File:Anillo de la vida.png
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editDescriptionAnillo de la vida.png |
Español: Anillo de la vida: Representación del Árbol filogenético procariota cerrado o circular, lo que permite graficar el Origen simbiogenético eucariota = English: Phylogenetic ring showing the diversity of prokaryotes, and symbiogenetic origins of eukaryotes |
Date | |
Source | Own work |
Author | Mauricio Lucioni |
English
editPhylogenetic ring of life based on the eukaryotic symbiogenetic origin from the biological fusion between an archaeon and a bacterium.[1] [2] The following prokaryotic clades are represented:
- Terrabacteria: Bacterial superphylum related to adaptation to terrestrial habitat[5] and supported by protein[6] and genomic analysis.[7]
- Posibacteria: Group that includes gram-positive bacteria based on protein,[8] [9] enzymatic and structural similarities.[10] Structurally it groups together monoderm bacteria[11] and is supported by the phylogeny of ribosomal proteins.[12]
- Gracilicutes, PVC, FCB and Rhodobacteria: Clades that include gram-negative and structurally diderm bacteria. They are phylogenetically supported by the phylogeny of 16S and 23S ribosomal RNA,[13] proteome,[14] ribosomal proteins,[12] genome,[15] and evolutionary theories.[10]
Español
editAnillo filogenético de la vida basado en el origen simbiogenético eucariota a partir de la fusión biológica entre una arquea y una bacteria.[1] [2] Están representados los siguientes clados procariotas:
- Terrabacteria: Superfilo bacteriano relacionado con la adaptación al hábitat terrestre[5] y respaldado por el análisis proteico[6] y genómico.[7]
- Posibacteria: Grupo que incluye a las bacterias grampositivas basado en semejanzas proteicas,[8] [9] enzimáticas y estructurales.[10] Estructuralmente agrupa a las bacterias monodérmicas[11] y está respaldado por la filogenia de proteínas ribosómicas.[12]
- Gracilicutes, PVC, FCB y Rhodobacteria: Clados que incluyen bacterias gramnegativas y estructuralmente didérmicas. Están filogenéticamente respaldados por la filogenia del ARN ribosómico 16S y 23S,[13] proteoma,[14] proteínas ribosómicas,[12] genoma[15] y teorías evolutivas.[10]
Referencias
edit- ↑ a b Maria Rivera & James Lake 2004 The ring of life provides evidence for a genome fusion origin of eukaryotes. Nature 431, 152-155 doi:10.1038/nature02848
- ↑ a b Ed Yong 2010 Tree or ring: the origin of complex cells. archive copy at the Wayback Machine Discovermagazine.com/notrocketscience
- ↑ a b L. Guy & T. Ettema 2011, The archaeal ‘TACK’ superphylum and the origin of eukaryotes Sciencedirect Volume 19, Issue 12, December 2011, Pages 580–587
- ↑ a b Céline Petitjean et al 2014. Rooting the Domain Archaea by Phylogenomic Analysis Supports the Foundation of the New Kingdom Proteoarchaeota Genome Biol Evol (2014) doi: 10.1093/gbe/evu274
- ↑ a b Battistuzzi, F.U. & Hedges, S.B. (2009). A major clade of prokaryotes with ancient adaptations to life on land. Molecular Biology Evolution 26 (2): 335–43. doi:10.1093/molbev/msn247
- ↑ a b Wu, Dongying et al 2009. A phylogeny-driven genomic encyclopaedia of Bacteria and Archaea. Vol 462|24/31 December 2009| doi:10.1038/nature08656
- ↑ a b Rinke, Christian et al 2013. Insights into the phylogeny and coding potential of microbial dark matter. Fig 2: Maximum-likelihood phylogenetic inference of Archaea and Bacteria. Nature 499, 431–437 (25 July 2013) doi:10.1038/nature12352
- ↑ a b Gupta RS 1998. Protein phylogenies and signature sequences: A reappraisal of evolutionary relationships among archaebacteria, eubacteria, and eukaryotes. Microbiol Mol Biol Rev. 1998 Dec;62(4):1435-91.
- ↑ a b Ravagnani A, Finan CL & Young M. 2005. A novel firmicute protein family related to the actinobacterial resuscitation-promoting factors by non-orthologous domain displacement. BMC Genomics. 2005 Mar 17;6:39.
- ↑ a b c d Thomas Cavalier-Smith 2006. Rooting the tree of life by transition analyses. Biology Direct 2006, 1:19 doi:10.1186/1745-6150-1-19
- ↑ a b Ruggiero MA, Gordon DP, Orrell TM, Bailly N, Bourgoin T, et al. (2015) A Higher Level Classification of All Living Organisms. PLoS ONE 10(6): e0130114. doi: 10.1371/journal.pone.0130114
- ↑ a b c d Hug, L., Baker, B., Anantharaman, K. et al. A new view of the tree of life. Nat Microbiol 1, 16048 (2016) doi:10.1038/nmicrobiol.2016.48
- ↑ a b Cheryl P. Andam & J. Peter Gogarten 2011. Biased gene transfer in microbial evolution. Figure 1 --| Phylogenetic analysis of bacterial tyrosyl-tRNA synthetase amino acid sequences and the corresponding concatenated 16S–23S ribosomal RNA phylogeny. Nature Reviews Microbiology 9, 543-555 doi:10.1038/nrmicro2593
- ↑ a b Emiley A Eloe-Fadrosh et al. 2017, Global metagenomic survey reveals a new bacterial candidate phylum in geothermal springs. Nature Communications 7 · January 2016 DOI: 10.1038/ncomms1047
- ↑ a b Zhu, Q., Mai, U., Pfeiffer, W. et al. (2019) «Phylogenomics of 10,575 genomes reveals evolutionary proximity between domains Bacteria and Archaea». Nature Communications, 10: 5477
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Date/Time | Thumbnail | Dimensions | User | Comment | |
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current | 03:33, 15 March 2020 | 1,107 × 820 (63 KB) | Maulucioni (talk | contribs) | Updating: Adding CPR, Asgard, FCB and Fusobacteria | |
15:25, 30 December 2015 | 1,107 × 820 (38 KB) | Maulucioni (talk | contribs) | adding Proteoarchaeota | ||
05:32, 28 September 2015 | 1,107 × 820 (37 KB) | Maulucioni (talk | contribs) | Posibacteria | ||
22:22, 16 June 2014 | 1,107 × 820 (36 KB) | Maulucioni (talk | contribs) | agrandando letras | ||
23:00, 9 June 2014 | 1,107 × 814 (36 KB) | Maulucioni (talk | contribs) | Cambios menores | ||
19:19, 7 June 2014 | 1,107 × 814 (37 KB) | Maulucioni (talk | contribs) | User created page with UploadWizard |
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