Author Report for: Falk J No contact information in database for Falk J
Title: Wnt4 participates in the formation of vertebrate neuromuscular junction
Strochlic L , Falk J , Goillot E , Sigoillot S , Bourgeois F , Delers P , Rouviere J , Swain A , Castellani V and Legay C <1 more author(s)>
Strochlic L , Falk J , Goillot E , Sigoillot S , Bourgeois F , Delers P , Rouviere J , Swain A , Castellani V , Schaeffer L , Legay C (- 1)
Ref: PLoS ONE, 7 :e29976, 2012 : PubMed Abstract ESTHER: Strochlic_2012_PLoS.One_7_e29976 PubMedSearch: Strochlic 2012 PLoS.One 7 e29976 PubMedID: 22253844 Abstract
Neuromuscular junction (NMJ) formation requires the highly coordinated communication of several reciprocal signaling processes between motoneurons and their muscle targets. Identification of the early, spatially restricted cues in target recognition at the NMJ is still poorly documented, especially in mammals. Wnt signaling is one of the key pathways regulating synaptic connectivity. Here, we report that Wnt4 contributes to the formation of vertebrate NMJ in vivo. Results from a microarray screen and quantitative RT-PCR demonstrate that Wnt4 expression is regulated during muscle cell differentiation in vitro and muscle development in vivo, being highly expressed when the first synaptic contacts are formed and subsequently downregulated. Analysis of the mouse Wnt4(-)/(-) NMJ phenotype reveals profound innervation defects including motor axons overgrowing and bypassing AChR aggregates with 30% of AChR clusters being unapposed by nerve terminals. In addition, loss of Wnt4 function results in a 35% decrease of the number of prepatterned AChR clusters while Wnt4 overexpression in cultured myotubes increases the number of AChR clusters demonstrating that Wnt4 directly affects postsynaptic differentiation. In contrast, muscle structure and the localization of several synaptic proteins including acetylcholinesterase, MuSK and rapsyn are not perturbed in the Wnt4 mutant. Finally, we identify MuSK as a Wnt4 receptor. Wnt4 not only interacts with MuSK ectodomain but also mediates MuSK activation. Taken together our data reveal a new role for Wnt4 in mammalian NMJ formation that could be mediated by MuSK, a key receptor in synaptogenesis.
         Title: Evolution of genes and genomes on the Drosophila phylogeny
Clark AG , Eisen MB , Smith DR , Bergman CM , Oliver B , Markow TA , Kaufman TC , Kellis M , Gelbart W and MacCallum I <405 more author(s)>
Clark AG , Eisen MB , Smith DR , Bergman CM , Oliver B , Markow TA , Kaufman TC , Kellis M , Gelbart W , Iyer VN , Pollard DA , Sackton TB , Larracuente AM , Singh ND , Abad JP , Abt DN , Adryan B , Aguade M , Akashi H , Anderson WW , Aquadro CF , Ardell DH , Arguello R , Artieri CG , Barbash DA , Barker D , Barsanti P , Batterham P , Batzoglou S , Begun D , Bhutkar A , Blanco E , Bosak SA , Bradley RK , Brand AD , Brent MR , Brooks AN , Brown RH , Butlin RK , Caggese C , Calvi BR , Bernardo de Carvalho A , Caspi A , Castrezana S , Celniker SE , Chang JL , Chapple C , Chatterji S , Chinwalla A , Civetta A , Clifton SW , Comeron JM , Costello JC , Coyne JA , Daub J , David RG , Delcher AL , Delehaunty K , Do CB , Ebling H , Edwards K , Eickbush T , Evans JD , Filipski A , Findeiss S , Freyhult E , Fulton L , Fulton R , Garcia AC , Gardiner A , Garfield DA , Garvin BE , Gibson G , Gilbert D , Gnerre S , Godfrey J , Good R , Gotea V , Gravely B , Greenberg AJ , Griffiths-Jones S , Gross S , Guigo R , Gustafson EA , Haerty W , Hahn MW , Halligan DL , Halpern AL , Halter GM , Han MV , Heger A , Hillier L , Hinrichs AS , Holmes I , Hoskins RA , Hubisz MJ , Hultmark D , Huntley MA , Jaffe DB , Jagadeeshan S , Jeck WR , Johnson J , Jones CD , Jordan WC , Karpen GH , Kataoka E , Keightley PD , Kheradpour P , Kirkness EF , Koerich LB , Kristiansen K , Kudrna D , Kulathinal RJ , Kumar S , Kwok R , Lander E , Langley CH , Lapoint R , Lazzaro BP , Lee SJ , Levesque L , Li R , Lin CF , Lin MF , Lindblad-Toh K , Llopart A , Long M , Low L , Lozovsky E , Lu J , Luo M , Machado CA , Makalowski W , Marzo M , Matsuda M , Matzkin L , McAllister B , McBride CS , McKernan B , McKernan K , Mendez-Lago M , Minx P , Mollenhauer MU , Montooth K , Mount SM , Mu X , Myers E , Negre B , Newfeld S , Nielsen R , Noor MA , O'Grady P , Pachter L , Papaceit M , Parisi MJ , Parisi M , Parts L , Pedersen JS , Pesole G , Phillippy AM , Ponting CP , Pop M , Porcelli D , Powell JR , Prohaska S , Pruitt K , Puig M , Quesneville H , Ram KR , Rand D , Rasmussen MD , Reed LK , Reenan R , Reily A , Remington KA , Rieger TT , Ritchie MG , Robin C , Rogers YH , Rohde C , Rozas J , Rubenfield MJ , Ruiz A , Russo S , Salzberg SL , Sanchez-Gracia A , Saranga DJ , Sato H , Schaeffer SW , Schatz MC , Schlenke T , Schwartz R , Segarra C , Singh RS , Sirot L , Sirota M , Sisneros NB , Smith CD , Smith TF , Spieth J , Stage DE , Stark A , Stephan W , Strausberg RL , Strempel S , Sturgill D , Sutton G , Sutton GG , Tao W , Teichmann S , Tobari YN , Tomimura Y , Tsolas JM , Valente VL , Venter E , Venter JC , Vicario S , Vieira FG , Vilella AJ , Villasante A , Walenz B , Wang J , Wasserman M , Watts T , Wilson D , Wilson RK , Wing RA , Wolfner MF , Wong A , Wong GK , Wu CI , Wu G , Yamamoto D , Yang HP , Yang SP , Yorke JA , Yoshida K , Zdobnov E , Zhang P , Zhang Y , Zimin AV , Baldwin J , Abdouelleil A , Abdulkadir J , Abebe A , Abera B , Abreu J , Acer SC , Aftuck L , Alexander A , An P , Anderson E , Anderson S , Arachi H , Azer M , Bachantsang P , Barry A , Bayul T , Berlin A , Bessette D , Bloom T , Blye J , Boguslavskiy L , Bonnet C , Boukhgalter B , Bourzgui I , Brown A , Cahill P , Channer S , Cheshatsang Y , Chuda L , Citroen M , Collymore A , Cooke P , Costello M , D'Aco K , Daza R , De Haan G , DeGray S , DeMaso C , Dhargay N , Dooley K , Dooley E , Doricent M , Dorje P , Dorjee K , Dupes A , Elong R , Falk J , Farina A , Faro S , Ferguson D , Fisher S , Foley CD , Franke A , Friedrich D , Gadbois L , Gearin G , Gearin CR , Giannoukos G , Goode T , Graham J , Grandbois E , Grewal S , Gyaltsen K , Hafez N , Hagos B , Hall J , Henson C , Hollinger A , Honan T , Huard MD , Hughes L , Hurhula B , Husby ME , Kamat A , Kanga B , Kashin S , Khazanovich D , Kisner P , Lance K , Lara M , Lee W , Lennon N , Letendre F , LeVine R , Lipovsky A , Liu X , Liu J , Liu S , Lokyitsang T , Lokyitsang Y , Lubonja R , Lui A , Macdonald P , Magnisalis V , Maru K , Matthews C , McCusker W , McDonough S , Mehta T , Meldrim J , Meneus L , Mihai O , Mihalev A , Mihova T , Mittelman R , Mlenga V , Montmayeur A , Mulrain L , Navidi A , Naylor J , Negash T , Nguyen T , Nguyen N , Nicol R , Norbu C , Norbu N , Novod N , O'Neill B , Osman S , Markiewicz E , Oyono OL , Patti C , Phunkhang P , Pierre F , Priest M , Raghuraman S , Rege F , Reyes R , Rise C , Rogov P , Ross K , Ryan E , Settipalli S , Shea T , Sherpa N , Shi L , Shih D , Sparrow T , Spaulding J , Stalker J , Stange-Thomann N , Stavropoulos S , Stone C , Strader C , Tesfaye S , Thomson T , Thoulutsang Y , Thoulutsang D , Topham K , Topping I , Tsamla T , Vassiliev H , Vo A , Wangchuk T , Wangdi T , Weiand M , Wilkinson J , Wilson A , Yadav S , Young G , Yu Q , Zembek L , Zhong D , Zimmer A , Zwirko Z , Alvarez P , Brockman W , Butler J , Chin C , Grabherr M , Kleber M , Mauceli E , MacCallum I (- 405)
Ref: Nature, 450 :203, 2007 : PubMed Abstract ESTHER: Clark_2007_Nature_450_203 PubMedSearch: Clark 2007 Nature 450 203 PubMedID: 17994087 Gene_locus related to this paper: droan-ACHE ,
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drosi-b4qjv6 ,
drosi-b4qk23 ,
drosi-b4qk51 ,
drosi-b4qlt1 ,
drosi-b4qlz9 ,
drosi-b4qmn9 ,
drosi-b4qrq7 ,
drosi-b4qs01 ,
drosi-b4qs57 ,
drosi-b4qs82 ,
drosi-b4qs83 ,
drosi-b4qs84 ,
drosi-b4qs85 ,
drosi-b4qs86 ,
drosi-b4qsq1 ,
drosi-b4quk6 ,
drosi-b4qvg5 ,
drosi-b4qvg6 ,
drosi-b4qzn2 ,
drosi-b4qzn3 ,
drosi-b4qzn5 ,
drosi-b4qzn7 ,
drosi-b4qzn8 ,
drosi-b4qzp2 ,
drosi-b4qzp3 ,
drosi-b4qzp4 ,
drosi-b4qzp5 ,
drosi-b4qzp6 ,
drosi-b4qzp7 ,
drosi-b4r1a4 ,
drosi-b4r025 ,
drosi-b4r207 ,
drosi-b4r662 ,
drosi-este6 ,
drosi-q670k8 ,
drovi-ACHE ,
drovi-b4lev2 ,
drovi-b4lf33 ,
drovi-b4lf51 ,
drovi-b4lg54 ,
drovi-b4lg72 ,
drovi-b4lgc6 ,
drovi-b4lgd5 ,
drovi-b4lgg0 ,
drovi-b4lgk5 ,
drovi-b4lgn2 ,
drovi-b4lh17 ,
drovi-b4lh18 ,
drovi-b4lk43 ,
drovi-b4ll59 ,
drovi-b4ll60 ,
drovi-b4llm5 ,
drovi-b4lln3 ,
drovi-b4lmk4 ,
drovi-b4lmp0 ,
drovi-b4lnr4 ,
drovi-b4lp47 ,
drovi-b4lpd0 ,
drovi-b4lps0 ,
drovi-b4lqc6 ,
drovi-b4lr00 ,
drovi-b4lrp6 ,
drovi-b4lrw2 ,
drovi-b4lse7 ,
drovi-b4lse9 ,
drovi-b4lsf0 ,
drovi-b4lsn0 ,
drovi-b4lsq5 ,
drovi-b4lt32 ,
drovi-b4ltr1 ,
drovi-b4lui7 ,
drovi-b4lui9 ,
drovi-b4luj8 ,
drovi-b4luk0 ,
drovi-b4luk3 ,
drovi-b4luk8 ,
drovi-b4luk9 ,
drovi-b4lul0 ,
drovi-b4lve2 ,
drovi-b4lxi9 ,
drovi-b4lxj8 ,
drovi-b4lyf3 ,
drovi-b4lyq2 ,
drovi-b4lyq3 ,
drovi-b4lz07 ,
drovi-b4lz13 ,
drovi-b4lz14 ,
drovi-b4lz15 ,
drovi-b4m0j7 ,
drovi-b4m0s0 ,
drovi-b4m2b6 ,
drovi-b4m4h7 ,
drovi-b4m4h8 ,
drovi-b4m4i0 ,
drovi-b4m4i2 ,
drovi-b4m4i3.A ,
drovi-b4m4i3.B ,
drovi-b4m4i4 ,
drovi-b4m4i5 ,
drovi-b4m4i6 ,
drovi-b4m4i7 ,
drovi-b4m4i8 ,
drovi-b4m4i9 ,
drovi-b4m4j2 ,
drovi-b4m5a0 ,
drovi-b4m5a1 ,
drovi-b4m5a2 ,
drovi-b4m6b9 ,
drovi-b4m7k9 ,
drovi-b4m9g9 ,
drovi-b4m9h0 ,
drovi-b4m564 ,
drovi-b4m599 ,
drovi-b4m918 ,
drovi-b4mb87 ,
drovi-b4mc71 ,
drovi-b4mfa4 ,
drowi-ACHE ,
drowi-b4mjb9 ,
drowi-b4mkt7 ,
drowi-b4mlc1 ,
drowi-b4mp68 ,
drowi-b4mqe9 ,
drowi-b4mqf0.2 ,
drowi-b4mqf1 ,
drowi-b4mqf3 ,
drowi-b4mqf4 ,
drowi-b4mqf5 ,
drowi-b4mqq6 ,
drowi-b4mrd1 ,
drowi-b4mrk3 ,
drowi-b4mtl5 ,
drowi-b4mug2 ,
drowi-b4muj8 ,
drowi-b4mv18 ,
drowi-b4mw32 ,
drowi-b4mw85 ,
drowi-b4mwp2 ,
drowi-b4mwp6 ,
drowi-b4mwq5 ,
drowi-b4mwr0 ,
drowi-b4mwr8 ,
drowi-b4mwr9 ,
drowi-b4mwt1 ,
drowi-b4mwz7 ,
drowi-b4mxn5 ,
drowi-b4my54 ,
drowi-b4myg1 ,
drowi-b4myh5 ,
drowi-b4n0d4 ,
drowi-b4n1a7 ,
drowi-b4n1c8 ,
drowi-b4n3s9 ,
drowi-b4n3x7 ,
drowi-b4n4x9 ,
drowi-b4n4y0 ,
drowi-b4n6m1 ,
drowi-b4n6n0 ,
drowi-b4n6n7 ,
drowi-b4n6u6 ,
drowi-b4n7s6 ,
drowi-b4n7s7 ,
drowi-b4n7s8 ,
drowi-b4n899.1 ,
drowi-b4n8a1 ,
drowi-b4n8a2 ,
drowi-b4n8a3 ,
drowi-b4n8a4 ,
drowi-b4n8a9 ,
drowi-b4n023 ,
drowi-b4n075 ,
drowi-b4n543 ,
drowi-b4n888 ,
drowi-b4n889 ,
drowi-b4n891 ,
drowi-b4n893 ,
drowi-b4n895 ,
drowi-b4n897 ,
drowi-b4n898 ,
drowi-b4n899.2 ,
drowi-b4nae3 ,
drowi-b4ner8 ,
drowi-b4ng76 ,
drowi-b4nga7 ,
drowi-b4ngb5 ,
drowi-b4nhz9 ,
drowi-b4nj18 ,
drowi-b4nj19 ,
drowi-b4nja7 ,
drowi-b4nja8 ,
drowi-b4nja9 ,
drowi-b4njk8 ,
drowi-b4nkc8 ,
drowi-b4nky0 ,
drowi-b4nl36 ,
drowi-b4nm27 ,
drowi-b4nn59 ,
drowi-b4nnc1 ,
drowi-b4nng1 ,
drowi-b4nng2 ,
droya-ACHE ,
droya-aes04 ,
droya-b4itg2 ,
droya-b4itg6 ,
droya-b4itu9 ,
droya-b4iuv4 ,
droya-b4iuv5 ,
droya-b4nxe6 ,
droya-b4nxg5 ,
droya-b4nxg6 ,
droya-b4nxg8 ,
droya-b4nxw4 ,
droya-b4ny57 ,
droya-b4ny58 ,
droya-b4ny86 ,
droya-b4nzz8 ,
droya-b4p0b5 ,
droya-b4p0q9 ,
droya-b4p0r0 ,
droya-b4p0r7 ,
droya-b4p0r8 ,
droya-b4p0r9 ,
droya-b4p0s0 ,
droya-b4p0s2 ,
droya-b4p0t0 ,
droya-b4p0t1 ,
droya-b4p3h4 ,
droya-b4p3x8 ,
droya-b4p5g8 ,
droya-b4p6c9 ,
droya-b4p6l9 ,
droya-b4p6r1 ,
droya-b4p6r2 ,
droya-b4p7u4 ,
droya-b4p8w7 ,
droya-b4p023 ,
droya-b4p241 ,
droya-b4p774 ,
droya-b4pat9 ,
droya-b4pbl1 ,
droya-b4pd22 ,
droya-b4pd70 ,
droya-b4pdm8 ,
droya-b4pet9 ,
droya-b4pff9 ,
droya-b4pga7 ,
droya-b4pgu0 ,
droya-b4pig3 ,
droya-b4pjt8 ,
droya-b4pka2 ,
droya-b4plh2 ,
droya-b4pma3 ,
droya-b4pmv3 ,
droya-b4pmv4 ,
droya-b4pmv5 ,
droya-b4pn92 ,
droya-b4pp65 ,
droya-b4ppc5 ,
droya-b4ppc6 ,
droya-b4ppc7 ,
droya-b4ppc8 ,
droya-b4pq03 ,
droya-b4prg6B ,
droya-b4prg9 ,
droya-b4prh3 ,
droya-b4prh4 ,
droya-b4prh6 ,
droya-b4prh7 ,
droya-b4psz8 ,
droya-b4psz9 ,
droya-b4pv22 ,
droya-b4q0g5 ,
droya-b4q246 ,
droya-EST6 ,
droya-q71d76 ,
drowi-b4n7m9 ,
drope-b4gkk1 ,
droer-b3n5s3 ,
drose-b4i1w5 ,
drowi-a0a0q9x0t3 ,
drogr-b4jvm7 ,
dromo-b4ku70 ,
drovi-b4mcn9 ,
drovi-b4lty2 ,
drogr-b4jdu1 ,
drovi-a0a0q9wiq8 ,
dromo-b4kf70 ,
drosi-b2zi86 ,
droya-b4p2y4 ,
drose-b2zic5 ,
droer-b3n895 Abstract
Comparative analysis of multiple genomes in a phylogenetic framework dramatically improves the precision and sensitivity of evolutionary inference, producing more robust results than single-genome analyses can provide. The genomes of 12 Drosophila species, ten of which are presented here for the first time (sechellia, simulans, yakuba, erecta, ananassae, persimilis, willistoni, mojavensis, virilis and grimshawi), illustrate how rates and patterns of sequence divergence across taxa can illuminate evolutionary processes on a genomic scale. These genome sequences augment the formidable genetic tools that have made Drosophila melanogaster a pre-eminent model for animal genetics, and will further catalyse fundamental research on mechanisms of development, cell biology, genetics, disease, neurobiology, behaviour, physiology and evolution. Despite remarkable similarities among these Drosophila species, we identified many putatively non-neutral changes in protein-coding genes, non-coding RNA genes, and cis-regulatory regions. These may prove to underlie differences in the ecology and behaviour of these diverse species.
         Title: A plant locus essential for phylloquinone (vitamin K1) biosynthesis originated from a fusion of four eubacterial genes
Gross J , Cho WK , Lezhneva L , Falk J , Krupinska K , Shinozaki K , Seki M , Herrmann RG , Meurer J
Ref: Journal of Biological Chemistry, 281 :17189, 2006 : PubMed Abstract ESTHER: Gross_2006_J.Biol.Chem_281_17189 PubMedSearch: Gross 2006 J.Biol.Chem 281 17189 PubMedID: 16617180 Gene_locus related to this paper: arath-T6L1.8 Abstract
Phylloquinone is a compound present in all photosynthetic plants serving as cofactor for Photosystem I-mediated electron transport. Newly identified seedling-lethal Arabidopsis thaliana mutants impaired in the biosynthesis of phylloquinone possess reduced Photosystem I activity. The affected gene, called PHYLLO, consists of a fusion of four previously individual eubacterial genes, menF, menD, menC, and menH, required for the biosynthesis of phylloquinone in photosynthetic cyanobacteria and the respiratory menaquinone in eubacteria. The fact that homologous men genes reside as polycistronic units in eubacterial chromosomes and in plastomes of red algae strongly suggests that PHYLLO derived from a plastid operon during endosymbiosis. The principle architecture of the fused PHYLLO locus is conserved in the nuclear genomes of plants, green algae, and the diatom alga Thalassiosira pseudonana. The latter arose from secondary endosymbiosis of a red algae and a eukaryotic host indicating selective driving forces for maintenance and/or independent generation of the composite gene cluster within the nuclear genomes. Besides, individual menF genes, encoding active isochorismate synthases (ICS), have been established followed by splitting of the essential 3' region of the menF module of PHYLLO only in genomes of higher plants. This resulted in inactivation of the ICS activity encoded by PHYLLO and enabled a metabolic branch from the phylloquinone biosynthetic route to independently regulate the synthesis of salicylic acid required for plant defense. Therefore, gene fusion, duplication, and fission events adapted a eubacterial multienzymatic system to the metabolic requirements of plants.
         Title: Genome sequence, comparative analysis and haplotype structure of the domestic dog
Lindblad-Toh K , Wade CM , Mikkelsen TS , Karlsson EK , Jaffe DB , Kamal M , Clamp M , Chang JL , Kulbokas EJ, 3rd and Lander ES <224 more author(s)>
Lindblad-Toh K , Wade CM , Mikkelsen TS , Karlsson EK , Jaffe DB , Kamal M , Clamp M , Chang JL , Kulbokas EJ, 3rd , Zody MC , Mauceli E , Xie X , Breen M , Wayne RK , Ostrander EA , Ponting CP , Galibert F , Smith DR , deJong PJ , Kirkness E , Alvarez P , Biagi T , Brockman W , Butler J , Chin CW , Cook A , Cuff J , Daly MJ , Decaprio D , Gnerre S , Grabherr M , Kellis M , Kleber M , Bardeleben C , Goodstadt L , Heger A , Hitte C , Kim L , Koepfli KP , Parker HG , Pollinger JP , Searle SM , Sutter NB , Thomas R , Webber C , Baldwin J , Abebe A , Abouelleil A , Aftuck L , Ait-Zahra M , Aldredge T , Allen N , An P , Anderson S , Antoine C , Arachchi H , Aslam A , Ayotte L , Bachantsang P , Barry A , Bayul T , Benamara M , Berlin A , Bessette D , Blitshteyn B , Bloom T , Blye J , Boguslavskiy L , Bonnet C , Boukhgalter B , Brown A , Cahill P , Calixte N , Camarata J , Cheshatsang Y , Chu J , Citroen M , Collymore A , Cooke P , Dawoe T , Daza R , Decktor K , DeGray S , Dhargay N , Dooley K , Dorje P , Dorjee K , Dorris L , Duffey N , Dupes A , Egbiremolen O , Elong R , Falk J , Farina A , Faro S , Ferguson D , Ferreira P , Fisher S , FitzGerald M , Foley K , Foley C , Franke A , Friedrich D , Gage D , Garber M , Gearin G , Giannoukos G , Goode T , Goyette A , Graham J , Grandbois E , Gyaltsen K , Hafez N , Hagopian D , Hagos B , Hall J , Healy C , Hegarty R , Honan T , Horn A , Houde N , Hughes L , Hunnicutt L , Husby M , Jester B , Jones C , Kamat A , Kanga B , Kells C , Khazanovich D , Kieu AC , Kisner P , Kumar M , Lance K , Landers T , Lara M , Lee W , Leger JP , Lennon N , Leuper L , LeVine S , Liu J , Liu X , Lokyitsang Y , Lokyitsang T , Lui A , MacDonald J , Major J , Marabella R , Maru K , Matthews C , McDonough S , Mehta T , Meldrim J , Melnikov A , Meneus L , Mihalev A , Mihova T , Miller K , Mittelman R , Mlenga V , Mulrain L , Munson G , Navidi A , Naylor J , Nguyen T , Nguyen N , Nguyen C , Nicol R , Norbu N , Norbu C , Novod N , Nyima T , Olandt P , O'Neill B , O'Neill K , Osman S , Oyono L , Patti C , Perrin D , Phunkhang P , Pierre F , Priest M , Rachupka A , Raghuraman S , Rameau R , Ray V , Raymond C , Rege F , Rise C , Rogers J , Rogov P , Sahalie J , Settipalli S , Sharpe T , Shea T , Sheehan M , Sherpa N , Shi J , Shih D , Sloan J , Smith C , Sparrow T , Stalker J , Stange-Thomann N , Stavropoulos S , Stone C , Stone S , Sykes S , Tchuinga P , Tenzing P , Tesfaye S , Thoulutsang D , Thoulutsang Y , Topham K , Topping I , Tsamla T , Vassiliev H , Venkataraman V , Vo A , Wangchuk T , Wangdi T , Weiand M , Wilkinson J , Wilson A , Yadav S , Yang S , Yang X , Young G , Yu Q , Zainoun J , Zembek L , Zimmer A , Lander ES (- 224)
Ref: Nature, 438 :803, 2005 : PubMed Abstract ESTHER: Lindblad-Toh_2005_Nature_438_803 PubMedSearch: Lindblad-Toh 2005 Nature 438 803 PubMedID: 16341006 Gene_locus related to this paper: canfa-1lipg ,
canfa-2neur ,
canfa-3neur ,
canfa-ACHE ,
canfa-BCHE ,
canfa-cauxin ,
canfa-CESDD1 ,
canfa-e2qsb1 ,
canfa-e2qsl3 ,
canfa-e2qsz2 ,
canfa-e2qvk3 ,
canfa-e2qw15 ,
canfa-e2qxs8 ,
canfa-e2qzs6 ,
canfa-e2r5t3 ,
canfa-e2r6f6 ,
canfa-e2r7e8 ,
canfa-e2r8v9 ,
canfa-e2r8z1 ,
canfa-e2r9h4 ,
canfa-e2r455 ,
canfa-e2rb70 ,
canfa-e2rcq9 ,
canfa-e2rd94 ,
canfa-e2rgi0 ,
canfa-e2rkq0 ,
canfa-e2rlz9 ,
canfa-e2rm00 ,
canfa-e2rqf1 ,
canfa-e2rss9 ,
canfa-f1p6w8 ,
canfa-f1p8b6 ,
canfa-f1p9d8 ,
canfa-f1p683 ,
canfa-f1pb79 ,
canfa-f1pgw0 ,
canfa-f1phd0 ,
canfa-f1phx2 ,
canfa-f1pke8 ,
canfa-f1pp08 ,
canfa-f1ppp9 ,
canfa-f1ps07 ,
canfa-f1ptf1 ,
canfa-f1pvp4 ,
canfa-f1pw93 ,
canfa-f1pwk3 ,
canfa-pafa ,
canfa-q1ert3 ,
canfa-q5jzr0 ,
canfa-e2rmb9 ,
canlf-f6v865 ,
canlf-e2rjg6 ,
canlf-e2r2h2 ,
canlf-f1p648 ,
canlf-f1pw90 ,
canlf-j9p8v6 ,
canlf-f1pcc4 ,
canlf-e2qxh0 ,
canlf-e2r774 ,
canlf-f1pf96 ,
canlf-e2rq56 ,
canlf-j9nwb1 ,
canlf-f1ptw2 ,
canlf-j9p8h1 ,
canlf-e2ree2 ,
canlf-f1prs1 ,
canlf-j9nus1 ,
canlf-e2rf91 ,
canlf-f1pg57 ,
canlf-f1q111 Abstract
Here we report a high-quality draft genome sequence of the domestic dog (Canis familiaris), together with a dense map of single nucleotide polymorphisms (SNPs) across breeds. The dog is of particular interest because it provides important evolutionary information and because existing breeds show great phenotypic diversity for morphological, physiological and behavioural traits. We use sequence comparison with the primate and rodent lineages to shed light on the structure and evolution of genomes and genes. Notably, the majority of the most highly conserved non-coding sequences in mammalian genomes are clustered near a small subset of genes with important roles in development. Analysis of SNPs reveals long-range haplotypes across the entire dog genome, and defines the nature of genetic diversity within and across breeds. The current SNP map now makes it possible for genome-wide association studies to identify genes responsible for diseases and traits, with important consequences for human and companion animal health.