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Synonyms:
   Erithacus 

Broader Terms:
   Erithacus 
   Muscicapidae (old world flycatchers) 
   Turdidae 

More Specific:
   Erithacus aequatorialis (Equatorial Akalat) 
   Erithacus aequatorialis pallidigularis 
   Erithacus akahige (Japanese Robin) 
   Erithacus akahige akahige 
   Erithacus akahige rishiriensis 
   Erithacus brunneus (Indian Blue Robin) 
   Erithacus calliope (Siberian Rubythroat) 
   Erithacus chrysaeus (Golden Bush Robin) 
   Erithacus cyane (Siberian Blue Robin) 
   Erithacus cyanea 
   Erithacus cyanurus 
   Erithacus cyanurus cyanurus 
   Erithacus cyornithopsis 
   Erithacus erythrothorax (Forest Robin) 
   Erithacus erythrothorax xanthogaster 
   Erithacus gabela (Gabela Akalat) 
   Erithacus gunningi (East Coast Akalat) 
   Erithacus hyperythrus (Rufous-breasted Bush-Robin) 
   Erithacus indicus (White-browed Bush Robin) 
   Erithacus johnstoniae (Collared Bush Robin) 
   Erithacus komadori (Ryukyu Robin) 
   Erithacus komadori komadori 
   Erithacus komadori namiyei 
   Erithacus komadori subrufa (Southern Ryukyu Robin) 
   Erithacus komadori subrufus 
   Erithacus luscinia (Thrush Nightingale) 
   Erithacus megarhynchos 
   Erithacus megarhynchos africana 
   Erithacus megarhynchos hafizi 
   Erithacus megarhynchos megarhynchos 
   Erithacus megarhynchus 
   Erithacus obscurus (Black-throated Blue Robin) 
   Erithacus pectardens (Firethroat) 
   Erithacus pectoralis (Himalayan Rubythroat) 
   Erithacus rubecula (European Robin) 
   Erithacus rubecula caucasicus 
   Erithacus rubecula hyrcanus 
   Erithacus rubecula marionae 
   Erithacus rubecula melophilus 
   Erithacus rubecula microrhynchus 
   Erithacus rubecula rubecula 
   Erithacus rubecula sardus 
   Erithacus rubecula superbus 
   Erithacus rubecula tataricus 
   Erithacus rubecula valens 
   Erithacus rubecula witherbyi 
   Erithacus ruficeps (Rufous-headed Robin) 
   Erithacus sharpei (Sharpe's Akalat) 
   Erithacus sibilans (Swinhoe's Robin) 
   Erithacus superbus 
   Erithacus svecica 
   Erithacus svecica cyanecula 
   Erithacus svecica svecica 
   Erithacus svecicus (Bluethroat) 
   Erithacus svecicus cyanecula 
   Erithacus svecicus cyaneculus 
   Erithacus svecicus namnetum 
   Erithacus svecicus svecicus 
 
 
Latest Articles on Erithacus from uBioRSS
Pisco-de-peito-ruivo Erithacus rubecula - Aves em Portugal Photo Pool
Pisco-de-peito-ruivo - Aves em Portugal Photo Pool


Erithacus rubecula
Ivan Mik?Ūk - BioLib

External Resources:

Did you mean: Erithaca, Erythaca or Erythacus?



1.  A quasi-experimental approach using telemetry to assess migration-strategy-specific differences in the decision-making processes at stopover.LinkIT
Schmaljohann H, Klinner T
BMC ecology, 2020
http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&db=pubmed&dopt=Abstract&list_uids=0

2.  Isospora oliveirai n. sp. (Chromista: Miozoa: Eimeriidae) from the Greenish Schiffornis Schiffornis virescens (Lafresnaye, 1838) (Passeriformes: Tyranni: Tityridae) in South America.LinkIT
Ort√ļzar-Ferreira CN, Genovez-Oliveira JL, de Souza Oliveira M, de Mello ER, Thode-Filho S, de Oliveira √ĀA, de Lima VM, Ferreira I, Berto BP
Acta parasitologica, 2020
http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&db=pubmed&dopt=Abstract&list_uids=0

3.  Age and Species Comparisons of Visual Mental Manipulation Ability as Evidence for its Development and Evolution.LinkIT
Pailian H, Carey SE, Halberda J, Pepperberg IM
Scientific reports, 2020
http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&db=pubmed&dopt=Abstract&list_uids=0

4.  No evidence for the use of magnetic declination for migratory navigation in two songbird species.LinkIT
Chernetsov N, Pakhomov A, Davydov A, Cellarius F, Mouritsen H
PloS one, 2020
http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&db=pubmed&dopt=Abstract&list_uids=0

5.  Mechanical and structural adaptations to migration in the flight feathers of a Palaearctic passerine.LinkIT
de la Hera I, Hernández-Téllez I, Pérez-Rigueiro J, Pérez-Tris J, Rojo FJ, Tellería JL
Journal of evolutionary biology J. Evol. Biol. Mechanical and structural adaptations to migration in the flight feathers of a Palaearctic passerine. 10.1111/jeb.13630 Current avian migration patterns in temperate regions have been developed during the glacial retreat and subsequent colonization of the ice-free areas during the Holocene. This process resulted in a geographic gradient of greater seasonality as latitude increased that favoured migration-related morphological and physiological (co)adaptations. Most evidence of avian morphological adaptations to migration comes from the analysis of variation in the length and shape of the wings, but the existence of intra-feather structural adjustments has been greatly overlooked despite their potential to be under natural selection. To shed some light on this question, we used data from European robins Erithacus rubecula overwintering in Campo de Gibraltar (Southern Iberia), where sedentary robins coexist during winter with conspecifics showing a broad range of breeding origins and, hence, migration distances. We explicitly explored how wing length and shape, as well as several functional (bending stiffness), developmental (feather growth rate) and structural (size and complexity of feather components) characteristics of flight feathers, varied in relation to migration distance, which was estimated from the hydrogen stable isotope ratios of the summer-produced tail feathers. Our results revealed that migration distance not only favoured longer and more concave wings, but also promoted primaries with a thicker dorsoventral rachis and shorter barb lengths, which, in turn, conferred more bending stiffness to these feathers. We suggest that these intra-feather structural adjustments could be an additional, largely unnoticed, adaptation within the avian migratory syndrome that might have the potential to evolve relatively quickly to facilitate the occupation of seasonal environments. ¬© 2020 European Society For Evolutionary Biology. Journal of Evolutionary Biology ¬© 2020 European Society For Evolutionary Biology. de la Hera Iv√°n I https://orcid.org/0000-0003-0550-9562 Evolution and Conservation Biology Research Group, Department of Biodiversity, Ecology and Evolution, Faculty of Biology, Universidad Complutense de Madrid, Madrid, Spain. Department of Integrative Biology, Oklahoma State University, Stillwater, OK, USA. Hern√°ndez-T√©llez Irene I Evolution and Conservation Biology Research Group, Department of Biodiversity, Ecology and Evolution, Faculty of Biology, Universidad Complutense de Madrid, Madrid, Spain. P√©rez-Rigueiro Jos√© J Department of Materials Science, Universidad Polit√©cnica de Madrid, Madrid, Spain. P√©rez-Tris Javier J Evolution and Conservation Biology Research Group, Department of Biodiversity, Ecology and Evolution, Faculty of Biology, Universidad Complutense de Madrid, Madrid, Spain. Rojo Francisco Javier FJ Department of Materials Science, Universidad Polit√©cnica de Madrid, Madrid, Spain. Teller√≠a Jos√© Luis JL Evolution and Conservation Biology Research Group, Department of Biodiversity, Ecology and Evolution, Faculty of Biology, Universidad Complutense de Madrid, Madrid, Spain. eng CGL2011-22953/BOS Spanish Ministry of Economy and Competitiveness CGL2017-85637-P Spanish Ministry of Economy and Competitiveness CGL2007-62937/BOS Spanish Ministry of Economy and Competitiveness CGL2013-41642-P/BOS Spanish Ministry of Economy and Competitiveness CGL2017-82117-P Spanish Ministry of Economy and Competitiveness Journal Article 2020 04 13 Switzerland J Evol Biol 8809954 1010-061X IM feather mass moult speed moult-migration trade-offs plumage quality 2020 01 18 2020 03 12 2020 04 04 2020 4 14 6 0 2020 4 14 6 0 2020 4 14 6 0 aheadofprint 32282960 10.1111/jeb.13630 REFERENCES, 2020</i></font><br><font color=#008000>http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&db=pubmed&dopt=Abstract&list_uids=0<br></font></span><br>6.  <a href=http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&db=pubmed&dopt=Abstract&list_uids=0 class=title>Stopover departure decisions in songbirds: do long-distance migrants depart earlier and more independently of weather conditions than medium-distance migrants?</a><a href=http://ubio.org/tools/linkit.php?map%5B%5D=all&link_type=2&url=http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&db=pubmed&dopt=Abstract&list_uids=0><img src=linkit.png border=0 title='LinkIT' alt='LinkIT'></a> <br><span class=j>Packmor F, Klinner T, Woodworth BK, Eikenaar C, Schmaljohann H<br><font color=gray><i>Movement ecology, 2020</i></font><br><font color=#008000>http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&db=pubmed&dopt=Abstract&list_uids=0<br></font></span><br>7.  <a href=http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&db=pubmed&dopt=Abstract&list_uids=0 class=title>Avian Papilloma and Squamous Cell Carcinoma: a Histopathological, Immunohistochemical and Virological study.</a><a href=http://ubio.org/tools/linkit.php?map%5B%5D=all&link_type=2&url=http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&db=pubmed&dopt=Abstract&list_uids=0><img src=linkit.png border=0 title='LinkIT' alt='LinkIT'></a> <br><span class=j>Jones AL, Su√°rez-Bonnet A, Mitchell JA, Ramirez GA, Stidworthy MF, Priestnall SL<br><font color=gray><i>Journal of comparative pathology, 2020</i></font><br><font color=#008000>http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&db=pubmed&dopt=Abstract&list_uids=0<br></font></span><br>8.  <a href=http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&db=pubmed&dopt=Abstract&list_uids=0 class=title>Assessing African grey parrots' prosocial tendencies in a token choice paradigm.</a><a href=http://ubio.org/tools/linkit.php?map%5B%5D=all&link_type=2&url=http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&db=pubmed&dopt=Abstract&list_uids=0><img src=linkit.png border=0 title='LinkIT' alt='LinkIT'></a> <br><span class=j>Krasheninnikova A, Brucks D, Blanc S, von Bayern AMP<br><font color=gray><i>Royal Society open science, 2019</i></font><br><font color=#008000>http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&db=pubmed&dopt=Abstract&list_uids=0<br></font></span><br>9.  <a href=http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&db=pubmed&dopt=Abstract&list_uids=0 class=title>Ocular Iridociliary Adenoma in a Congo African Grey Parrot (<i>Psittacus <b>erithacus</b></i>).</a><a href=http://ubio.org/tools/linkit.php?map%5B%5D=all&link_type=2&url=http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&db=pubmed&dopt=Abstract&list_uids=0><img src=linkit.png border=0 title='LinkIT' alt='LinkIT'></a> <br><span class=j>Thielen LE, Sledge DG, Hess L<br><font color=gray><i>Journal of avian medicine and surgery, 2019</i></font><br><font color=#008000>http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&db=pubmed&dopt=Abstract&list_uids=0<br></font></span><br>10.  <a href=http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&db=pubmed&dopt=Abstract&list_uids=0 class=title>Comparison of Dorsoventral Erect and Ventrodorsal Supine Radiographic Views for the Evaluation of Intracoelomic Organs in Clinically Normal African Grey Parrots (<i>Psittacus <b>erithacus</b></i>).</a><a href=http://ubio.org/tools/linkit.php?map%5B%5D=all&link_type=2&url=http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&db=pubmed&dopt=Abstract&list_uids=0><img src=linkit.png border=0 title='LinkIT' alt='LinkIT'></a> <br><span class=j>Zoller G, Chassang L, Steyvoort OV, Huynh M<br><font color=gray><i>Journal of avian medicine and surgery, 2019</i></font><br><font color=#008000>http://www.ncbi.nlm.nih.gov/entrez/query.fcgi?cmd=Retrieve&db=pubmed&dopt=Abstract&list_uids=0<br></font></span><br><br><br><table cellspacing=0 cellpadding=0 align=center><tr valign=bottom><td align=center><img src=p.png border=0></td><td align=center><img src=o_red.png border=0></td><td 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