Functional genetic diversity in an exploited marine species and its relevance to fisheries management
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T. Pitcher | L. Hauser | M. Moss | Dongya Y. Yang | I. Jiménez-Hidalgo | D. Ruzzante | Angela P. Fuentes-Pardo | Luke A. Rogers | D. Lowry | Melissa Orobko | C. Tarpey | T. Sandell | E. Petrou
[1] Jameal F. Samhouri,et al. Fishing, environment, and the erosion of a population portfolio , 2020, Ecosphere.
[2] L. Rieseberg,et al. Multiple chromosomal inversions contribute to adaptive divergence of a dune sunflower ecotype , 2019, bioRxiv.
[3] N. Therkildsen,et al. Novel signals of adaptive genetic variation in northwestern Atlantic cod revealed by whole‐genome sequencing , 2019, Evolutionary applications.
[4] He Zhang,et al. A chromosome-level assembly of the Atlantic herring genome—detection of a supergene and other signals of selection , 2019, Genome Research.
[5] J. Piatt,et al. Extreme reduction in nutritional value of a key forage fish during the Pacific marine heatwave of 2014-2016 , 2019, Marine Ecology Progress Series.
[6] L. Andersson,et al. Adaptation to seasonal reproduction and temperature-associated factors drive temporal and spatial differentiation in northwest Atlantic herring despite gene flow , 2019, bioRxiv.
[7] D. Righton,et al. Disentangling structural genomic and behavioural barriers in a sea of connectivity , 2019, Molecular ecology.
[8] D. Ruzzante,et al. Temporal stability and assignment power of adaptively divergent genomic regions between herring (Clupea harengus) seasonal spawning aggregations , 2018, Ecology and evolution.
[9] Jameal F. Samhouri,et al. Spatial variation in exploited metapopulations obscures risk of collapse , 2018, bioRxiv.
[10] L. Hauser,et al. Intraspecific DNA contamination distorts subtle population structure in a marine fish: Decontamination of herring samples before restriction‐site associated sequencing and its effects on population genetic statistics , 2019, Molecular ecology resources.
[11] R. Waples,et al. Genomics and conservation units: The genetic basis of adult migration timing in Pacific salmonids , 2018, Evolutionary applications.
[12] Divya A. Varkey,et al. Herring supports Northeast Pacific predators and fisheries: Insights from ecosystem modelling and management strategy evaluation , 2018, PloS one.
[13] T. Quinn,et al. Selection on the timing of migration and breeding: A neglected aspect of fishing‐induced evolution and trait change , 2018 .
[14] V. Friesen,et al. The role of allochrony in speciation , 2017, Molecular ecology.
[15] L. Andersson,et al. Parallel adaptive evolution of geographically distant herring populations on both sides of the North Atlantic Ocean , 2017, Proceedings of the National Academy of Sciences.
[16] E. Buckler,et al. A study of allelic diversity underlying flowering-time adaptation in maize landraces , 2017, Nature Genetics.
[17] A. von Haeseler,et al. The genomic basis of circadian and circalunar timing adaptations in a midge , 2016, Nature.
[18] M. Blum,et al. Pcadapt: An R Package to Perform Genome Scans for Selection Based on Principal Component Analysis , 2016, bioRxiv.
[19] Mats E. Pettersson,et al. The genetic basis for ecological adaptation of the Atlantic herring revealed by genome sequencing , 2016, eLife.
[20] Jonathan B. Armstrong,et al. Resource waves: phenological diversity enhances foraging opportunities for mobile consumers. , 2016, Ecology.
[21] K. Jakobsen,et al. Three chromosomal rearrangements promote genomic divergence between migratory and stationary ecotypes of Atlantic cod , 2016, Scientific Reports.
[22] S. Kerje,et al. Structural genomic changes underlie alternative reproductive strategies in the ruff (Philomachus pugnax) , 2015, Nature Genetics.
[23] L. Clausen,et al. Gene-associated markers can assign origin in a weakly structured fish, Atlantic herring , 2015 .
[24] R. Asch. Climate change and decadal shifts in the phenology of larval fishes in the California Current ecosystem , 2015, Proceedings of the National Academy of Sciences.
[25] J. Naggert,et al. A Mutation in Syne2 Causes Early Retinal Defects in Photoreceptors, Secondary Neurons, and Müller Glia. , 2015, Investigative ophthalmology & visual science.
[26] A. Twyford,et al. Adaptive divergence in the monkey flower Mimulus guttatus is maintained by a chromosomal inversion , 2015, Evolution; international journal of organic evolution.
[27] Thomas F. Thornton. The Ideology and Practice of Pacific Herring Cultivation among the Tlingit and Haida , 2015 .
[28] C. Knight,et al. Linkage disequilibrium network analysis (LDna) gives a global view of chromosomal inversions, local adaptation and geographic structure , 2015, Molecular ecology resources.
[29] T. Francis,et al. Population diversity in Pacific herring of the Puget Sound, USA , 2015, Oecologia.
[30] D. Pearse,et al. Rapid parallel evolution of standing variation in a single, complex, genomic region is associated with life history in steelhead/rainbow trout , 2014, Proceedings of the Royal Society B: Biological Sciences.
[31] Laurent Keller,et al. Supergenes and Complex Phenotypes , 2014, Current Biology.
[32] Marc Mangel,et al. The global contribution of forage fish to marine fisheries and ecosystems , 2014 .
[33] David L. Stern,et al. The genetic causes of convergent evolution , 2013, Nature Reviews Genetics.
[34] Carrie V. Kappel,et al. Global imprint of climate change on marine life , 2013 .
[35] Angel Amores,et al. Stacks: an analysis tool set for population genomics , 2013, Molecular ecology.
[36] M. Kirkpatrick,et al. REPRODUCTIVE ISOLATION AND LOCAL ADAPTATION QUANTIFIED FOR A CHROMOSOME INVERSION IN A MALARIA MOSQUITO , 2013, Evolution; international journal of organic evolution.
[37] G. Coop,et al. Robust Identification of Local Adaptation from Allele Frequencies , 2012, Genetics.
[38] M. Bozzano,et al. Translating conservation genetics into management: Pan-European minimum requirements for dynamic conservation units of forest tree genetic diversity , 2013 .
[39] M. Powell. Divided Waters: Heiltsuk Spatial Management of Herring Fisheries and the Politics of Native Sovereignty , 2012 .
[40] Christopher I. Amos,et al. Investigation of Inversion Polymorphisms in the Human Genome Using Principal Components Analysis , 2012, PloS one.
[41] J. Takekawa,et al. Spatiotemporal associations between Pacific herring spawn and surf scoter spring migration: evaluating a "silver wave" hypothesis , 2012 .
[42] Steven L Salzberg,et al. Fast gapped-read alignment with Bowtie 2 , 2012, Nature Methods.
[43] M. Hufnagl,et al. Physiological individual-based modelling of larval Atlantic herring (Clupea harengus) foraging and growth: insights on climate-driven life-history scheduling , 2011 .
[44] Min Han,et al. KASH protein Syne-2/Nesprin-2 and SUN proteins SUN1/2 mediate nuclear migration during mammalian retinal development. , 2011, Human molecular genetics.
[45] P. Etter,et al. SNP discovery and genotyping for evolutionary genetics using RAD sequencing. , 2011, Methods in molecular biology.
[46] S. Cox,et al. Performance evaluation of harvest control rules for Pacific herring management in British Columbia, Canada , 2010 .
[47] R. Hilborn,et al. Population diversity and the portfolio effect in an exploited species , 2010, Nature.
[48] L. Excoffier,et al. Arlequin suite ver 3.5: a new series of programs to perform population genetics analyses under Linux and Windows , 2010, Molecular ecology resources.
[49] Emmanuel Paradis,et al. pegas: an R package for population genetics with an integrated-modular approach , 2010, Bioinform..
[50] H. Migaud,et al. Current knowledge on the photoneuroendocrine regulation of reproduction in temperate fish species. , 2010, Journal of fish biology.
[51] Yanyan Zhao,et al. SH 2 D 4 A regulates cell proliferation via the ER α / PLC-γ / PKC pathway , 2009 .
[52] T. Beacham,et al. Use of Microsatellites to Determine Population Structure and Migration of Pacific Herring in British Columbia and Adjacent Regions , 2008 .
[53] Loren H Rieseberg,et al. Revisiting the Impact of Inversions in Evolution: From Population Genetic Markers to Drivers of Adaptive Shifts and Speciation? , 2008, Annual review of ecology, evolution, and systematics.
[54] Thibaut Jombart,et al. adegenet: a R package for the multivariate analysis of genetic markers , 2008, Bioinform..
[55] G. Ylitalo,et al. Spatial extent, magnitude, and patterns of persistent organochlorine pollutants in Pacific herring (Clupea pallasi) populations in the Puget Sound (USA) and Strait of Georgia (Canada). , 2008, The Science of the total environment.
[56] Manuel A. R. Ferreira,et al. PLINK: a tool set for whole-genome association and population-based linkage analyses. , 2007, American journal of human genetics.
[57] Zhao Wang,et al. Cloning and characterization of chicken SPATA4 gene and analysis of its specific expression , 2007, Molecular and Cellular Biochemistry.
[58] D. Secor,et al. The year-class phenomenon and the storage effect in marine fishes , 2007 .
[59] D. Reich,et al. Population Structure and Eigenanalysis , 2006, PLoS genetics.
[60] Oscar Gaggiotti,et al. Identifying the Environmental Factors That Determine the Genetic Structure of Populations , 2006, Genetics.
[61] D. Bekkevold,et al. Biocomplexity in a highly migratory pelagic marine fish, Atlantic herring , 2006, Proceedings of the Royal Society B: Biological Sciences.
[62] M. Hammer,et al. The Extent of Linkage Disequilibrium Caused by Selection on G6PD in Humans , 2005, Genetics.
[63] A. Hendry,et al. Population structure attributable to reproductive time: isolation by time and adaptation by time , 2005, Molecular ecology.
[64] J. Goudet. HIERFSTAT , a package for R to compute and test hierarchical F -statistics , 2005 .
[65] M. Edwards,et al. Impact of climate change on marine pelagic phenology and trophic mismatch , 2004, Nature.
[66] I. McQuinn,et al. Metapopulations and the Atlantic herring , 1997, Reviews in Fish Biology and Fisheries.
[67] Xiaoping Zhou,et al. Marine ecology: Spring algal bloom and larval fish survival , 2003, Nature.
[68] G. Bargmann,et al. Stable isotopic composition of otoliths in identification of spawning stocks of Pacific herring (Clupea pallasi) in Puget Sound , 2001 .
[69] N. Ishida,et al. Circadian rhythms of female mating activity governed by clock genes in Drosophila , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[70] K. Daniel,et al. Tagging of Pacific herring clupea pallasi from 1936-1992 : a review with comments on homing, geographic fidelity, and straying , 2001 .
[71] Oceans Canada. Distribution and timing of herring spawning in British Columbia , 1999 .
[72] D. Hay,et al. Distribution and timing of herring spawning in British Columbia , 1999 .
[73] D. H. Cushing,et al. Plankton Production and Year-class Strength in Fish Populations: an Update of the Match/Mismatch Hypothesis , 1990 .
[74] J. Schweigert,et al. Distribution and Characteristics of Herring Spawning Grounds and Description of Spawning Behavior , 1985 .
[75] B. Weir,et al. ESTIMATING F‐STATISTICS FOR THE ANALYSIS OF POPULATION STRUCTURE , 1984, Evolution; international journal of organic evolution.
[76] M. Sinclair,et al. Timing of Spawning of Atlantic Herring (Clupea harengus harengus) Populations and the Match–Mismatch Theory , 1984 .
[77] D. Cushing. The Regularity of the Spawning Season of Some Fishes , 1969 .
[78] S. Wright,et al. Isolation by Distance. , 1943, Genetics.