Evolution and diversity in avian vocal system: An Evo‐Devo model from the morphological and behavioral perspectives
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[1] Jon E. Ahlquist,et al. Phylogeny and Classification of the Birds: A Study in Molecular Evolution , 1991 .
[2] Koji Tamura,et al. The autopod: Its formation during limb development , 2008, Development, growth & differentiation.
[3] H. Asou,et al. Involvement of neuronal cell surface molecule B2 in the formation of retinal plexiform layers , 1992, Neuron.
[4] D. Vicario,et al. Song presentation induces gene expression in the songbird forebrain. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[5] O. Güntürkün,et al. Afferent and efferent connections of the caudolateral neostriatum in the pigeon (Columba livia): A retro‐ and anterograde pathway tracing study , 1999, The Journal of comparative neurology.
[6] N. Douarin. Developmental patterning deciphered in avian chimeras. , 2008 .
[7] F. Nottebohm,et al. Motor-driven gene expression. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[8] Alex L Kolodkin,et al. Neuropilin Is a Semaphorin III Receptor , 1997, Cell.
[9] F. Nottebohm,et al. A relationship between behavior, neurotrophin expression, and new neuron survival. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[10] K. Okanoya,et al. Sex Differences in the Telencephalic Song Control Circuitry in Bengalese Finches (Lonchura striata var. domestica) , 2005, Zoological science.
[11] F. Nottebohm,et al. The Road We Travelled: Discovery, Choreography, and Significance of Brain Replaceable Neurons , 2004, Annals of the New York Academy of Sciences.
[12] Jonathan F Prather,et al. A Synaptic Basis for Auditory–Vocal Integration in the Songbird , 2008, The Journal of Neuroscience.
[13] E. Jarvis,et al. Learned Birdsong and the Neurobiology of Human Language , 2004, Annals of the New York Academy of Sciences.
[14] C. Catchpole,et al. Syllable repertoire and the size of the song control system in captive canaries (Serinus canaria). , 2004, Journal of neurobiology.
[15] M. Takeichi,et al. Role of cadherins in maintaining the compartment boundary between the cortex and striatum during development. , 2001, Development.
[16] R. Suthers,et al. Peripheral control and lateralization of birdsong. , 1997, Journal of neurobiology.
[17] M. Metzger,et al. Organization of the dorsocaudal neostriatal complex: A retrograde and anterograde tracing study in the domestic chick with special emphasis on pathways relevant to imprinting , 1998, The Journal of comparative neurology.
[18] G. Rizzolatti,et al. The mirror-neuron system. , 2004, Annual review of neuroscience.
[19] K. Umesono,et al. Efficient targeting of gene expression in chick embryos by microelectroporation , 1999, Development, growth & differentiation.
[20] C. Mello,et al. GABA immunoreactivity in auditory and song control brain areas of zebra finches , 2007, Journal of Chemical Neuroanatomy.
[21] C. Scharff,et al. FoxP2 Expression in Avian Vocal Learners and Non-Learners , 2004, The Journal of Neuroscience.
[22] S. Bottjer,et al. Development of Topography within Song Control Circuitry of Zebra Finches during the Sensitive Period for Song Learning , 1999, The Journal of Neuroscience.
[23] Harukazu Nakamura,et al. Electroporation as an efficient method of gene transfer , 2008, Development, growth & differentiation.
[25] Paul Henman. Targeted! , 2004 .
[26] K. Okanoya,et al. Comparative analysis of gene expressions among avian brains: A molecular approach to the evolution of vocal learning , 2008, Brain Research Bulletin.
[27] H. Sakuta,et al. Retrovirus vector‐mediated gene transfer into the chick optic vesicle by in ovo electroporation , 2008, Development, growth & differentiation.
[28] Johan J. Bolhuis,et al. Neural mechanisms of birdsong memory , 2006, Nature Reviews Neuroscience.
[29] Aaron S. Andalman,et al. Vocal Experimentation in the Juvenile Songbird Requires a Basal Ganglia Circuit , 2005, PLoS biology.
[30] Sidarta Ribeiro,et al. Toward a Song Code Evidence for a Syllabic Representation in the Canary Brain , 1998, Neuron.
[31] M. Farries. The Oscine Song System Considered in the Context of the Avian Brain: Lessons Learned from Comparative Neurobiology , 2002, Brain, Behavior and Evolution.
[32] M. Gahr,et al. Sex Difference in the Size of the Neural Song Control Regions in a Dueting Songbird with Similar Song Repertoire Size of Males and Females , 1998, The Journal of Neuroscience.
[33] F. Nottebohm,et al. Connections of vocal control nuclei in the canary telencephalon , 1982, The Journal of comparative neurology.
[34] P. Stoddard,et al. Repertoire size, territory acquisition and reproductive success in the song sparrow , 1989, Animal Behaviour.
[35] H. Hofmann,et al. Distribution of sex steroid hormone receptors in the brain of an African cichlid fish, Astatotilapia burtoni , 2010, The Journal of comparative neurology.
[36] K Okanoya,et al. Adult Bengalese finches (Lonchura striata var. domestica) require real-time auditory feedback to produce normal song syntax. , 1997, Journal of neurobiology.
[37] M. Poo,et al. Plexins Are a Large Family of Receptors for Transmembrane, Secreted, and GPI-Anchored Semaphorins in Vertebrates , 1999, Cell.
[38] Eliot A. Brenowitz,et al. Functional aspects of song learning in songbirds. , 2005, Trends in ecology & evolution.
[39] C. Eagleton,et al. Projections of the dorsomedial nucleus of the intercollicular complex (DM) in relation to respiratory‐vocal nuclei in the brainstem of pigeon (Columba livia) and zebra finch (Taeniopygia guttata) , 1997, The Journal of comparative neurology.
[40] L. Baptista,et al. Song Learning in the Anna Hummingbird (Calypte anna) , 2010 .
[41] F. Nottebohm,et al. Site-Specific Retinoic Acid Production in the Brain of Adult Songbirds , 2000, Neuron.
[42] M. Gahr. Sexual differentiation of the vocal control system of birds. , 2007, Advances in genetics.
[43] Sarah E. London,et al. Parallel FoxP1 and FoxP2 Expression in Songbird and Human Brain Predicts Functional Interaction , 2004, The Journal of Neuroscience.
[44] E. Jarvis,et al. Molecular mapping of brain areas involved in parrot vocal communication , 2000, The Journal of comparative neurology.
[45] C. Redies,et al. Cadherin expression by embryonic divisions and derived gray matter structures in the telencephalon of the chicken , 2001, The Journal of comparative neurology.
[46] K. Okanoya,et al. Vocal area-related expression of the androgen receptor in the budgerigar (Melopsittacus undulatus) brain , 2008, Brain Research.
[47] N. Osumi,et al. Reelin, radial fibers and cortical evolution: Insights from comparative analysis of the mammalian and avian telencephalon , 2008, Development, growth & differentiation.
[48] S. Bottjer,et al. Connections of a motor cortical region in zebra finches: Relation to pathways for vocal learning , 2000, The Journal of comparative neurology.
[49] S. Durand,et al. Vocal control pathways through the anterior forebrain of a parrot (Melopsittacus undulatus) , 1997, The Journal of comparative neurology.
[50] F. Nottebohm,et al. The life span of new neurons in a song control nucleus of the adult canary brain depends on time of year when these cells are born. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[51] Sarah E. London,et al. Functional identification of sensory mechanisms required for developmental song learning , 2008, Nature Neuroscience.
[52] Manfred Gahr,et al. The honesty of bird song: multiple constraints for multiple traits , 2002 .
[53] T. Jessell,et al. Regulation of Motor Neuron Pool Sorting by Differential Expression of Type II Cadherins , 2002, Cell.
[54] E. Jarvis,et al. Differential expression of glutamate receptors in avian neural pathways for learned vocalization , 2004, The Journal of comparative neurology.
[55] B. Nixdorf-Bergweiler,et al. Divergent and parallel development in volume sizes of telencephalic song nuclei in and female zebra finches , 1996, The Journal of comparative neurology.
[56] F. Nottebohm,et al. Bilateral organization of the vocal control pathway in the budgerigar, Melopsittacus undulatus , 1981, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[57] C. Scharff,et al. Incomplete and Inaccurate Vocal Imitation after Knockdown of FoxP2 in Songbird Basal Ganglia Nucleus Area X , 2007, PLoS biology.
[58] Piero Carninci,et al. A molecular neuroethological approach for identifying and characterizing a cascade of behaviorally regulated genes , 2006, Proceedings of the National Academy of Sciences.
[59] A. C. Yu,et al. Temporal Hierarchical Control of Singing in Birds , 1996, Science.
[60] R. Kalb,et al. Plexin-Neuropilin-1 Complexes Form Functional Semaphorin-3A Receptors , 1999, Cell.
[61] E. Nordeen,et al. Synaptic and Molecular Mechanisms Regulating Plasticity during Early Learning , 2004, Annals of the New York Academy of Sciences.
[62] A. Álvarez-Buylla,et al. Birth, migration, incorporation, and death of vocal control neurons in adult songbirds. , 1997, Journal of neurobiology.
[63] K. D. Punta,et al. An ultra-sparse code underlies the generation of neural sequences in a songbird , 2002 .
[64] M. Gahr. Distribution of sex steroid hormone receptors in the avian brain: Functional implications for neural sex differences and sexual behaviors , 2001, Microscopy research and technique.
[65] E. Nordeen,et al. Characterization of CaMKII-expressing neurons within a striatal region implicated in avian vocal learning , 2007, Brain Research.
[66] P. Marler,et al. Nature's Music: The Science of Birdsong , 2004 .
[67] A. Doupe,et al. Interruption of a basal ganglia–forebrain circuit prevents plasticity of learned vocalizations , 2000, Nature.
[68] F. Nottebohm,et al. Replaceable neurons and neurodegenerative disease share depressed UCHL1 levels , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[69] C. ten Cate,et al. Neuronal activation related to auditory perception in the brain of a non‐songbird, the ring dove , 2005, The Journal of comparative neurology.
[70] E. Nordeen,et al. Early sensory and hormonal experience modulate age-related changes in NR2B mRNA within a forebrain region controlling avian vocal learning. , 2000, Journal of neurobiology.
[71] A. Reiner,et al. Do birds possess homologues of mammalian primary visual, somatosensory and motor cortices? , 2000, Trends in Neurosciences.
[72] K. Okanoya,et al. Vocal control area‐related expression of neuropilin‐1, plexin‐A4, and the ligand semaphorin‐3A has implications for the evolution of the avian vocal system , 2008, Development, growth & differentiation.
[73] J. Wild,et al. Visual and somatosensory inputs to the avian song system via nucleus uvaeformis (Uva) and a comparison with the projections of a similar thalamic nucleus in a nonsongbird, columbia livia , 1994, The Journal of comparative neurology.
[74] R. Dooling,et al. Vocal plasticity in budgerigars (Melopsittacus undulatus): evidence for social factors in the learning of contact calls. , 1994, Journal of comparative psychology.
[75] S. White,et al. FoxP2 Regulation during Undirected Singing in Adult Songbirds , 2006, The Journal of Neuroscience.
[76] E. Nordeen,et al. The relationship between rates of HVc neuron addition and vocal plasticity in adult songbirds. , 2000, Journal of neurobiology.
[77] S. Durand,et al. Functional anatomy of forebrain auditory pathways in the budgerigar (Melopsittacus undulatus). , 1994, Brain, behavior and evolution.
[78] M. Konishi. The role of auditory feedback in the control of vocalization in the white-crowned sparrow. , 1965, Zeitschrift fur Tierpsychologie.
[79] H. Slabbekoorn,et al. Bird song, ecology and speciation. , 2002, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[80] F. Nottebohm,et al. Central control of song in the canary, Serinus canarius , 1976, The Journal of comparative neurology.
[81] Robert J. Tempelman,et al. A cDNA microarray from the telencephalon of juvenile male and female zebra finches , 2004, Journal of Neuroscience Methods.
[82] Yuki Sato,et al. Somitogenesis as a model to study the formation of morphological boundaries and cell epithelialization , 2008, Development, growth & differentiation.
[83] Fernando Nottebohm,et al. Reafferent thalamo‐“cortical” loops in the song system of oscine songbirds , 1997, The Journal of comparative neurology.
[84] O Tchernichovski,et al. Studying the Song Development Process: Rationale and Methods , 2004, Annals of the New York Academy of Sciences.
[85] Terry Gaasterland,et al. Genomic resources for songbird research and their use in characterizing gene expression during brain development , 2007, Proceedings of the National Academy of Sciences.
[86] K. Shimamura,et al. Method for electroporation for the early chick embryo , 2008, Development, growth & differentiation.
[87] O. Güntürkün. Avian and mammalian “prefrontal cortices”: Limited degrees of freedom in the evolution of the neural mechanisms of goal-state maintenance , 2005, Brain Research Bulletin.
[88] Gregory F Ball,et al. Distribution of androgen receptor-immunoreactive cells in the quail forebrain and their relationship with aromatase immunoreactivity. , 1998, Journal of Neurobiology.
[89] Georg B. Keller,et al. Rapid Interhemispheric Switching during Vocal Production in a Songbird , 2008, PLoS biology.
[90] K. Okanoya. Song syntax in Bengalese finches : proximate and ultimate analyses , 2004 .
[91] Sidarta Ribeiro,et al. Behaviourally driven gene expression reveals song nuclei in hummingbird brain , 2000, Nature.
[92] M. Brainard. Contributions of the Anterior Forebrain Pathway to Vocal Plasticity , 2004, Annals of the New York Academy of Sciences.
[93] H. Fujisawa. Discovery of semaphorin receptors, neuropilin and plexin, and their functions in neural development. , 2004, Journal of neurobiology.
[94] W. A. Cox,et al. A Phylogenomic Study of Birds Reveals Their Evolutionary History , 2008, Science.
[95] N. Harada,et al. Neuroanatomical specificity in the autoregulation of aromatase-immunoreactive neurons by androgens and estrogens: an immunocytochemical study , 1992, Brain Research.
[96] M. Dresselhaus,et al. A Specialized Forebrain Circuit for Vocal Babbling in the Juvenile Songbird , 2008 .
[97] G. Striedter,et al. Brain lesions that impair vocal imitation in adult budgerigars. , 2002, Journal of neurobiology.
[98] K. Okanoya. The Bengalese Finch: A Window on the Behavioral Neurobiology of Birdsong Syntax , 2004, Annals of the New York Academy of Sciences.
[99] G. Striedter. Principles of brain evolution. , 2005 .
[100] B. B. Scott,et al. Generation of tissue-specific transgenic birds with lentiviral vectors. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[101] Masakazu Konishi,et al. Neuronal growth, atrophy and death in a sexually dimorphic song nucleus in the zebra finch brain , 1985, Nature.
[102] David F. Clayton,et al. Estrogen synthesis in the male brain triggers development of the avian song control pathway in vitro , 2001, Nature Neuroscience.
[103] Kazuo Okanoya,et al. Expression analysis of cadherins in the songbird brain: Relationship to vocal system development , 2008, The Journal of comparative neurology.
[104] H. Karten,et al. Connections of the auditory forebrain in the pigeon (columba livia) , 1993, The Journal of comparative neurology.
[105] Henrik Mouritsen,et al. Molecular Mapping of Movement-Associated Areas in the Avian Brain: A Motor Theory for Vocal Learning Origin , 2008, PloS one.
[106] S. Brauth,et al. Effects of Lesions of the Central Nucleus of the Anterior Archistriatum on Contact Call and Warble Song Production in the Budgerigar (Melopsittacus undulatus) , 2000, Neurobiology of Learning and Memory.
[107] Lei Liu,et al. The Songbird Neurogenomics (SoNG) Initiative: Community-based tools and strategies for study of brain gene function and evolution , 2008, BMC Genomics.
[108] J. Wild,et al. Organization of afferent and efferent projections of the nucleus basalis prosencephali in a passerine, Taeniopygia guttata , 1996, The Journal of comparative neurology.
[109] M. Gahr. Neural song control system of hummingbirds: Comparison to swifts, vocal learning (Songbirds) and nonlearning (Suboscines) passerines, and vocal learning (Budgerigars) and nonlearning (Dove, owl, gull, quail, chicken) nonpasserines , 2000, The Journal of comparative neurology.
[110] J. Wild,et al. A non-thalamic pathway contributes to a whole body map in the brain of the budgerigar , 1997, Brain Research.
[111] H. Ohuchi,et al. Role of Pax‐5 in the regulation of a mid‐hindbrain organizer’s activity , 1999, Development, growth & differentiation.
[112] K. Agata,et al. The A5 antigen, a candidate for the neuronal recognition molecule, has homologies to complement components and coagulation factors , 1991, Neuron.
[113] G. Striedter,et al. The vocal control pathways in budgerigars differ from those in songbirds , 1994, The Journal of comparative neurology.
[114] M. Takeichi. The cadherin superfamily in neuronal connections and interactions , 2007, Nature Reviews Neuroscience.
[115] S. Brauth,et al. Effects of deafening on the development of nestling and juvenile vocalizations in budgerigars (Melopsittacus undulatus). , 1999, Journal of comparative psychology.
[116] G. Striedter,et al. Male vocal imitation produces call convergence during pair bonding in budgerigars, Melopsittacus undulatus , 2000, Animal Behaviour.
[117] F. Nottebohm,et al. Targeted Neuronal Death Affects Neuronal Replacement and Vocal Behavior in Adult Songbirds , 2000, Neuron.
[118] Harukazu Nakamura,et al. Isthmus organizer for mesencephalon and metencephalon , 2008, Development, growth & differentiation.
[119] D. Clayton,et al. Dynamic Role of Postsynaptic Caspase-3 and BIRC4 in Zebra Finch Song-Response Habituation , 2006, Neuron.
[120] J. Wild,et al. Reciprocal connections between primary and secondary auditory pathways in the telencephalon of the budgerigar (Melopsittacus undulatus) , 1997, Brain Research.
[121] Gerald E. Hough,et al. Avian brains and a new understanding of vertebrate brain evolution , 2005, Nature Reviews Neuroscience.
[122] K. Kawakami,et al. Transposon-mediated stable integration and tetracycline-inducible expression of electroporated transgenes in chicken embryos. , 2008, Methods in cell biology.
[123] M. Fee,et al. Using temperature to analyze temporal dynamics in the songbird motor pathway , 2008, Nature.
[124] T. Ogura,et al. Congenic method in the chick limb buds by electroporation , 2008, Development, growth & differentiation.
[125] M. Uchikawa. Enhancer analysis by chicken embryo electroporation with aid of genome comparison , 2008, Development, growth & differentiation.
[126] Gerald E. Hough,et al. Revised nomenclature for avian telencephalon and some related brainstem nuclei , 2004, The Journal of comparative neurology.
[127] J. Rubenstein,et al. Pallial and subpallial derivatives in the embryonic chick and mouse telencephalon, traced by the expression of the genes Dlx‐2, Emx‐1, Nkx‐2.1, Pax‐6, and Tbr‐1 , 2000, The Journal of comparative neurology.
[128] J. F. Prather,et al. Precise auditory–vocal mirroring in neurons for learned vocal communication , 2008, Nature.
[129] M. Tessier-Lavigne,et al. Neuropilin Is a Receptor for the Axonal Chemorepellent Semaphorin III , 1997, Cell.
[130] J Martin Wild,et al. Functional Neuroanatomy of the Sensorimotor Control of Singing , 2004, Annals of the New York Academy of Sciences.