Analyze Diet

Animal genetics.

Periodical
Genetics
Zoology
Animals
Publisher:
Published by Blackwell Scientific Publications for the International Society for Animal Blood Group Research,. Oxford, England : Wiley-Blackwell
Frequency: Bimonthly,
Country: England
Language: English
Author(s):
International Society for Animal Blood Group Research., International Society for Animal Genetics.
Start Year:1986 -
ISSN:
0268-9146 (Print)
1365-2052 (Electronic)
0268-9146 (Linking)
Impact Factor
2.4
2022
NLM ID:8605704
(DNLM):SR0056566(s)
(OCoLC):13459823
Coden:ANGEE3
LCCN:sf 93095318
Classification:W1 AN228P
Analysis of a SNP in exon 7 of equine OCA2 and its exclusion as a cause for appaloosa spotting.
Animal genetics    September 19, 2006   Volume 37, Issue 5 525 doi: 10.1111/j.1365-2052.2006.01505.x
Bellone R, Lawson S, Hunter N, Archer S, Bailey E.No abstract available
A high-resolution comparative radiation hybrid map of equine chromosome 4q12-q22.
Animal genetics    September 19, 2006   Volume 37, Issue 5 513-517 doi: 10.1111/j.1365-2052.2006.01510.x
Dierks C, Mömke S, Drögemüller C, Leeb T, Chowdhary BP, Distl O.In this study, we present a comprehensive 5000-rad radiation hybrid map of a 40-cM region on equine chromosome 4 (ECA4) that contains quantitative trait loci for equine osteochondrosis. We mapped 29 gene-associated sequence tagged site markers using primers designed from equine expressed sequence tags or BAC clones in the ECA4q12-q22 region. Three blocks of conserved synteny, showing two chromosomal breakpoints, were identified in the segment of ECA4q12-q22. Markers from other segments of HSA7q mapped to ECA13p and ECA4p, and a region of HSA7p was homologous to ECA13p. Therefore, we have impro...
Mitochondrial DNA sequence diversity in extant Irish horse populations and in ancient horses.
Animal genetics    September 19, 2006   Volume 37, Issue 5 498-502 doi: 10.1111/j.1365-2052.2006.01506.x
McGahern AM, Edwards CJ, Bower MA, Heffernan A, Park SD, Brophy PO, Bradley DG, MacHugh DE, Hill EW.Equine mitochondrial DNA sequence variation was investigated in three indigenous Irish horse populations (Irish Draught Horse, Kerry Bog Pony and Connemara Pony) and, for context, in 69 other horse populations. There was no evidence of Irish Draught Horse or Connemara Pony sequence clustering, although the majority of Irish Draught Horse sequences (47%) were assigned to haplogroup D. Conversely, 31% of the Kerry Bog Pony sequences were assigned to the rare haplogroup E. In addition to the extant population analyses, ancient DNA sequences were generated from three out of four Irish archaeologic...
Evidence for biogeographic patterning of mitochondrial DNA sequences in Eastern horse populations.
Animal genetics    September 19, 2006   Volume 37, Issue 5 494-497 doi: 10.1111/j.1365-2052.2006.01495.x
McGahern A, Bower MA, Edwards CJ, Brophy PO, Sulimova G, Zakharov I, Vizuete-Forster M, Levine M, Li S, MacHugh DE, Hill EW.Equine mitochondrial DNA (mtDNA) phylogeny reconstruction reveals a complex pattern of variation unlike that seen in other large domesticates. It is likely that this pattern reflects a process of multiple and repeated, although not necessarily independent, domestication events. Until now, no clear geographic affiliation of clades has been apparent. In this study, amova analyses have revealed a significant non-random distribution of the diversity among equine populations when seven newly sequenced Eurasian populations were examined in the context of previously published sequences. The associati...
Chromosomal assignments for the equine AMPK family genes.
Animal genetics    June 1, 2006   Volume 37, Issue 3 293-294 doi: 10.1111/j.1365-2052.2006.01431.x
Dranchak PK, Ekenstedt KJ, Valberg SJ, Chowdhary BP, Raudsepp T, Mickelson JR.No abstract available
Horse microsatellites and their amenability to comparative equid genetics.
Animal genetics    June 1, 2006   Volume 37, Issue 3 258-261 doi: 10.1111/j.1365-2052.2006.01422.x
Moodley Y, Baumgarten I, Harley EH.We investigated the applicability of microsatellite primers, designed in horses, for use in plains and mountain zebras. Fifteen of the 20 tested horse-isolated primer pairs reliably amplified polymorphic loci in two wild equid species. We used this information to assess whether levels of genetic variation and repeat size differed in species from which microsatellites were isolated and in closely related target species. Target equid species exhibited similar levels of genetic variation to the horse, the species from which primers were originally isolated. We show that ascertainment bias results...
Construction of a medium-density horse gene map.
Animal genetics    April 1, 2006   Volume 37, Issue 2 145-155 doi: 10.1111/j.1365-2052.2005.01401.x
Perrocheau M, Boutreux V, Chadi S, Mata X, Decaunes P, Raudsepp T, Durkin K, Incarnato D, Iannuzzi L, Lear TL, Hirota K, Hasegawa T, Zhu B, de Jong P....A medium-density map of the horse genome (Equus caballus) was constructed using genes evenly distributed over the human genome. Three hundred and twenty-three exonic primer pairs were used to screen the INRA and the CHORI-241 equine BAC libraries by polymerase chain reaction and by filter hybridization respectively. Two hundred and thirty-seven BACs containing equine gene orthologues, confirmed by sequencing, were isolated. The BACs were localized to horse chromosomes by fluorescent in situ hybridization (FISH). Overall, 165 genes were assigned to the equine genomic map by radiation hybrid (RH...
Genetic diversity among horse populations with a special focus on the Franches-Montagnes breed.
Animal genetics    January 31, 2006   Volume 37, Issue 1 33-39 doi: 10.1111/j.1365-2052.2005.01376.x
Glowatzki-Mullis ML, Muntwyler J, Pfister W, Marti E, Rieder S, Poncet PA, Gaillard C.Genetic characterization helps to assure breed integrity and to assign individuals to defined populations. The objective of this study was to characterize genetic diversity in six horse breeds and to analyse the population structure of the Franches-Montagnes breed, especially with regard to the degree of introgression with Warmblood. A total of 402 alleles from 50 microsatellite loci were used. The average number of alleles per locus was significantly lower in Thoroughbreds and Arabians. Average heterozygosities between breeds ranged from 0.61 to 0.72. The overall average of the coefficient of...
Radiation hybrid mapping of equine CDK2, DGKA, DNAJC14, MMP19, CTSL and GAS1.
Animal genetics    November 19, 2005   Volume 36, Issue 6 536-537 doi: 10.1111/j.1365-2052.2005.01381.x
Wittwer C, Chowdhary BP, Distl O.No abstract available
The B-cell CLL lymphoma 2 (BCL2) gene maps to equine chromosome 8q22.
Animal genetics    November 19, 2005   Volume 36, Issue 6 517-519 doi: 10.1111/j.1365-2052.2005.01359.x
Klukowska-Rötzler J, Bugno M, Slota E, Robinson NE, Piumi F, Guérin G, Dolf G, Gerber V.No abstract available
Cytogenetic mapping of immunity-related genes in the domestic horse.
Animal genetics    November 19, 2005   Volume 36, Issue 6 507-510 doi: 10.1111/j.1365-2052.2005.01348.x
Musilova P, Kubickova S, Vychodilova-Krenkova L, Kralik P, Matiasovic J, Hubertova D, Rubes J, Horin P.Chromosomal locations of 19 horse immunity-related loci (CASP1, CD14, EIF5A, FCER1A, IFNG, IL12A, IL12B, IL12RB2, IL1A, IL23A, IL4, IL6, MMP7, MS4A2, MYD88, NOS2A, PTGS2, TFRC and TLR2) were determined by fluorescence in situ hybridization. For IFNG and PTGS2, this study is a confirmation of their previously reported position. In addition, microsatellite (HMBr1) was localized in the same region as IFNG. All genes were assigned to regions of conserved synteny and the data obtained in this study enhance the comparative human-horse map. Cytogenetic localization of IL6 to ECA4q14-q21.1 suggested a...
Assignment of BGLAP, BMP2, CHST4, SLC1A3, SLC4A1, SLC9A5 and SLC20A1 to equine chromosomes by FISH and confirmation by RH mapping.
Animal genetics    September 20, 2005   Volume 36, Issue 5 457-461 doi: 10.1111/j.1365-2052.2005.01347.x
Müller D, Kuiper H, Böneker C, Mömke S, Drögemüller C, Chowdhary BP, Distl O.No abstract available
Comparative linkage mapping of the Grey coat colour gene in horses.
Animal genetics    September 20, 2005   Volume 36, Issue 5 390-395 doi: 10.1111/j.1365-2052.2005.01334.x
Pielberg G, Mikko S, Sandberg K, Andersson L.Grey horses are born coloured, turn progressively grey and often develop melanomas late in life. Grey shows an autosomal dominant inheritance and the locus has previously been mapped to horse chromosome 25 (ECA25), around the TXN gene. We have now developed eight new single nucleotide polymorphisms (SNPs) associated with genes on ECA25 using information on the linear order of genes on human chromosome 9q, as well as the human and mouse coding sequences. These SNPs were mapped in relation to the Grey locus using more than 300 progeny from matings between two Swedish Warmblood grey stallions and...
Equine microsatellites associated with the COMP, LRP5 and COL1A1 genes.
Animal genetics    June 4, 2005   Volume 36, Issue 3 261-262 doi: 10.1111/j.1365-2052.2005.01272.x
Hillyer LL, Pettitt LA, Debenham SL, Swinburne JE, Binns MM, Price JS.No abstract available
Assignment of the COL16A1 gene to equine chromosome 2p15.1-p15.3 by FISH and confirmation by RH mapping.
Animal genetics    June 4, 2005   Volume 36, Issue 3 262-263 doi: 10.1111/j.1365-2052.2005.01273.x
Böneker C, Kuiper H, Wöhlke A, Drögemüller C, Chowdhary BP, Distl O.No abstract available
Assignment of the COMP gene to equine chromosome 21q12-q14 by FISH and confirmation by RH mapping.
Animal genetics    June 4, 2005   Volume 36, Issue 3 277-279 doi: 10.1111/j.1365-2052.2005.01294.x
Müller D, Kuiper H, Mömke S, Böneker C, Drögemüller C, Chowdhary BP, Distl O.No abstract available
The Lusitano horse maternal lineage based on mitochondrial D-loop sequence variation.
Animal genetics    June 4, 2005   Volume 36, Issue 3 196-202 doi: 10.1111/j.1365-2052.2005.01279.x
Lopes MS, Mendonça D, Cymbron T, Valera M, da Costa-Ferreira J, Machado Ada C.The analysis of mitochondrial D-loop sequences (408 bp) from 145 Lusitano founder mares yielded a total of 27 different haplotypes. The distribution of these mtDNA sequences was quite unequal, with the three most frequent ones representing 56.5% of all the Lusitano founder mares and 14 haplotypes (51.9%) being rare variants found only once in the sampling. Four main haplotype clusters were present in the Lusitano breed. The comparison of these sequences with other equine haplotypes shows that they fall in groups shared with other horse breeds. These data support the hypothesis of multiple dome...
Mitochondrial DNA analysis of horses recovered from a frozen tomb (Berel site, Kazakhstan, 3rd Century BC).
Animal genetics    June 4, 2005   Volume 36, Issue 3 203-209 doi: 10.1111/j.1365-2052.2005.01316.x
Keyser-Tracqui C, Blandin-Frappin P, Francfort HP, Ricaut FX, Lepetz S, Crubézy E, Samashev Z, Ludes B.Sequence polymorphism of the mitochondrial DNA D-loop was used to determine the genetic diversity of horses recovered from a Scythian princely tomb dating from the beginning of the 3rd century BC. Eight haplotypes were found among the 13 ancient horse samples tested. Phylogenetical analysis showed that these ancient horse's sequences, along with two Yakut ones, were distributed throughout the tree defined by modern horses' sequences and are closely related to them. No clear geographical affiliation of the specimens studied was thus determined. Our work, among others, supports the very ancient ...
Radiation hybrid and linkage mapping of six new type I markers in the horse.
Animal genetics    March 18, 2005   Volume 36, Issue 2 182-184 doi: 10.1111/j.1365-2052.2005.01257.x
Bricker SJ, Brault LS, DelValle A, Millon LV, Murray JD, Penedo MC.No abstract available
Sequence, detection of polymorphisms and radiation hybrid mapping of the equine catechol-o-methyltransferase gene.
Animal genetics    March 18, 2005   Volume 36, Issue 2 190 doi: 10.1111/j.1365-2052.2005.01265.x
Momozawa Y, Takeuchi Y, Tozaki T, Kikusui T, Hasegawa T, Raudsepp T, Chowdhary BP, Kusunose R, Mori Y.No abstract available
Characterization and localization of 17 microsatellites derived from BACs in the horse.
Animal genetics    March 18, 2005   Volume 36, Issue 2 164-166 doi: 10.1111/j.1365-2052.2004.01235.x
Milenkovic D, Mariat D, Swinburne J, Chadi-Taourit S, Binns M, Guérin G.No abstract available
Isolation, characterization and chromosome assignment of 341 newly isolated equine TKY microsatellite markers.
Animal genetics    November 30, 2004   Volume 35, Issue 6 487-496 doi: 10.1111/j.1365-2052.2004.01208.x
Tozaki T, Penedo MC, Oliveira RP, Katz JP, Millon LV, Ward T, Pettigrew DC, Brault LS, Tomita M, Kurosawa M, Hasegawa T, Hirota K.No abstract available
Sixty-seven new equine microsatellite loci assigned to the equine radiation hybrid map.
Animal genetics    November 30, 2004   Volume 35, Issue 6 484-486 doi: 10.1111/j.1365-2052.2004.01205.x
Wagner ML, Goh G, Wu JT, Morrison LY, Alexander LJ, Raudsepp T, Skow LC, Chowdhary BP, Mickelson JR.No abstract available
Thirty-five new equine microsatellite loci assigned to genetic linkage and radiation hybrid maps.
Animal genetics    November 30, 2004   Volume 35, Issue 6 481-484 doi: 10.1111/j.1365-2052.2004.01206.x
Mickelson JR, Wagner ML, Goh G, Wu JT, Morrison LY, Alexander LJ, Raudsepp T, Skow LC, Chowdhary BP, Swinburne JE, Binns MM.No abstract available
Microsatellite diversity, population subdivision and gene flow in the Lipizzan horse.
Animal genetics    July 22, 2004   Volume 35, Issue 4 285-292 doi: 10.1111/j.1365-2052.2004.01157.x
Achmann R, Curik I, Dovc P, Kavar T, Bodo I, Habe F, Marti E, Sölkner J, Brem G.Blood samples of 561 Lipizzan horses from subpopulations (studs) of seven European countries representing a large fraction of the breed's population were used to examine the genetic diversity, population subdivision and gene flow in the breed. DNA analysis based on 18 microsatellite loci revealed that genetic diversity (observed heterozygosity = 0.663, gene diversity = 0.675 and the mean number of alleles = 7.056) in the Lipizzan horse is similar to other horse breeds as well as to other domestic animal species. The genetic differentiation between Lipizzan horses from different studs, although...
Genetic diversity in German draught horse breeds compared with a group of primitive, riding and wild horses by means of microsatellite DNA markers.
Animal genetics    July 22, 2004   Volume 35, Issue 4 270-277 doi: 10.1111/j.1365-2052.2004.01166.x
Aberle KS, Hamann H, Drögemüller C, Distl O.We compared the genetic diversity and distance among six German draught horse breeds to wild (Przewalski's Horse), primitive (Icelandic Horse, Sorraia Horse, Exmoor Pony) or riding horse breeds (Hanoverian Warmblood, Arabian) by means of genotypic information from 30 microsatellite loci. The draught horse breeds included the South German Coldblood, Rhenish German Draught Horse, Mecklenburg Coldblood, Saxon Thuringa Coldblood, Black Forest Horse and Schleswig Draught Horse. Despite large differences in population sizes, the average observed heterozygosity (H(o)) differed little among the heavy ...
Assignment of the appaloosa coat colour gene (LP) to equine chromosome 1.
Animal genetics    March 18, 2004   Volume 35, Issue 2 134-137 doi: 10.1111/j.1365-2052.2004.01113.x
Terry RB, Archer S, Brooks S, Bernoco D, Bailey E.A single autosomal dominant locus, leopard complex (LP) controls the presence of appaloosa pigmentation patterns in the horse. The causative gene for LP is unknown. This study was undertaken to map LP in the horse. Two paternal half sib families segregating for the LP locus and including a total of 47 offspring were used to perform a genome scan which localized LP to horse chromosome 1 (ECA1). LP was linked to ASB08 (LOD = 9.99 at Theta = 0.02) and AHT21 (LOD = 5.03 at Theta = 0.14). To refine the map position of LP, eight microsatellite markers on ECA1 (UM041, LEX77, 1CA41, TKY374, COR046, 1C...
Radiation hybrid mapping of 63 previously unreported equine microsatellite loci.
Animal genetics    March 18, 2004   Volume 35, Issue 2 159-162 doi: 10.1111/j.1365-2052.2004.01109.x
Wagner ML, Goh G, Wu JT, Raudsepp T, Morrison LY, Alexander LJ, Skow LC, Chowdhary BP, Mickelson JR.No abstract available
Identification of putative homology between horse microsatellite flanking sequences and cross-species ESTs, mRNAs and genomic sequences.
Animal genetics    January 21, 2004   Volume 35, Issue 1 28-33 doi: 10.1111/j.1365-2052.2003.01077.x
Farber CR, Medrano JF.In this study the flanking sequences of 1534 horse microsatellites were used in a BLAST search to identify putative human-horse homologies. BLAST searches revealed 129 flanking sequences with significant blastn matches [alignment scores (S) > or = 60 and sum probability values (E) < or = 3.0E-6], also, 25 of these produced significant blastx matches. To provide a reference point in the human genome the flanking sequences with matches were subjected to a BLAT search of the University of California Santa Cruz (UCSC) human genome assembly (July 2003 freeze). Eighty-three of the flanking seq...
Fixed nucleotide differences on the Y chromosome indicate clear divergence between Equus przewalskii and Equus caballus.
Animal genetics    December 23, 2003   Volume 34, Issue 6 453-456 doi: 10.1046/j.0268-9146.2003.01044.x
Wallner B, Brem G, Müller M, Achmann R.The phylogenetic relationship between Equus przewalskii and E. caballus is often a matter of debate. Although these taxa have different chromosome numbers, they do not form monophyletic clades in a phylogenetic tree based on mtDNA sequences. Here we report sequence variation from five newly identified Y chromosome regions of the horse. Two fixed nucleotide differences on the Y chromosome clearly display Przewalski's horse and domestic horse as sister taxa. At both positions the Przewalski's horse haplotype shows the ancestral state, in common with the members of the zebra/ass lineage. We discu...
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