Strong Population Genetic Structure in a Broadcast-Spawning Antarctic Marine Invertebrate

Hoffman J, Peck LS, Linse K, Clarke A (2011)
Journal of Heredity 102(1): 55-66.

Zeitschriftenaufsatz | Veröffentlicht | Englisch
 
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Autor*in
Hoffman, JosephUniBi ; Peck, Lloyd S.; Linse, Katrin; Clarke, Andrew
Abstract / Bemerkung
Although studies of population genetic structure are commonplace, a strong bias exists toward species from low latitudes and with relatively poor dispersal capabilities. Consequently, we used 280 amplified fragment length polymorphism bands to explore patterns of genetic differentiation among 8 populations of a high latitude broadcast-spawning marine mollusc, the Antarctic limpet Nacella concinna. Over 300 individuals were sampled along a latitudinal gradient spanning the Antarctic Peninsula from Adelaide Island to King George Island (67 degrees-62 degrees S), then to Signy Island (60 degrees S) and South Georgia (54 degrees S). Populations from the Antarctic Peninsula exhibited little genetic structure but were themselves strongly differentiated from both Signy and South Georgia. This finding was analytically highly robust and implies the presence of significant oceanographic barriers to gene flow in a species long regarded as a classic example of a widely dispersing broadcast spawner.
Stichworte
Nacella concinna; Antarctic limpet; mollusc; Antarctic; amplified fragment length polymorphisms; Peninsula; climate change; larval dispersal; phylogeography
Erscheinungsjahr
2011
Zeitschriftentitel
Journal of Heredity
Band
102
Ausgabe
1
Seite(n)
55-66
ISSN
0022-1503
eISSN
1465-7333
Page URI
https://pub.uni-bielefeld.de/record/2003495

Zitieren

Hoffman J, Peck LS, Linse K, Clarke A. Strong Population Genetic Structure in a Broadcast-Spawning Antarctic Marine Invertebrate. Journal of Heredity. 2011;102(1):55-66.
Hoffman, J., Peck, L. S., Linse, K., & Clarke, A. (2011). Strong Population Genetic Structure in a Broadcast-Spawning Antarctic Marine Invertebrate. Journal of Heredity, 102(1), 55-66. https://doi.org/10.1093/jhered/esq094
Hoffman, Joseph, Peck, Lloyd S., Linse, Katrin, and Clarke, Andrew. 2011. “Strong Population Genetic Structure in a Broadcast-Spawning Antarctic Marine Invertebrate”. Journal of Heredity 102 (1): 55-66.
Hoffman, J., Peck, L. S., Linse, K., and Clarke, A. (2011). Strong Population Genetic Structure in a Broadcast-Spawning Antarctic Marine Invertebrate. Journal of Heredity 102, 55-66.
Hoffman, J., et al., 2011. Strong Population Genetic Structure in a Broadcast-Spawning Antarctic Marine Invertebrate. Journal of Heredity, 102(1), p 55-66.
J. Hoffman, et al., “Strong Population Genetic Structure in a Broadcast-Spawning Antarctic Marine Invertebrate”, Journal of Heredity, vol. 102, 2011, pp. 55-66.
Hoffman, J., Peck, L.S., Linse, K., Clarke, A.: Strong Population Genetic Structure in a Broadcast-Spawning Antarctic Marine Invertebrate. Journal of Heredity. 102, 55-66 (2011).
Hoffman, Joseph, Peck, Lloyd S., Linse, Katrin, and Clarke, Andrew. “Strong Population Genetic Structure in a Broadcast-Spawning Antarctic Marine Invertebrate”. Journal of Heredity 102.1 (2011): 55-66.

14 Zitationen in Europe PMC

Daten bereitgestellt von Europe PubMed Central.

RAD sequencing resolves fine-scale population structure in a benthic invertebrate: implications for understanding phenotypic plasticity.
Vendrami DL, Telesca L, Weigand H, Weiss M, Fawcett K, Lehman K, Clark MS, Leese F, McMinn C, Moore H, Hoffman JI., R Soc Open Sci 4(2), 2017
PMID: 28386419
Population structure and historical demography of South American sea lions provide insights into the catastrophic decline of a marine mammal population.
Hoffman JI, Kowalski GJ, Klimova A, Eberhart-Phillips LJ, Staniland IJ, Baylis AM., R Soc Open Sci 3(7), 2016
PMID: 27493782
A hierarchical classification of benthic biodiversity and assessment of protected areas in the Southern Ocean.
Douglass LL, Turner J, Grantham HS, Kaiser S, Constable A, Nicoll R, Raymond B, Post A, Brandt A, Beaver D., PLoS One 9(7), 2014
PMID: 25032993
Hierarchical population genetic structure in a direct developing antarctic marine invertebrate.
Hoffman JI, Clarke A, Clark MS, Peck LS., PLoS One 8(5), 2013
PMID: 23691125
Unexpected fine-scale population structure in a broadcast-spawning Antarctic marine mollusc.
Hoffman JI, Clarke A, Clark MS, Fretwell P, Peck LS., PLoS One 7(3), 2012
PMID: 22403655
Marked changes in neuropeptide expression accompany broadcast spawnings in the gastropod Haliotis asinina.
York PS, Cummins SF, Degnan SM, Woodcroft BJ, Degnan BM., Front Zool 9(1), 2012
PMID: 22571815
Iceberg scour and shell damage in the Antarctic bivalve Laternula elliptica.
Harper EM, Clark MS, Hoffman JI, Philipp EE, Peck LS, Morley SA., PLoS One 7(9), 2012
PMID: 23029484

74 References

Daten bereitgestellt von Europe PubMed Central.

AFLP markers for DNA fingerprinting in cattle.
Ajmone-Marsan P, Valentini A, Cassandro M, Vecchiotti-Antaldi G, Bertoni G, Kuiper M., Anim. Genet. 28(6), 1997
PMID: 9589583
Biodiversity and biogeography of southern temperate and polar bryozoans
Barnes, Global Ecol Biogeogr 17(), 2008
Examining vulnerability of Antarctic shelf biodiversity to predicted climate warming
Barnes, Clim Res 37(), 2008
Acute temperature sensitivity of Antarctic invertebrates determines colonisation potential, biogeography and resilience to environmental change
Barnes, Glob Chang Biol (), 0
Identifying adaptive genetic divergence among populations from genome scans.
Beaumont MA, Balding DJ., Mol. Ecol. 13(4), 2004
PMID: 15012769
Evaluating loci for use in the genetic analysis of population structure
Beaumont, P Roy Soc Lond B Bio 263(), 1996
Morphological and genetic variation in the Antarctic limpet Nacella concinna (Strebel, 1908)
Beaumont, J Molluscan Stud 57(), 1991
Ten years of AFLP in ecology and evolution: why so few animals?
Bensch S, Akesson M., Mol. Ecol. 14(10), 2005
PMID: 16101761
Contrasting phylogeography in three endemic Hawaiian limpets (Cellana spp.) with similar life histories.
Bird CE, Holland BS, Bowen BW, Toonen RJ., Mol. Ecol. 16(15), 2007
PMID: 17651195
How to track and assess genotyping errors in population genetics studies.
Bonin A, Bellemain E, Bronken Eidesen P, Pompanon F, Brochmann C, Taberlet P., Mol. Ecol. 13(11), 2004
PMID: 15487987
Antarctic sessile marine benthos: colonisation and growth on artificial substrata over three years
Bowden, Mar Ecol Prog Ser 316(), 2006
Global patterns in marine dispersal estimates: the influence of geography, taxonomic category and life history.
Bradbury IR, Laurel B, Snelgrove PV, Bentzen P, Campana SE., Proc. Biol. Sci. 275(1644), 2008
PMID: 18445556
Do Antarctic benthic invertebrates show an extended level of eurybathy?
Brey, Antarct Sci 8(), 1996
Temperature, latitude and reproductive effort
Clarke, Mar Ecol. Progr Ser 38(), 1987
Evolution in the cold
Clarke, Antarct Sci 112(), 2000
The origin of the Southern Ocean marine fauna
Clarke, 1989
Antarctic marine benthic diversity
Clarke, Ocean Mar Biol Annu Rev 41(), 2003
Pinniped phylogenetic relationships inferred using AFLP markers.
Dasmahapatra KK, Hoffman JI, Amos W., Heredity (Edinb) 103(2), 2009
PMID: 19277054

Deacon, 1984
Genetic differentiation between morphotypes in the Antarctic limpet Nacella concinna as revealed by inter-simple sequence repeat markers
De, Mar Biol 154(), 2008
Contamination, error, and nonspecific molecular tools.
Dyer AT, Leonard KJ., Phytopathology 90(6), 2000
PMID: IND22304702

Gonzáles-Wevae, 0

Hartl, 2000
The utility of fast evolving molecular markers for studying speciation in the Antarctic benthos
Held, Polar Biol 30(), 2009
No evidence for genetic differentiation between Antarctic limpet Nacella concinna morphotypes
Hoffman, Mar Biol 157(), 2010
Water mass distribution and circulation west of the Antarctic Peninsula and including Bransfield Strait
Hofmann, 1996
Inferring weak population structure with the assistance of sample group information.
Hubisz MJ, Falush D, Stephens M, Pritchard JK., Mol Ecol Resour 9(5), 2009
PMID: 21564903

Jeffreys, 1961
Antarctic Peninsula climate variability and its causes as revealed by instrumental records
King, Antarct Res Ser 79(), 2003
Is the Scotia Sea a centre of Antarctic marine diversification? Some evidence of cryptic speciation in the circum-Antarctic bivalve Lissarca notorcadensis (Arcoidea: Philobryidae)
Linse, Polar Biol 30(), 2007
The power and promise of population genomics: from genotyping to genome typing.
Luikart G, England PR, Tallmon D, Jordan S, Taberlet P., Nat. Rev. Genet. 4(12), 2003
PMID: 14631358
Genetic diversity of Nymphon (Arthropoda: Pycnogonida: Nymphonidae) along the Antarctic Peninsula with a focus on Nymphon australe Hodgson 1902
Mahon, Mar Biol 155(), 2008
Gene flow by larval dispersal in the Antarctic notothenioid fish Gobionotothen gibberifrons.
Matschiner M, Hanel R, Salzburger W., Mol. Ecol. 18(12), 2009
PMID: 19457182
Amplified fragment length polymorphism (AFLP) in soybean: species diversity, inheritance, and near-isogenic line analysis.
Maughan PJ, Saghai Maroof MA, Buss GR, Huestis GM., Theor. Appl. Genet. 93(3), 1996
PMID: 24162296
Almost forgotten or latest practice? AFLP applications, analyses and advances.
Meudt HM, Clarke AC., Trends Plant Sci. 12(3), 2007
PMID: 17303467
A first description of the Antarctic Peninsula Coastal Current
Moffat, Deep Sea Res II 55(), 2008
Geographical variation in thermal tolerance within Southern Ocean marine ectotherms.
Morley SA, Hirse T, Portner HO, Peck LS., Comp. Biochem. Physiol., Part A Mol. Integr. Physiol. 153(2), 2009
PMID: 19535033
AFLP genotyping and fingerprinting
Mueller, TREE 14(), 1999
Genomic signatures of local directional selection in a high gene flow marine organism; the Atlantic cod (Gadus morhua).
Nielsen EE, Hemmer-Hansen J, Poulsen NA, Loeschcke V, Moen T, Johansen T, Mittelholzer C, Taranger GL, Ogden R, Carvalho GR., BMC Evol. Biol. 9(), 2009
PMID: 19948077
Ecophysiology of Antarctic ectotherms: limits to life
Peck, Polar Biol 25(), 2002
Prospects for survival in the Southern Ocean; vulnerability of benthic species to temperature change
Peck, Antarct Sci 17(), 2005
Negative feedback in the cold: ice retreat produces new carbon sinks in Antarctica
PECK LS, BARNES DKA, COOK AJ, FLEMING AH, CLARKE A., Global change biology. 16(9), 2010
PMID: IND44409023
Animal temperature limits and ecological relevance: effects of size, activity and rates of change
Peck LS, Clark MS, Morley SA, Massey A, Rossetti H., Functional ecology. 23(2), 2009
PMID: IND44176095
Poor acclimation capacities in Antarctic marine ectotherms
Peck, Mar Biol (), 0
Very slow development in two Antarctic bivalve molluscs, the infaunal clam, Laternula elliptica and the scallop Adamussium colbecki
Peck, Mar Biol 150(), 1997
Pelagic larval development in the brooding Antarctic brachiopod Liothyrella uva
Peck, Mar Biol 120(), 1994
Specificity of substrate recognition by the EcoRI restriction endonuclease.
Polisky B, Greene P, Garfin DE, McCarthy BJ, Goodman HM, Boyer HW., Proc. Natl. Acad. Sci. U.S.A. 72(9), 1975
PMID: 242001
Antarctic and subantarctic mollusca: Pelecypoda and Gastropoda
Powell, Discovery Rep (USA) 26(), 1951
Inference of population structure using multilocus genotype data.
Pritchard JK, Stephens M, Donnelly P., Genetics 155(2), 2000
PMID: 10835412
Circulation on the West Antarctic peninsula derived from 6 years of shipboard ADCP transects
Savidge, Deep Sea Res I 56(), 2009
(Patellidae) at Signy Island, in relation to environmental variables
Strebel, J Molluscan Stud 64(), 1908
Circumpolar connections between Antarctic krill (Euphausia superba Dana) populations: investigating the roles of ocean and sea ice transport
Thorpe, Deep Sea Res I 54(), 2007
Influence of climatic fluctuations on species diversity within the Tethyan provincial system
Valentine, 1967

Vekemans, 2002
AFLP: a new technique for DNA fingerprinting.
Vos P, Hogers R, Bleeker M, Reijans M, van de Lee T, Hornes M, Frijters A, Pot J, Peleman J, Kuiper M., Nucleic Acids Res. 23(21), 1995
PMID: 7501463
Introduction to the ecology of the Antarctic limpet Patinigera polaris (Hombron and Jaquinot) at Signy Island, South Orkney Islands
Walker, Brit Antarct Surv B 28(), 1972
Differential gene exchange between parapatric morphs of Littorina saxatilis detected using AFLP markers
Wilding, J Evol Biol 14(), 2001
Multiple lineages and absence of panmixia in the ‘cirumpolar’ crinoid Promachocrinus kerguelensis from the Atlantic sector of Antarctica
Wilson, Mar Biol 152(), 2007
The genetical structure of populations.
WRIGHT S., Ann Eugen 15(4), 1951
PMID: 24540312
Trends, rhythms, and aberrations in global climate 65 Ma to present.
Zachos J, Pagani M, Sloan L, Thomas E, Billups K., Science 292(5517), 2001
PMID: 11326091
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