCBI) Top

No reference genome is available on NCBI yet. We are constantly monitoring for new data.

Scientific Literature Top

Below are displayed the latest 15 articles published in PMC (PubMed Central®) and other sources (DOI number only)!
If you wish to see all the related articles click here.
Title Authors Publication Released IDs
A cryptic syngameon within Betula shrubs revealed: Implications for conservation in changing subarctic environments Touchette L, Godbout J, Lamothe M, Porth I, Isabel N Evol Appl 17-Apr-2024
PMCID:PMC11022622
doi:10.1111/eva.13689
PMID:38633131
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
Climate warming and elevated CO2 alter peatland soil carbon sources and stability Ofiti NO, Schmidt MW, Abiven S, Hanson PJ, Iversen CM, Wilson RM, Kostka JE, Wiesenberg GL, Malhotra A Nat Commun 20-Nov-2023
PMCID:PMC10662476
doi:10.1038/s41467-023-43410-z
PMID:37985767
Reversal in the drought stress response of the Scots pine forest ecosystem: Local soil water regime as a key to improving climate change resilience Bogachev MI, Gafurov AM, Iskandirov PY, Kaplun DI, Kayumov AR, Lyanova AI, Pyko NS, Pyko SA, Safonova AN, Sinitca AM, Usmanov BM, Tishin DV Heliyon 29-Oct-2023
PMCID:PMC10638002
doi:10.1016/j.heliyon.2023.e21574
PMID:37954317
Microbial activity contributes to spatial heterogeneity of wetland methane fluxes Arnold W, Taylor M, Bradford M, Raymond P, Peccia J Microbiol Spectr 20-Sep-2023
PMCID:PMC10580924
doi:10.1128/spectrum.02714-23
PMID:37728556
Shading contributes to Sphagnum decline in response to warming Norby RJ, Baxter T, Živković T, Weston DJ Ecol Evol 19-Sep-2023
PMCID:PMC10507575
doi:10.1002/ece3.10542
PMID:37732286
Night-time water relations and gas exchange in cut shoots of five boreal dwarf shrub species: impact of soil water availability Kupper P, Tullus A, Rohula-Okunev G Physiol Mol Biol Plants 31-Aug-2023
PMCID:PMC10564692
doi:10.1007/s12298-023-01350-4
PMID:37829697
Boreal conifers maintain carbon uptake with warming despite failure to track optimal temperatures Dusenge ME, Warren JM, Reich PB, Ward EJ, Murphy BK, Stefanski A, Bermudez R, Cruz M, McLennan DA, King AW, Montgomery RA, Hanson PJ, Way DA Nat Commun 03-Aug-2023
PMCID:PMC10400668
doi:10.1038/s41467-023-40248-3
PMID:37537190
Using long‐term data from a whole ecosystem warming experiment to identify best spring and autumn phenology models Schädel C, Seyednasrollah B, Hanson PJ, Hufkens K, Pearson KJ, Warren JM, Richardson AD Plant Environ Interact 29-Jun-2023
PMCID:PMC10423976
doi:10.1002/pei3.10118
PMID:37583877
Inference of future bog succession trajectory from spatial chronosequence of changing aapa mires Kolari TH, Tahvanainen T Ecol Evol 18-Apr-2023
PMCID:PMC10111175
doi:10.1002/ece3.9988
PMID:37082320
Species richness drives selection of individuals within wetlands based on traits related to acquisition and utilization of light Deschamps L, Proulx R, Rheault G, Gross N, Watson C, Maire V Ecol Evol 07-Apr-2023
PMCID:PMC10082176
doi:10.1002/ece3.9959
PMID:37038518
Ecological and Geographical Structure of the Plant Cover of the East Asian Boreal–Nemoral Ecotone (the Lower Amur Region, Far East Russia) Kryukova MV Plants (Basel) 30-Jan-2023
PMCID:PMC9919551
doi:10.3390/plants12030615
PMID:36771699
Warming in Cold Seasons Increases the Abundance of Ground-Dwelling Collembola in Permafrost Wetlands Zhang S, Xie Z, Dou Y, Sun X, Chang L, Wu D Insects 30-Dec-2022
PMCID:PMC9864308
doi:10.3390/insects14010033
PMID:36661961
Data on the temporal changes in soil properties and microbiome composition after a jet-fuel contamination during the pot and field experiments Semenkov IN, Shelyakin PV, Nikolaeva DD, Tutukina MN, Sharapova AV, Lednev SA, Sarana YV, Gelfand MS, Krechetov PP, Koroleva TV Data Brief 27-Dec-2022
PMCID:PMC9826931
doi:10.1016/j.dib.2022.108860
PMID:36632439
Chloroplast genome assemblies and comparative analyses of commercially important Vaccinium berry crops Fahrenkrog AM, Matsumoto GO, Toth K, Jokipii-Lukkari S, Salo HM, Häggman H, Benevenuto J, Munoz PR Sci Rep 14-Dec-2022
PMCID:PMC9751094
doi:10.1038/s41598-022-25434-5
PMID:36517490

Phytochemical Profile Top

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Below are displayed the proven (via scientific papers) natural compounds!
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Name PubChem ID Canonical SMILES MW Found in Proof
> Lipids and lipid-like molecules / Prenol lipids / Triterpenoids
Oleanolic Acid 10494 Click to see CC1(CCC2(CCC3(C(=CCC4C3(CCC5C4(CCC(C5(C)C)O)C)C)C2C1)C)C(=O)O)C 456.70 unknown https://doi.org/10.1007/BF00598555
> Phenylpropanoids and polyketides / Flavonoids / Flavonoid glycosides / Flavonoid O-glycosides / Flavonoid-3-O-glycosides
Quercetin 3-arabinoside 10252339 Click to see C1=CC(=C(C=C1C2=C(C(=O)C3=C(C=C(C=C3O2)O)O)OC4C(C(C(O4)CO)O)O)O)O 434.30 unknown https://doi.org/10.1007/BF00566808

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