Efficiently tracking selection in a multi
暂无分享,去创建一个
David | Isabelle Goldringer | Stéphanie Thépot | Gwendal Restoux | I. Goldringer | G. Restoux | S. Thépot | David
[1] Emmanuel Paradis,et al. pegas: an R package for population genetics with an integrated-modular approach , 2010, Bioinform..
[2] R. Allard. The Wilhelmine E. Key 1987 invitational lecture. Genetic changes associated with the evolution of adaptedness in cultivated plants and their wild progenitors. , 1988, The Journal of heredity.
[3] J. Plotkin,et al. Identifying Signatures of Selection in Genetic Time Series , 2013, Genetics.
[4] E. Heyer,et al. Social transmission of reproductive behavior increases frequency of inherited disorders in a young-expanding population. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[5] Jo Nishino. Detecting Selection Using Time-Series Data of Allele Frequencies with Multiple Independent Reference Loci , 2013, G3: Genes, Genomes, Genetics.
[6] H. Piepho,et al. QTL detection power of multi-parental RIL populations in Arabidopsis thaliana , 2012, Heredity.
[7] Z. Luo,et al. Detecting linkage disequilibrium between a polymorphic marker locus and a trait locus in natural populations , 1998, Heredity.
[8] W. Powell,et al. From mutations to MAGIC: resources for gene discovery, validation and delivery in crop plants. , 2008, Current opinion in plant biology.
[9] L. Excoffier,et al. Analysis of molecular variance inferred from metric distances among DNA haplotypes: application to human mitochondrial DNA restriction data. , 1992, Genetics.
[10] B. Charlesworth. Effective population size and patterns of molecular evolution and variation , 2009, Nature Reviews Genetics.
[11] S. Eberhart,et al. Recurrent Selection in Sorghum , 1968 .
[12] Jonathan P. Bollback,et al. Estimation of 2Nes From Temporal Allele Frequency Data , 2008, Genetics.
[13] É. Hanocq,et al. Most significant genome regions involved in the control of earliness traits in bread wheat, as revealed by QTL meta-analysis , 2007, Theoretical and Applied Genetics.
[14] J. Cheverud,et al. Antagonistic pleiotropic effects reduce the potential adaptive value of the FRIGIDA locus , 2007, Proceedings of the National Academy of Sciences.
[15] L. Kruglyak,et al. Breeding Designs for Recombinant Inbred Advanced Intercross Lines , 2008, Genetics.
[16] Ahmed Rebai,et al. Power of tests for QTL detection using replicated progenies derived from a diallel cross , 1993, Theoretical and Applied Genetics.
[17] F. Balloux,et al. Discriminant analysis of principal components: a new method for the analysis of genetically structured populations , 2010, BMC Genetics.
[18] C. Neuhauser. Mathematical Models in Population Genetics , 2004 .
[19] M. Sorrells,et al. Association Mapping of Kernel Size and Milling Quality in Wheat (Triticum aestivum L.) Cultivars , 2006, Genetics.
[20] R. Waples. A generalized approach for estimating effective population size from temporal changes in allele frequency. , 1989, Genetics.
[21] A. Kremer,et al. Decoupling of differentiation between traits and their underlying genes in response to divergent selection , 2011, Heredity.
[22] M. Kimura,et al. On the maximum avoidance of inbreeding , 1963 .
[23] P. Hucl,et al. Isolation distances for minimizing out-crossing in spring wheat , 2001 .
[24] G. Charmet,et al. A worldwide bread wheat core collection arrayed in a 384-well plate , 2007, Theoretical and Applied Genetics.
[25] José Esquinas-Alcázar,et al. Protecting crop genetic diversity for food security: political, ethical and technical challenges , 2005, Nature Reviews Genetics.
[26] P. Brabant,et al. Dynamic conservation of variability: responses of wheat populations to different selective forces including powdery mildew , 1994, Genetics Selection Evolution.
[27] Susan McCouch,et al. Multi-parent advanced generation inter-cross (MAGIC) populations in rice: progress and potential for genetics research and breeding , 2013, Rice.
[28] Thibaut Jombart,et al. adegenet 1.3-1: new tools for the analysis of genome-wide SNP data , 2011, Bioinform..
[29] R. Vitalis,et al. EVOLUTION OF FLOWERING TIME IN EXPERIMENTAL WHEAT POPULATIONS: A COMPREHENSIVE APPROACH TO DETECT GENETIC SIGNATURES OF NATURAL SELECTION , 2010, Evolution; international journal of organic evolution.
[30] Armando Caballero,et al. Developments in the prediction of effective population size , 1994, Heredity.
[31] Martyn Plummer,et al. JAGS: A program for analysis of Bayesian graphical models using Gibbs sampling , 2003 .
[32] M. Nei,et al. Genetic drift and estimation of effective population size. , 1981, Genetics.
[33] J. R. Welsh,et al. Effects of Temperature and Photoperiod on Spring Wheat Pollen Viability 1 , 1971 .
[34] John Maynard Smith,et al. The hitch-hiking effect of a favourable gene. , 1974, Genetical research.
[35] T. Bataillon,et al. On the Distribution of Temporal Variations in Allele Frequency , 2004, Genetics.
[36] N. Galic,et al. Insight into the genetic bases of climatic adaptation in experimentally evolving wheat populations , 2008, Molecular ecology.
[37] N. Galic,et al. Rapid differentiation of experimental populations of wheat for heading time in response to local climatic conditions. , 2006, Annals of botany.
[38] F. Salamini,et al. Catalogue of gene symbols for wheat , 1998 .
[39] G. Luikart,et al. Estimation of census and effective population sizes: the increasing usefulness of DNA-based approaches , 2010, Conservation Genetics.
[40] R. Frankham. Effective population size/adult population size ratios in wildlife: a review. , 1995, Genetical research.
[41] R. Mott,et al. A Multiparent Advanced Generation Inter-Cross to Fine-Map Quantitative Traits in Arabidopsis thaliana , 2009, PLoS genetics.
[42] H. D. Cooper,et al. Dynamic management of genetic resources: a 13-year experiment on wheat. , 2000 .
[43] R. Nielsen. Molecular signatures of natural selection. , 2005, Annual review of genetics.
[44] Karl W Broman,et al. Genetic dissection of a model complex trait using the Drosophila Synthetic Population Resource. , 2012, Genome research.
[45] John D. Storey,et al. Statistical significance for genomewide studies , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[46] R. Amasino,et al. Removal of polysaccharides from plant DNA by ethanol precipitation. , 1994, BioTechniques.
[47] D. Falk,et al. Models for activation of plant genetic resources for crop breeding programs , 1995 .
[48] J. Gibson,et al. The effect of gametic-phase disequilibrium on the prediction of response to recurrent selection in plants , 1993, Theoretical and Applied Genetics.
[49] V. Allard,et al. Genome-wide association analysis to identify chromosomal regions determining components of earliness in wheat , 2011, Theoretical and Applied Genetics.
[50] James B. Hicks,et al. A plant DNA minipreparation: Version II , 1983, Plant Molecular Biology Reporter.