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
Equine dinucleotide repeat polymorphisms at loci ASB 21, 23, 25 and 37-43.
Animal genetics    July 31, 1998   Volume 29, Issue 1 67 
Irvin Z, Giffard J, Brandon R, Breen M, Bell K.No abstract available
Frequency of the SCID gene among Arabian horses in the USA.
Animal genetics    July 31, 1998   Volume 29, Issue 1 41-42 doi: 10.1046/j.1365-2052.1998.00237.x
Bernoco D, Bailey E.Severe combined immunodeficiency disease (SCID) of horses is an autosomal, recessive hereditary disease occurring among Arabian horses. The genetic defect responsible for this disease was recently identified as a 5-basepair deletion in the gene encoding DNA-protein kinase catalytic subunit (DNA-PKcs). Horses with one copy of the gene appear normal, while horses with two copies of the gene manifest the disease. The present report describes a PCR-based test for detection of the gene defect and the results from testing 250 randomly selected Arabian horses. The frequency of SCID gene carriers was ...
Comparisons of three probability formulae for parentage exclusion.
Animal genetics    June 6, 1998   Volume 28, Issue 6 397-400 doi: 10.1111/j.1365-2052.1997.00186.x
Jamieson A, Taylor SC.Three general formulae calibrate the average capability of marker systems to dispute falsely reported pedigree records in uniparous species. The most familiar exclusion formula applies to paternity, although the same formula applies equally to maternity. Another formula faults the relationship of a single offspring with its putative parent; for example, where the genotype of the other parent is not available. The remaining formulae excludes both of the falsely recorded parents of a substituted offspring. Simplified forms of the three general formulae facilitate the calculation of maximal avera...
Characterization of twelve new horse microsatellite loci: AHT12-AHT23.
Animal genetics    May 20, 1998   Volume 28, Issue 6 453 doi: 10.1111/j.1365-2052.1997.tb03289.x
Swinburne JE, Marti E, Breen M, Binns MM.No abstract available
A single base transversion in the flanking region of an equine microsatellite locus affects amplification of one allele.
Animal genetics    May 20, 1998   Volume 28, Issue 6 438-440 doi: 10.1111/j.1365-2052.1997.00188.x
Eggleston-Stott ML, Delvalle A, Dileanis S, Wictum E, Bowling AT.The equine dinucleotide microsatellite HMS7 is part of a microsatellite panel utilized in a parentage verification programme at the Veterinary Genetics Laboratory (Davis, California, USA). Apparent non-Mendelian inheritance was noted when a Quarter Horse mare was excluded as the parent of two offspring based on analysis of the HMS7 locus. The mare's DNA type qualified her as a parent of the offspring at an additional 20 microsatellite loci. The three animals appeared homozygous for HMS7 with each possessing an allele different from that of the other two animals. Polymerase chain reaction prime...
Nine equine dinucleotide repeats at microsatellite loci UCDEQ136, UCDEQ405, UCDEQ412, UCDEQ425, UCDEQ437, UCDEQ467, UCDEQ487, UCDEQ502 and UCDEQ505.
Animal genetics    November 18, 1997   Volume 28, Issue 5 370-371 
Eggleston-Stott ML, DelValle A, Bautista M, Dileanis S, Wictum E, Bowling AT.No abstract available
Equine dinucleotide repeat loci LEX049-LEX063.
Animal genetics    November 18, 1997   Volume 28, Issue 5 378 doi: 10.1111/j.1365-2052.1997.tb03281.x
Coogle L, Bailey E.No abstract available
Genetic relationship between equine apolipoproteins A4 and A1.
Animal genetics    August 1, 1997   Volume 28, Issue 4 306-307 doi: 10.1111/j.1365-2052.1997.00146.x
Kakoi H, Gawahara H.Genetic polymorphism of equine apolipoprotein (APO) A4 was investigated using two-dimensional electrophoresis in four horse breeds, including Japanese native horses. A linkage relationship between the equine APOA4 and APOA1 structural loci was assumed from the segregation data of these loci in one family line of the Japanese Hokkaido native breed.
Equine dinucleotide repeat loci LEX034-LEX048.
Animal genetics    August 1, 1997   Volume 28, Issue 4 309 
Coogle L, Reid R, Bailey E.No abstract available
Validation of microsatellite markers for routine horse parentage testing.
Animal genetics    August 1, 1997   Volume 28, Issue 4 247-252 doi: 10.1111/j.1365-2052.1997.00123.x
Bowling AT, Eggleston-Stott ML, Byrns G, Clark RS, Dileanis S, Wictum E.A parallel testing of 4803 routine Quarter Horse parentage cases, using 15 loci of blood group and protein polymorphisms (blood typing) and 11 loci of dinucleotide repeat microsatellites (DNA typing), validated DNA markers for horse pedigree verification. For the 26 loci, taken together, the theoretical effectiveness of detecting incorrect parentage was 99.999%, making it extremely unlikely that false parentage would fail to be recognized. The tests identified incorrect parentage assignment for 95 offspring (2% of cases). Despite fewer loci, DNA typing was as effective as blood typing and, in ...
Three newly detected alloantigens in the U blood group system of horses.
Animal genetics    August 1, 1997   Volume 28, Issue 4 313-314 
Nogaj A, Duniec MJ, Słota E, Duniec M.No abstract available
Linkage of the gene for equine combined immunodeficiency disease to microsatellite markers HTG8 and HTG4; synteny and FISH mapping to ECA9.
Animal genetics    August 1, 1997   Volume 28, Issue 4 268-273 doi: 10.1111/j.1365-2052.1997.00152.x
Bailey E, Reid RC, Skow LC, Mathiason K, Lear TL, McGuire TC.Equine combined immunodeficiency disease (CID) is caused by homozygosity for an autosomal recessive gene. To identify linked markers for the disease, we studied a family segregating for the equine CID gene. A stallion and 19 of his CID-affected offspring were tested for marker segregation at 23 microsatellite DNA loci. His CID-affected offspring inherited only one of his two alleles at the HTG8 and HTG4 loci, namely HTG8-186 and HTG4-124, respectively. Lod scores for linkage to the CID gene using a theta of 0.01 were 5.34 for HTG8 and 2.37 for HTG4. The apparent genotypes also suggested linkag...
Sixteen new polymorphic equine microsatellites.
Animal genetics    February 1, 1997   Volume 28, Issue 1 69-70 
Meyer AH, Valberg SJ, Hillers KR, Schweitzer JK, Mickelson JR.No abstract available
PCR-RFLP analysis of the cytochrome b gene in horse mitochondrial DNA.
Animal genetics    October 1, 1996   Volume 27, Issue 5 359-363 doi: 10.1111/j.1365-2052.1996.tb00979.x
Ishida N, Hasegawa T, Oyunsuren T, Mukoyama H.The mitochondrial DNA sequence of cytochrome b gene in a Thoroughbred horse was determined. By comparing DNA sequences between the Thoroughbred and published sequence data (two horses and one Grevyi zebra), polymerase chain reaction (PCR) primers were designed for amplification of a 590 bp DNA fragment in the cytochrome b gene, and PCR-restriction fragment length polymorphism (RFLP) analysis was studied in 140 horses of six breeds using three restriction enzymes (AciI, BamHI, RsaI). Two morphs were found using each of the three enzymes. By combining three enzymes morphs, the 140 horses examine...
DNA polymorphism of the ryanodine receptor gene, exon 17 among six equus species.
Animal genetics    October 1, 1996   Volume 27, Issue 5 376 doi: 10.1111/j.1365-2052.1996.tb00990.x
Ishida N, Hasegawa T, Mukoyama H.No abstract available
Equine dinucleotide repeat loci from LEX025 to LEX033.
Animal genetics    August 1, 1996   Volume 27, Issue 4 289-290 doi: 10.1111/j.1365-2052.1996.tb00500.x
Coogle L, Reid R, Bailey E.No abstract available
Four horse genomic fragments containing minisatellites detect highly polymorphic DNA fingerprints.
Animal genetics    August 1, 1996   Volume 27, Issue 4 286 doi: 10.1111/j.1365-2052.1996.tb00494.x
Anglana M, Vigoni MT, Giulotto E.No abstract available
Evidence for a single pedigree source of the hyperkalemic periodic paralysis susceptibility gene in quarter horses.
Animal genetics    August 1, 1996   Volume 27, Issue 4 279-281 doi: 10.1111/j.1365-2052.1996.tb00490.x
Bowling AT, Byrns G, Spier S.The pedigree origin of a base pair substitution in the horse muscle sodium channel gene that confers susceptibility to the muscle disease hyperkalemic periodic paralysis (HYPP) was investigated with a set of 978 Quarter Horses. The horses were chosen at random, based on a collection of blood samples taken between 1989 and 1991 to meet parentage testing requirements, primarily but not exclusively from breeding stallions. The frequency of Quarter Horses positive for the base pair substitution, all heterozygotes, was 4.4%, which corresponds to an allelic frequency of 0.02. All horses positive for...
Equine dinucleotide repeat loci LEX015-LEX024.
Animal genetics    June 1, 1996   Volume 27, Issue 3 217-218 
Coogle L, Reid R, Bailey E.No abstract available
Three new polymorphic equine microsatellites: HLM2, HLM3, HLM5.
Animal genetics    June 1, 1996   Volume 27, Issue 3 215 doi: 10.1111/j.1365-2052.1996.tb00961.x
Vega-Pla JL, Garrido JJ, Dorado G, de Andrés-Cara DF.No abstract available
Equine dinucleotide repeat polymorphisms at loci LEX002, -003, -004, -005, -007, -008, -009, -010, -011, -013 and -014.
Animal genetics    April 1, 1996   Volume 27, Issue 2 126-127 
Coogle L, Bailey E, Reid R, Russ M.No abstract available
Unequivocal identification of the equine Dcfmqr phenogroup.
Animal genetics    April 1, 1996   Volume 27, Issue 2 103-104 doi: 10.1111/j.1365-2052.1996.tb00476.x
Bell K, Colling DT.An alloimmune reagent has been produced that distinguishes the equine factor Df in the D phenogroup, cfmqr, from that occurring in cefmqr and dfklr. Using this reagent it has been possible to correctly genotype Dc, d, f, k, l, m, q and r positive cells without recourse to family data.
Characterization of two polymorphic horse microsatellites: HMS15 and HMS20.
Animal genetics    April 1, 1996   Volume 27, Issue 2 123 
Guérin G, Bertaud M.No abstract available
Four equine dinucleotide repeats at microsatellite loci UCDEQ5, UCDEQ14, UCDEQ46 and UCDEQ62.
Animal genetics    April 1, 1996   Volume 27, Issue 2 129 
Eggleston-Stott ML, DelValle A, Bowling AT, Bautista M, Zahorchak R, Malyj W.No abstract available
The equine MSH-R TaqI RFLP is not informative for hair colour in Arabian horses.
Animal genetics    February 1, 1996   Volume 27, Issue 1 64 doi: 10.1111/j.1365-2052.1996.tb01189.x
Kriegesmann B, Jansen S, Bishop M, Brenig B.No abstract available
Mutations in the equine plasma transferrin and esterase systems.
Animal genetics    December 1, 1995   Volume 26, Issue 6 407-411 doi: 10.1111/j.1365-2052.1995.tb02692.x
Bell K, Arthur H, Breen M.Eleven apparent mutations of the equine plasma transferrin and esterase gene (10 in TF and one in ES) were found in an analysis of approximately 240,000 thoroughbred horses. Eight of the transferrin mutations produced variants not previously recognized in horses. In the two remaining transferrin mutations and the esterase mutation, reduced plasma concentrations of the proteins were demonstrated by immunological techniques and together with the family data indicated the existence of 'null' alleles.
An equine microsatellite repeat at the VIAS-H64 locus.
Animal genetics    August 1, 1995   Volume 26, Issue 4 282 doi: 10.1111/j.1365-2052.1995.tb03263.x
Ewen KR, Matthews ME.No abstract available
Extensive mtDNA diversity in horses revealed by PCR-SSCP analysis.
Animal genetics    June 1, 1995   Volume 26, Issue 3 193-196 doi: 10.1111/j.1365-2052.1995.tb03162.x
Marklund S, Chaudhary R, Marklund L, Sandberg K, Andersson L.The hypervariable D-loop region of mitochondrial DNA (mtDNA) was amplified with the polymerase chain reaction using total horse DNA samples. Analysis of single strand conformation polymorphism (SSCP) of denatured amplification products was carried out by native polyacrylamide (8%) gel electrophoresis followed by silver staining. As many as 15 distinct SSCP variants were revealed when screening a total of 78 maternally unrelated horses representing five different breeds. All breeds showed a high degree of polymorphism and the estimated probability (PImt) that two maternally unrelated individual...
Equine parentage testing by microsatellite locus at chromosome 1q2.1.
Animal genetics    April 1, 1995   Volume 26, Issue 2 123-124 doi: 10.1111/j.1365-2052.1995.tb02647.x
Sakagami M, Tozaki T, Mashima S, Hirota K, Mukoyama H.No abstract available
Unusual D system inheritance in Anglo-Arab horse.
Animal genetics    February 1, 1995   Volume 26, Issue 1 53-54 doi: 10.1111/j.1365-2052.1995.tb02622.x
Kakoi H, Gawahara H, Miura N.An unusual D system phenogroup appeared in one family line of Anglo-Arab horse. This phenogroup probably originated from inheritance with an apparent absence of factors and was transmitted through successive generations.