Origin and elaboration of a major evolutionary transition in individuality.


Journal

Nature
ISSN: 1476-4687
Titre abrégé: Nature
Pays: England
ID NLM: 0410462

Informations de publication

Date de publication:
09 2020
Historique:
received: 02 10 2018
accepted: 03 06 2020
pubmed: 4 9 2020
medline: 22 9 2020
entrez: 4 9 2020
Statut: ppublish

Résumé

Obligate endosymbiosis, in which distantly related species integrate to form a single replicating individual, represents a major evolutionary transition in individuality

Identifiants

pubmed: 32879485
doi: 10.1038/s41586-020-2653-6
pii: 10.1038/s41586-020-2653-6
doi:

Substances chimiques

RNA, Messenger 0

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

239-244

Commentaires et corrections

Type : CommentIn

Références

Maynard-Smith, J. & Szathmary, E. The Major Transitions in Evolution (Oxford Univ. Press, 1997).
West, S. A., Fisher, R. M., Gardner, A. & Kiers, E. T. Major evolutionary transitions in individuality. Proc. Natl Acad. Sci. USA 112, 10112–10119 (2015).
pubmed: 25964342 doi: 10.1073/pnas.1421402112 pmcid: 4547252
Sachs, J. L., Skophammer, R. G. & Regus, J. U. Evolutionary transitions in bacterial symbiosis. Proc. Natl Acad. Sci. USA 108 (Suppl 2), 10800–10807 (2011).
pubmed: 21690339 doi: 10.1073/pnas.1100304108 pmcid: 3131820
Boomsma, J. J. & Gawne, R. Superorganismality and caste differentiation as points of no return: how the major evolutionary transitions were lost in translation. Biol. Rev. Camb. Philos. Soc. 93, 28–54 (2018).
pubmed: 28508537 doi: 10.1111/brv.12330
Moran, N. A. Symbiosis as an adaptive process and source of phenotypic complexity. Proc. Natl Acad. Sci. USA 104 (Suppl 1), 8627–8633 (2007).
pubmed: 17494762 doi: 10.1073/pnas.0611659104 pmcid: 1876439
Ruiz-Trillo, I. & Nedelcu, A. M. Evolutionary Transitions to Multicellular Life: Principles and Mechanisms Vol. 2 (Springer, 2015).
Blochmann, F. Über das Vorkommen bakterienähnlicher Gebilde in den Geweben und Eiern verschiedener Insekten. Zbl. Bakteriol. 11, 234–240 (1892).
Buchner, P. Endosymbiosis of Animals with Plant Microorganisms (Interscience, 1965).
Tanquary, M. C. Biological and Embryological Studies on Formicidae. PhD thesis, Univ. of Illinois (1912).
Wernegreen, J. J., Kauppinen, S. N., Brady, S. G. & Ward, P. S. One nutritional symbiosis begat another: phylogenetic evidence that the ant tribe Camponotini acquired Blochmannia by tending sap-feeding insects. BMC Evol. Biol. 9, 292 (2009).
pubmed: 20015388 pmcid: 2810300 doi: 10.1186/1471-2148-9-292
Zientz, E., Beyaert, I., Gross, R. & Feldhaar, H. Relevance of the endosymbiosis of Blochmannia floridanus and carpenter ants at different stages of the life cycle of the host. Appl. Environ. Microbiol. 72, 6027–6033 (2006).
pubmed: 16957225 pmcid: 1563639 doi: 10.1128/AEM.00933-06
Aranda-Rickert, A., Fracchia, S., Yela, N. & Marazzi, B. Insights into a novel three-partner interaction between ants, coreids (Hemiptera: Coreidae) and extrafloral nectaries: implications for the study of protective mutualisms. Arthropod-Plant Interact. 11, 525–536 (2017).
doi: 10.1007/s11829-016-9487-z
Clark, R. E., Farkas, T. E., Lichter-Marck, I., Johnson, E. R. & Singer, M. S. Multiple interaction types determine the impact of ant predation of caterpillars in a forest community. Ecology 97, 3379–3388 (2016).
pubmed: 27861790 doi: 10.1002/ecy.1571
Feldhaar, H. et al. Nutritional upgrading for omnivorous carpenter ants by the endosymbiont Blochmannia. BMC Biol. 5, 48 (2007).
pubmed: 17971224 pmcid: 2206011 doi: 10.1186/1741-7007-5-48
de Souza, D. J., Bézier, A., Depoix, D., Drezen, J. M. & Lenoir, A. Blochmannia endosymbionts improve colony growth and immune defence in the ant Camponotus fellah. BMC Microbiol. 9, 29 (2009).
pubmed: 19200360 pmcid: 2660346 doi: 10.1186/1471-2180-9-29
Gil, R. et al. The genome sequence of Blochmannia floridanus: comparative analysis of reduced genomes. Proc. Natl Acad. Sci. USA 100, 9388–9393 (2003).
pubmed: 12886019 doi: 10.1073/pnas.1533499100 pmcid: 170928
Kupper, M., Stigloher, C., Feldhaar, H. & Gross, R. Distribution of the obligate endosymbiont Blochmannia floridanus and expression analysis of putative immune genes in ovaries of the carpenter ant Camponotus floridanus. Arthropod Struct. Dev. 45, 475–487 (2016).
pubmed: 27664781 doi: 10.1016/j.asd.2016.09.004
Ramalho, M. O., Vieira, A. S., Pereira, M. C., Moreau, C. S. & Bueno, O. C. Transovarian transmission of Blochmannia and Wolbachia endosymbionts in the neotropical weaver ant Camponotus textor (Hymenoptera, Formicidae). Curr. Microbiol. 75, 866–873 (2018).
pubmed: 29468305 doi: 10.1007/s00284-018-1459-3
Sauer, C., Dudaczek, D., Hölldobler, B. & Gross, R. Tissue localization of the endosymbiotic bacterium “Candidatus Blochmannia floridanus” in adults and larvae of the carpenter ant Camponotus floridanus. Appl. Environ. Microbiol. 68, 4187–4193 (2002).
pubmed: 12200264 pmcid: 124124 doi: 10.1128/AEM.68.9.4187-4193.2002
Sauer, C., Stackebrandt, E., Gadau, J., Hölldobler, B. & Gross, R. Systematic relationships and cospeciation of bacterial endosymbionts and their carpenter ant host species: proposal of the new taxon Candidatus Blochmannia gen. nov. Int. J. Syst. Evol. Microbiol. 50, 1877–1886 (2000).
pubmed: 11034499 doi: 10.1099/00207713-50-5-1877
Wolschin, F., Hölldobler, B., Gross, R. & Zientz, E. Replication of the endosymbiotic bacterium Blochmannia floridanus is correlated with the developmental and reproductive stages of its ant host. Appl. Environ. Microbiol. 70, 4096–4102 (2004).
pubmed: 15240288 pmcid: 444795 doi: 10.1128/AEM.70.7.4096-4102.2004
Ward, P. S., Blaimer, B. B. & Fisher, B. L. A revised phylogenetic classification of the ant subfamily Formicinae (Hymenoptera: Formicidae), with resurrection of the genera Colobopsis and Dinomyrmex. Zootaxa 4072, 343–357 (2016).
pubmed: 27395929 doi: 10.11646/zootaxa.4072.3.4
Sinotte, V. M., Freedman, S. N., Ugelvig, L. V. & Seid, M. A. Camponotus floridanus ants incur a trade-off between phenotypic development and pathogen susceptibility from their mutualistic endosymbiont Blochmannia. Insects 9, 58 (2018).
pmcid: 6023366 doi: 10.3390/insects9020058
Stoll, S., Feldhaar, H., Fraunholz, M. J. & Gross, R. Bacteriocyte dynamics during development of a holometabolous insect, the carpenter ant Camponotus floridanus. BMC Microbiol. 10, 308 (2010).
pubmed: 21122115 pmcid: 3009655 doi: 10.1186/1471-2180-10-308
Sameshima, S., Hasegawa, E., Kitade, O., Minaka, N. & Matsumoto, T. Phylogenetic comparison of endosymbionts with their host ants based on molecular evidence. Zool. Sci. 16, 993–1000 (1999).
doi: 10.2108/zsj.16.993
Degnan, P. H., Lazarus, A. B., Brock, C. D. & Wernegreen, J. J. Host–symbiont stability and fast evolutionary rates in an ant-bacterium association: cospeciation of Camponotus species and their endosymbionts, Candidatus Blochmannia. Syst. Biol. 53, 95–110 (2004).
pubmed: 14965905 doi: 10.1080/10635150490264842
Extavour, C. G. & Akam, M. Mechanisms of germ cell specification across the metazoans: epigenesis and preformation. Development 130, 5869–5884 (2003).
pubmed: 14597570 doi: 10.1242/dev.00804
Lehmann, R. & Nüsslein-Volhard, C. The maternal gene nanos has a central role in posterior pattern formation of the Drosophila embryo. Development 112, 679–691 (1991).
pubmed: 1935684 doi: 10.1242/dev.112.3.679
Lehmann, R. Germ plasm biogenesis—an oskar-centric perspective. Curr. Top. Dev. Biol. 116, 679–707 (2016).
pubmed: 26970648 pmcid: 4959550 doi: 10.1016/bs.ctdb.2015.11.024
Khila, A. & Abouheif, E. Reproductive constraint is a developmental mechanism that maintains social harmony in advanced ant societies. Proc. Natl Acad. Sci. USA 105, 17884–17889 (2008).
pubmed: 19004767 doi: 10.1073/pnas.0807351105 pmcid: 2584687
Lynch, J. A. et al. The phylogenetic origin of oskar coincided with the origin of maternally provisioned germ plasm and pole cells at the base of the Holometabola. PLoS Genet. 7, e1002029 (2011).
pubmed: 21552321 pmcid: 3084197 doi: 10.1371/journal.pgen.1002029
Lynch, J. A. & Roth, S. The evolution of dorsal–ventral patterning mechanisms in insects. Genes Dev. 25, 107–118 (2011).
pubmed: 21245164 pmcid: 3022256 doi: 10.1101/gad.2010711
Akam, M. Hox genes, homeosis and the evolution of segment identity: no need for hopeless monsters. Int. J. Dev. Biol. 42, 445–451 (1998).
pubmed: 9654030
Hughes, C. L. & Kaufman, T. C. Hox genes and the evolution of the arthropod body plan. Evol. Dev. 4, 459–499 (2002).
pubmed: 12492146 doi: 10.1046/j.1525-142X.2002.02034.x
Braendle, C. et al. Developmental origin and evolution of bacteriocytes in the aphid–Buchnera symbiosis. PLoS Biol. 1, e21 (2003).
pubmed: 14551917 pmcid: 212699 doi: 10.1371/journal.pbio.0000021
Matsuura, Y., Kikuchi, Y., Miura, T. & Fukatsu, T. Ultrabithorax is essential for bacteriocyte development. Proc. Natl Acad. Sci. USA 112, 9376–9381 (2015).
pubmed: 26170303 doi: 10.1073/pnas.1503371112 pmcid: 4522796
Höhna, S. et al. RevBayes: Bayesian phylogenetic inference using graphical models and an interactive model-specification language. Syst. Biol. 65, 726–736 (2016).
pubmed: 27235697 pmcid: 4911942 doi: 10.1093/sysbio/syw021
Wernegreen, J. J., Degnan, P. H., Lazarus, A. B., Palacios, C. & Bordenstein, S. R. Genome evolution in an insect cell: distinct features of an ant–bacterial partnership. Biol. Bull. 204, 221–231 (2003).
pubmed: 12700158 doi: 10.2307/1543563
Bhatkar, A. & Whitcomb, W. Artificial diet for rearing various species of ants. Fla. Entomol. 53, 229–232 (1970).
doi: 10.2307/3493193
Khila, A. & Abouheif, E. In situ hybridization on ant ovaries and embryos. Cold Spring Harb. Protoc. 2009, pdb.prot5250 (2009).
Rafiqi, A. M., Lemke, S. & Schmidt-Ott, U. Megaselia abdita: fixing and devitellinizing embryos. Cold Spring Harb. Protoc. 2011, pdb.prot5602 (2011).
Rothwell, W. F. & Sullivan, W. in Drosophila Protocols (eds Sullivan, W. et al.) 141–157 (Cold Spring Harbor Laboratory Press, 2000).
Bownes, M. A photographic study of development in the living embryo of Drosophila melanogaster. J. Embryol. Exp. Morpol. 33, 789–801 (1975).
Kearse, M. et al. Geneious Basic: an integrated and extendable desktop software platform for the organization and analysis of sequence data. Bioinformatics 28, 1647–1649 (2012).
pubmed: 22543367 pmcid: 3371832 doi: 10.1093/bioinformatics/bts199
Bonasio, R. et al. Genomic comparison of the ants Camponotus floridanus and Harpegnathos saltator. Science 329, 1068–1071 (2010).
pubmed: 20798317 pmcid: 3772619 doi: 10.1126/science.1192428
Kosman, D. et al. Multiplex detection of RNA expression in Drosophila embryos. Science 305, 846 (2004).
pubmed: 15297669 doi: 10.1126/science.1099247
Sambrook, J., Fritsch, E. F. & Maniatis, T. Molecular Cloning: A Laboratory Manual (Cold Spring Harbor Laboratory Press, 1989).
Rafiqi, A. M., Lemke, S. & Schmidt-Ott, U. Megaselia abdita: preparing embryos for injection. Cold Spring Harb. Protoc. 2011, pdb.prot5601 (2011).
Holland, P. M., Abramson, R. D., Watson, R. & Gelfand, D. H. Detection of specific polymerase chain reaction product by utilizing the 5′–3′ exonuclease activity of Thermus aquaticus DNA polymerase. Proc. Natl Acad. Sci. USA 88, 7276–7280 (1991).
pubmed: 1871133 doi: 10.1073/pnas.88.16.7276 pmcid: 52277
Xie, F., Xiao, P., Chen, D., Xu, L. & Zhang, B. miRDeepFinder: a miRNA analysis tool for deep sequencing of plant small RNAs. Plant Mol. Biol. (2012).
Vandesompele, J. et al. Accurate normalization of real-time quantitative RT-PCR data by geometric averaging of multiple internal control genes. Genome Biol. 3, research0034.0031 (2002).
Silver, N., Best, S., Jiang, J. & Thein, S. L. Selection of housekeeping genes for gene expression studies in human reticulocytes using real-time PCR. BMC Mol. Biol. 7, 33 (2006).
pubmed: 17026756 pmcid: 1609175 doi: 10.1186/1471-2199-7-33
Pfaffl, M. W., Tichopad, A., Prgomet, C. & Neuvians, T. P. Determination of stable housekeeping genes, differentially regulated target genes and sample integrity: BestKeeper—Excel-based tool using pair-wise correlations. Biotechnol. Lett. 26, 509–515 (2004).
pubmed: 15127793 doi: 10.1023/B:BILE.0000019559.84305.47
Andersen, C. L., Jensen, J. L. & Ørntoft, T. F. Normalization of real-time quantitative reverse transcription-PCR data: a model-based variance estimation approach to identify genes suited for normalization, applied to bladder and colon cancer data sets. Cancer Res. 64, 5245–5250 (2004).
pubmed: 15289330 doi: 10.1158/0008-5472.CAN-04-0496
Borowiec, M. L. et al. Compositional heterogeneity and outgroup choice influence the internal phylogeny of the ants. Mol. Phylogenet. Evol. 134, 111–121 (2019).
pubmed: 30738910 doi: 10.1016/j.ympev.2019.01.024
Blaimer, B. B. et al. Phylogenomic methods outperform traditional multi-locus approaches in resolving deep evolutionary history: a case study of formicine ants. BMC Evol. Biol. 15, 271 (2015).
pubmed: 26637372 pmcid: 4670518 doi: 10.1186/s12862-015-0552-5
Mezger, D. & Moreau, C. S. Out of South-East Asia: phylogeny and biogeography of the spiny ant genus Polyrhachis Smith (Hymenoptera: Formicidae). Syst. Entomol. 41, 369–378 (2016).
doi: 10.1111/syen.12163
Lilienstern, M. Beiträge zur Bakteriensymbiose der Ameisen. Zeitschrift für Morphologie und Ökologie der Tiere 26, 110–134 (1932).
doi: 10.1007/BF00446391
Jungen, H. Endosymbionten bei Ameisen. Insectes Soc. 15, 227–232 (1968).
doi: 10.1007/BF02225845
Pagel, M., Meade, A. & Barker, D. Bayesian estimation of ancestral character states on phylogenies. Syst. Biol. 53, 673–684 (2004).
pubmed: 15545248 doi: 10.1080/10635150490522232
Rambaut, A., Drummond, A. J., Xie, D., Baele, G. & Suchard, M. A. Posterior summarization in Bayesian phylogenetics using Tracer 1.7. Syst. Biol. 67, 901–904 (2018).
pubmed: 29718447 pmcid: 6101584 doi: 10.1093/sysbio/syy032
Fan, Y., Wu, R., Chen, M.-H., Kuo, L. & Lewis, P. O. Choosing among partition models in Bayesian phylogenetics. Mol. Biol. Evol. 28, 523–532 (2011).
pubmed: 20801907 doi: 10.1093/molbev/msq224
Rueden, C. T. et al. ImageJ2: ImageJ for the next generation of scientific image data. BMC Bioinformatics 18, 529 (2017).
pubmed: 29187165 pmcid: 5708080 doi: 10.1186/s12859-017-1934-z

Auteurs

Ab Matteen Rafiqi (AM)

Department of Biology, McGill University, Montreal, Quebec, Canada.
Beykoz Institute of Life Sciences and Biotechnology, Bezmialem Vakif University, Istanbul, Turkey.

Arjuna Rajakumar (A)

Department of Biology, McGill University, Montreal, Quebec, Canada.

Ehab Abouheif (E)

Department of Biology, McGill University, Montreal, Quebec, Canada. ehab.abouheif@mcgill.ca.

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