Exploration of the Genetic Organization of Morphological Modularity on the Mouse Mandible Using a Set of Interspecific Recombinant Congenic Strains Between C57BL/6 and Mice of the Mus spretus Species
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Evelyne Heyer | Michel Baylac | E. Heyer | X. Montagutelli | M. Baylac | G. Burgio | Gaëtan Burgio | Xavier Montagutelli
[1] Vinícius Bonato,et al. Evolutionary integration and morphological diversification in complex morphological structures: mandible shape divergence in spiny rats (Rodentia, Echimyidae) , 2005, Evolution & development.
[2] P. D. Polly,et al. For studyIng MorPhologIcal IntegratIon and ModularIty , 2010 .
[3] M. Fellous,et al. Identification of Quantitative Trait Loci responsible for embryonic lethality in mice assessed by ultrasonography. , 2009, The International journal of developmental biology.
[4] J. Cheverud. Developmental Integration and the Evolution of Pleiotropy , 1996 .
[5] Aaron R. Wood,et al. Modularity of the rodent mandible: Integrating bones, muscles, and teeth , 2008, Evolution & development.
[6] E. Heyer,et al. Nasal Bone Shape Is under Complex Epistatic Genetic Control in Mouse Interspecific Recombinant Congenic Strains , 2012, PloS one.
[7] J. Cheverud,et al. PLEIOTROPIC EFFECTS OF INDIVIDUAL GENE LOCI ON MANDIBULAR MORPHOLOGY , 1997, Evolution; international journal of organic evolution.
[8] F. Bookstein,et al. Cranial integration in Homo: singular warps analysis of the midsagittal plane in ontogeny and evolution. , 2003, Journal of human evolution.
[9] R. Veitia,et al. Interspecific resources: a major tool for quantitative trait locus cloning and speciation research , 2010, BioEssays : news and reviews in molecular, cellular and developmental biology.
[10] Diethard Tautz,et al. A comparative assessment of mandible shape in a consomic strain panel of the house mouse (Mus musculus) - implications for epistasis and evolvability of quantitative traits , 2011, BMC Evolutionary Biology.
[11] F. Bonhomme,et al. Wild mice: an ever-increasing contribution to a popular mammalian model. , 2003, Trends in genetics : TIG.
[12] M. Depew,et al. Reassessing the Dlx code: the genetic regulation of branchial arch skeletal pattern and development , 2005, Journal of anatomy.
[13] W. Atchley,et al. A MODEL FOR DEVELOPMENT AND EVOLUTION OF COMPLEX MORPHOLOGICAL STRUCTURES , 1991, Biological reviews of the Cambridge Philosophical Society.
[14] Mapping multiple QTLs of geometric shape of the mouse mandible , 2007 .
[15] Günter P. Wagner,et al. Complex Adaptations and the Evolution of Evolvability , 2005 .
[16] C. Klingenberg,et al. A search for quantitative trait loci exhibiting imprinting effects on mouse mandible size and shape , 2008, Heredity.
[17] Jonathan Flint,et al. Genetic architecture of quantitative traits in mice, flies, and humans. , 2009, Genome research.
[18] C. Rogel-Gaillard,et al. Centimorgan-Range One-Step Mapping of Fertility Traits Using Interspecific Recombinant Congenic Mice , 2007, Genetics.
[19] J. Suto. Identification of multiple quantitative trait loci affecting the size and shape of the mandible in mice , 2008, Mammalian Genome.
[20] M. Baylac,et al. Elliptic Fourier analysis of the form of genitalia in two Spodoptera species and their hybrids (Lepidoptera: Noctuidae) , 2001 .
[21] J. Cheverud,et al. Pleiotropic effects on mandibular morphology I. Developmental morphological integration and differential dominance. , 2003, Journal of experimental zoology. Part B, Molecular and developmental evolution.
[22] Christian Peter Klingenberg,et al. Evolution and development of shape: integrating quantitative approaches , 2010, Nature Reviews Genetics.
[23] W. Atchley,et al. Genetics of mandible form in the mouse. , 1985, Genetics.
[24] F J Rohlf,et al. Use of two-block partial least-squares to study covariation in shape. , 2000, Systematic biology.
[25] D. Bailey. Genes that affect the shape of the murine mandible. Congenic strain analysis. , 1985, The Journal of heredity.
[26] E. Justo,et al. Mus spretus (Rodentia: Muridae) , 2009 .
[27] G. Wagner,et al. The road to modularity , 2007, Nature Reviews Genetics.
[28] Christian Peter Klingenberg,et al. GEOMETRIC MORPHOMETRICS OF DEVELOPMENTAL INSTABILITY: ANALYZING PATTERNS OF FLUCTUATING ASYMMETRY WITH PROCRUSTES METHODS , 1998, Evolution; international journal of organic evolution.
[29] J. Cheverud,et al. Epistatic Pleiotropy and the Genetic Architecture of Covariation Within Early and Late-Developing Skull Trait Complexes in Mice , 2005, Genetics.
[30] K. Shimizu,et al. Quantitative Trait Loci on Chromosomes 10 and 11 Influencing Mandible Size of SMXA RI Mouse Strains , 2002, Journal of dental research.
[31] Y. Escoufier. LE TRAITEMENT DES VARIABLES VECTORIELLES , 1973 .
[32] J. Cheverud,et al. AN EPISTATIC GENETIC BASIS FOR FLUCTUATING ASYMMETRY OF MANDIBLE SIZE IN MICE , 2002, Evolution; international journal of organic evolution.
[33] Manuel D. Díaz-Muñoz,et al. A role for stroma-derived annexin A1 as mediator in the control of genetic susceptibility to T-cell lymphoblastic malignancies through prostaglandin E2 secretion. , 2009, Cancer Research.
[34] Christian Peter Klingenberg,et al. Integration and modularity of quantitative trait locus effects on geometric shape in the mouse mandible. , 2004, Genetics.
[35] J. Guénet,et al. Interspecific Recombinant Congenic Strains Between C57BL/6 and Mice of the Mus spretus Species: A Powerful Tool to Dissect Genetic Control of Complex Traits , 2007, Genetics.
[36] Evelyne Heyer,et al. Genetic Analysis of Skull Shape Variation and Morphological Integration in the Mouse Using Interspecific Recombinant Congenic Strains between C57Bl/6 and Mice of the Mus spretus Species , 2009, Evolution; international journal of organic evolution.
[37] C. Libert,et al. Thirty years of Mus spretus: a promising future. , 2009, Trends in genetics : TIG.
[38] Christian Peter Klingenberg,et al. Morphological Integration and Developmental Modularity , 2008 .
[39] M. R. Mickey,et al. Estimation of Error Rates in Discriminant Analysis , 1968 .
[40] Y. Chai,et al. Recent advances in craniofacial morphogenesis , 2006, Developmental dynamics : an official publication of the American Association of Anatomists.
[41] R. Veitia,et al. Gene expression regulation in the context of mouse interspecific mosaic genomes , 2008, Genome Biology.
[42] Lisa E. Gralinski,et al. The Genome Architecture of the Collaborative Cross Mouse Genetic Reference Population , 2012, Genetics.
[43] J. Cheverud,et al. Pleiotropic effects on mandibular morphology II: differential epistasis and genetic variation in morphological integration. , 2004, Journal of experimental zoology. Part B, Molecular and developmental evolution.
[44] M. Nogueira,et al. ADAPTIVE RADIATIONS, ECOLOGICAL SPECIALIZATION, AND THE EVOLUTIONARY INTEGRATION OF COMPLEX MORPHOLOGICAL STRUCTURES , 2010, Evolution; international journal of organic evolution.
[45] Michel Baylac,et al. Exploring artificial cranial deformation using elliptic Fourier analysis of Procrustes aligned outlines. , 2003, American journal of physical anthropology.
[46] J. Guénet,et al. The stromal gene encoding the CD274 antigen as a genetic modifier controlling survival of mice with γ-radiation-induced T-cell lymphoblastic lymphomas , 2010, Oncogene.
[47] Vincent Debat,et al. QUANTITATIVE GENETICS OF SHAPE IN CRICKET WINGS: DEVELOPMENTAL INTEGRATION IN A FUNCTIONAL STRUCTURE , 2010, Evolution; international journal of organic evolution.
[48] F. Bookstein. Combining the Tools of Geometric Morphometrics , 1996 .
[49] L. Altenberg,et al. PERSPECTIVE: COMPLEX ADAPTATIONS AND THE EVOLUTION OF EVOLVABILITY , 1996, Evolution; international journal of organic evolution.
[50] F. James Rohlf,et al. Biometry: The Principles and Practice of Statistics in Biological Research , 1969 .
[51] X. Montagutelli,et al. Fidgetin-Like1 Is a Strong Candidate for a Dynamic Impairment of Male Meiosis Leading to Reduced Testis Weight in Mice , 2011, PloS one.
[52] Anuj Srivastava,et al. Statistical Shape Analysis , 2014, Computer Vision, A Reference Guide.
[53] C. Klingenberg,et al. Genetic architecture of mandible shape in mice: effects of quantitative trait loci analyzed by geometric morphometrics. , 2001, Genetics.
[54] Rachel M. Lynch,et al. INTERSPECIFIC RECOMBINANT CONGENIC STRAINS BETWEEN C 57 BL / 6 AND MICE OF THE MUS SPRETUS SPECIES : A POWERFUL TOOL TO DISSECT GENETIC CONTROL OF COMPLEX TRAITS , 2008 .
[55] M. Festing. A multivariate analysis of subline divergence in the shape of the mandible in C57BL-Gr mice. , 1973, Genetical research.
[56] M. Noor,et al. Consequences of recombination rate variation on quantitative trait locus mapping studies. Simulations based on the Drosophila melanogaster genome. , 2001, Genetics.
[57] J. Hooper,et al. Simultaneous Equations and Canonical Correlation Theory , 1959 .
[58] Christian Peter Klingenberg,et al. Morphometric integration and modularity in configurations of landmarks: tools for evaluating a priori hypotheses , 2009, Evolution & development.
[59] C. Klingenberg. MorphoJ: an integrated software package for geometric morphometrics , 2011, Molecular ecology resources.