Literature DB >> 25280907

The opportunities and challenges of large-scale molecular approaches to songbird neurobiology.

C V Mello1, D F Clayton2.   

Abstract

High-throughput methods for analyzing genome structure and function are having a large impact in songbird neurobiology. Methods include genome sequencing and annotation, comparative genomics, DNA microarrays and transcriptomics, and the development of a brain atlas of gene expression. Key emerging findings include the identification of complex transcriptional programs active during singing, the robust brain expression of non-coding RNAs, evidence of profound variations in gene expression across brain regions, and the identification of molecular specializations within song production and learning circuits. Current challenges include the statistical analysis of large datasets, effective genome curations, the efficient localization of gene expression changes to specific neuronal circuits and cells, and the dissection of behavioral and environmental factors that influence brain gene expression. The field requires efficient methods for comparisons with organisms like chicken, which offer important anatomical, functional and behavioral contrasts. As sequencing costs plummet, opportunities emerge for comparative approaches that may help reveal evolutionary transitions contributing to vocal learning, social behavior and other properties that make songbirds such compelling research subjects.
Copyright © 2014 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Avian models; Birdsong; Gene expression; Genomics; High-throughput; Microarrays; Networks; Songbirds; Transcriptomics; Vocal learning; Zebra finch

Mesh:

Year:  2014        PMID: 25280907      PMCID: PMC4355393          DOI: 10.1016/j.neubiorev.2014.09.017

Source DB:  PubMed          Journal:  Neurosci Biobehav Rev        ISSN: 0149-7634            Impact factor:   8.989


  78 in total

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Authors:  C V Mello
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Authors:  Hui-Yun Cheng; David F Clayton
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4.  Genome-wide atlas of gene expression in the adult mouse brain.

Authors:  Ed S Lein; Michael J Hawrylycz; Nancy Ao; Mikael Ayres; Amy Bensinger; Amy Bernard; Andrew F Boe; Mark S Boguski; Kevin S Brockway; Emi J Byrnes; Lin Chen; Li Chen; Tsuey-Ming Chen; Mei Chi Chin; Jimmy Chong; Brian E Crook; Aneta Czaplinska; Chinh N Dang; Suvro Datta; Nick R Dee; Aimee L Desaki; Tsega Desta; Ellen Diep; Tim A Dolbeare; Matthew J Donelan; Hong-Wei Dong; Jennifer G Dougherty; Ben J Duncan; Amanda J Ebbert; Gregor Eichele; Lili K Estin; Casey Faber; Benjamin A Facer; Rick Fields; Shanna R Fischer; Tim P Fliss; Cliff Frensley; Sabrina N Gates; Katie J Glattfelder; Kevin R Halverson; Matthew R Hart; John G Hohmann; Maureen P Howell; Darren P Jeung; Rebecca A Johnson; Patrick T Karr; Reena Kawal; Jolene M Kidney; Rachel H Knapik; Chihchau L Kuan; James H Lake; Annabel R Laramee; Kirk D Larsen; Christopher Lau; Tracy A Lemon; Agnes J Liang; Ying Liu; Lon T Luong; Jesse Michaels; Judith J Morgan; Rebecca J Morgan; Marty T Mortrud; Nerick F Mosqueda; Lydia L Ng; Randy Ng; Geralyn J Orta; Caroline C Overly; Tu H Pak; Sheana E Parry; Sayan D Pathak; Owen C Pearson; Ralph B Puchalski; Zackery L Riley; Hannah R Rockett; Stephen A Rowland; Joshua J Royall; Marcos J Ruiz; Nadia R Sarno; Katherine Schaffnit; Nadiya V Shapovalova; Taz Sivisay; Clifford R Slaughterbeck; Simon C Smith; Kimberly A Smith; Bryan I Smith; Andy J Sodt; Nick N Stewart; Kenda-Ruth Stumpf; Susan M Sunkin; Madhavi Sutram; Angelene Tam; Carey D Teemer; Christina Thaller; Carol L Thompson; Lee R Varnam; Axel Visel; Ray M Whitlock; Paul E Wohnoutka; Crissa K Wolkey; Victoria Y Wong; Matthew Wood; Murat B Yaylaoglu; Rob C Young; Brian L Youngstrom; Xu Feng Yuan; Bin Zhang; Theresa A Zwingman; Allan R Jones
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5.  For whom the bird sings: context-dependent gene expression.

Authors:  E D Jarvis; C Scharff; M R Grossman; J A Ramos; F Nottebohm
Journal:  Neuron       Date:  1998-10       Impact factor: 17.173

6.  Sexual dimorphism in vocal control areas of the songbird brain.

Authors:  F Nottebohm; A P Arnold
Journal:  Science       Date:  1976-10-08       Impact factor: 47.728

7.  Descending auditory pathways in the adult male zebra finch (Taeniopygia guttata).

Authors:  C V Mello; G E Vates; S Okuhata; F Nottebohm
Journal:  J Comp Neurol       Date:  1998-06-01       Impact factor: 3.215

8.  FOS and ZENK responses in 45-day-old zebra finches vary with auditory stimulus and brain region, but not sex.

Authors:  David J Bailey; Juli Wade
Journal:  Behav Brain Res       Date:  2005-07-01       Impact factor: 3.332

Review 9.  Learned birdsong and the neurobiology of human language.

Authors:  Erich D Jarvis
Journal:  Ann N Y Acad Sci       Date:  2004-06       Impact factor: 5.691

10.  Seasonal changes in patterns of gene expression in avian song control brain regions.

Authors:  Christopher K Thompson; John Meitzen; Kirstin Replogle; Jenny Drnevich; Karin L Lent; Anne Marie Wissman; Federico M Farin; Theo K Bammler; Richard P Beyer; David F Clayton; David J Perkel; Eliot A Brenowitz
Journal:  PLoS One       Date:  2012-04-18       Impact factor: 3.240

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  7 in total

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Journal:  Proc Natl Acad Sci U S A       Date:  2017-07-24       Impact factor: 11.205

Review 2.  Encore: Behavioural animal models of stress, depression and mood disorders.

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Journal:  Front Behav Neurosci       Date:  2022-08-08       Impact factor: 3.617

Review 3.  Inside the supergene of the bird with four sexes.

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4.  Gene expression underlying enhanced, steroid-dependent auditory sensitivity of hair cell epithelium in a vocal fish.

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Journal:  BMC Genomics       Date:  2015-10-14       Impact factor: 3.969

5.  Putting the "Biology" Back into "Neurobiology": The Strength of Diversity in Animal Model Systems for Neuroscience Research.

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6.  Grand and Less Grand Challenges in Avian Physiology.

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Review 7.  Integrating brain, behavior, and phylogeny to understand the evolution of sensory systems in birds.

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  7 in total

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