Spiders did not repeatedly gain, but repeatedly lost, foraging webs
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Jonathan A Coddington | Ingi Agnarsson | Jason E Bond | J. Coddington | J. Bond | C. Hamilton | I. Agnarsson | Chris Hamilton
[1] Mário C. C. Pinna,et al. About nothing , 2014 .
[2] Evgeny M. Zdobnov,et al. BUSCO: assessing genome assembly and annotation completeness with single-copy orthologs , 2015, Bioinform..
[3] E. Kullmann. The Convergent Development of Orb-webs in Cribellate and Ecribellate Spiders , 1972 .
[4] P. Selden,et al. First record of spiders from the Permian period (Araneae: Mesothelae) , 2005 .
[5] J. Kovoor,et al. The spinning apparatus of Polenecia producta (Araneae, Uloboridae): Structure and histochemistry , 1988, Zoomorphology.
[6] J. Coddington. The Monophyletic Origin of the Orb Web , 1986 .
[7] Jonathan A Coddington,et al. Reconstructing web evolution and spider diversification in the molecular era , 2009, Proceedings of the National Academy of Sciences.
[8] B. J. Kaston. THE EVOLUTION OF SPIDER WEBS , 1964 .
[9] W. Hennig. Phylogenetic Systematics , 2002 .
[10] W. Eberhard,et al. BEHAVIORAL CHARACTERS FOR THE HIGHER CLASSIFICATION OF ORB‐WEAVING SPIDERS , 1982, Evolution; international journal of organic evolution.
[11] William G. Eberhard,et al. Function and Phylogeny of Spider Webs , 1990 .
[12] David N. Nicholson,et al. The Nephila clavipes genome highlights the diversity of spider silk genes and their complex expression , 2017, Nature Genetics.
[13] J. Coddington. ORB WEBS IN “NON‐ORB WEAVING” OGRE‐FACED SPIDERS (ARANEAE: DINOPIDAE): A QUESTION OF GENEALOGY , 1986, Cladistics : the international journal of the Willi Hennig Society.
[14] Bo Wang,et al. Cretaceous arachnid Chimerarachne yingi gen. et sp. nov. illuminates spider origins , 2018, Nature Ecology & Evolution.
[15] A. von Haeseler,et al. IQ-TREE: A Fast and Effective Stochastic Algorithm for Estimating Maximum-Likelihood Phylogenies , 2014, Molecular biology and evolution.
[16] C. Hayashi,et al. Silk Genes Support the Single Origin of Orb Webs , 2006, Science.
[17] J. Freudenstein. Characters, states, and homology. , 2005, Systematic biology.
[18] J. Coddington,et al. Systematics: progress in the study of spider diversity and evolution , 2013 .
[19] Ellen E. Strong,et al. Character Coding and Inapplicable Data , 1999 .
[20] J. H. Comstock. The Evolution of the Webs of Spiders , 1912 .
[21] L. Grande. A comprehensive phylogenetic study of Amiid fishes (Amiidae) based on comparative skeletal anatomy , 1998 .
[22] Mário C. C. Pinna. CONCEPTS AND TESTS OF HOMOLOGY IN THE CLADISTIC PARADIGM , 1991 .
[23] H. W. Levi,et al. Systematics and Evolution of Spiders (Araneae) , 1991 .
[24] P. Lehtinen. Classification of the cribellate spiders and some allied families, with notes on the evolution of the suborder , 1967 .
[25] M. Donoghue,et al. Identifying hidden rate changes in the evolution of a binary morphological character: the evolution of plant habit in campanulid angiosperms. , 2013, Systematic biology.
[26] J. Bond,et al. Phylogenomics Resolves a Spider Backbone Phylogeny and Rejects a Prevailing Paradigm for Orb Web Evolution , 2014, Current Biology.
[27] R. Jenner. Boolean logic and character state indentity: pitfalls of character coding in metazoan cladistics , 2002 .
[28] R. Bennett,et al. Retreat architecture and construction behaviour of an East African idiopine trapdoor spider (Araneae, Idiopidae) , 1992 .
[29] G. Giribet,et al. Phylogenomic Analysis of Spiders Reveals Nonmonophyly of Orb Weavers , 2014, Current Biology.
[30] Gonzalo Giribet,et al. Phylogenomics, Diversification Dynamics, and Comparative Transcriptomics across the Spider Tree of Life , 2018, Current Biology.
[31] Ingi Agnarsson,et al. Spider phylogenomics: untangling the Spider Tree of Life , 2016, PeerJ.
[32] J. Hawkins,et al. Primary Homology Assessment, Characters and Character States , 1997, Cladistics : the international journal of the Willi Hennig Society.
[33] G. Wagner,et al. 1,2,3 = 2,3,4: a solution to the problem of the homology of the digits in the avian hand. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[34] J. Coddington. The Genera of the Spider Family Theridiosomatidae , 1986 .
[35] J. Bond,et al. Molecular phylogenetics of the spider infraorder Mygalomorphae using nuclear rRNA genes (18S and 28S): conflict and agreement with the current system of classification. , 2006, Molecular phylogenetics and evolution.
[36] J. Bond,et al. Phylogenomic reclassification of the world’s most venomous spiders (Mygalomorphae, Atracinae), with implications for venom evolution , 2018, Scientific Reports.
[37] J. Bond,et al. Observations on the Natural History of an Ummidia Trapdoor Spider from Costa Rica (Araneae, Ctenizidae) , 1995 .
[38] Korbinian Strimmer,et al. APE: Analyses of Phylogenetics and Evolution in R language , 2004, Bioinform..
[39] L. Grande,et al. A comprehensive phylogenetic study of amiid fishes (Amiidae) based on comparative skeletal anatomy : an empirical search for interconnected patterns of natural history , 1998 .
[40] Olga Chernomor,et al. Terrace Aware Data Structure for Phylogenomic Inference from Supermatrices , 2016, Systematic biology.
[41] Jeremy A. Miller,et al. Phylogeny of entelegyne spiders: affinities of the family Penestomidae (NEW RANK), generic phylogeny of Eresidae, and asymmetric rates of change in spinning organ evolution (Araneae, Araneoidea, Entelegynae). , 2010, Molecular phylogenetics and evolution.
[42] F. Vollrath,et al. The Role of Behavior in the Evolution of Spiders, Silks, and Webs , 2007 .
[43] P. Hofstaetter. [Similarity]. , 2020, Psyche.
[44] Thomas H. Clarke,et al. Genomic perspectives of spider silk genes through target capture sequencing: Conservation of stabilization mechanisms and homology-based structural models of spidroin terminal regions. , 2018, International journal of biological macromolecules.