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Topic:Genotyping

Genotyping in horses involves analyzing the genetic makeup of individual horses to identify specific genetic markers. This process aids in understanding genetic variations that may influence traits such as coat color, disease susceptibility, and performance capabilities. Genotyping can be used in breeding programs to select for desirable traits and manage genetic diversity within populations. Common methods for genotyping include single nucleotide polymorphism (SNP) analysis and microsatellite markers. This page compiles peer-reviewed research studies and scholarly articles that explore the methodologies, applications, and implications of genotyping in equine genetics and breeding.
Epidemiology of Rhodococcus equi strains on Thoroughbred horse farms.
Applied and environmental microbiology    April 25, 2001   Volume 67, Issue 5 2167-2175 doi: 10.1128/AEM.67.5.2167-2175.2001
Morton AC, Begg AP, Anderson GA, Takai S, Lämmler C, Browning GF.Pulsed-field gel electrophoresis of restriction endonuclease-digested genomic DNA from a large collection of clinical isolates of Rhodococcus equi, an important pathogen of foals, was used to compare strain distribution between farms and over time. Forty-four strains were found among 209 isolates, with 5 of these accounting for over half the isolates and the 22 strains isolated more than once accounting for 90% of the isolates. The average genotypic diversity on each farm and in each year was found to be less than the genotypic diversity of the isolates taken as a whole, with 5.2% of the total...
Characterization of equine microsatellites and microsatellite-linked repetitive elements (eMLREs) by efficient cloning and genotyping methods.
DNA research : an international journal for rapid publication of reports on genes and genomes    March 22, 2001   Volume 8, Issue 1 33-45 doi: 10.1093/dnares/8.1.33
Tozaki T, Mashima S, Hirota K, Miura N, Choi-Miura NH, Tomita M.We performed efficient cloning and genotyping methods for isolation of a large number of polymorphic microsatellites. The methods contain the time-efficient cloning method of constructing microsatellite-enriched libraries and the economic genotyping method of fluorescent labeling of PCR products. Eighty novel equine microsatellites cloned were efficiently isolated from the enrichment library and analyzed for genotype polymorphism. Of these, 72 microsatellites were analyzed with a good resolution. The average heterozygosity of all loci was 0.52, and the number of alleles ranged from one to 9 wi...
Incidence of the endothelin receptor B mutation that causes lethal white foal syndrome in white-patterned horses.
American journal of veterinary research    February 24, 2001   Volume 62, Issue 1 97-103 doi: 10.2460/ajvr.2001.62.97
Santschi EM, Vrotsos PD, Purdy AK, Mickelson JR.To determine incidence of the Ile118Lys endothelin receptor B (EDNRB) mutation responsible for overo lethal white syndrome (OLWS) and its association with specific types of white patterning. Methods: 945 horses of white-patterned bloodlines and 55 solid-colored horses of other breeds. Methods: Horses were genotyped by use of allele-specific polymerase chain reaction to determine incidence of the Ile118Lys EDNRB mutation. Results: Genotypes detected were homozygous Ile118, homozygous Lys118, and heterozygous. All foals with OLWS were homozygous for the Ile118Lys EDNRB mutation, and adults that ...
New polymorphism detected in the horse MC1R gene.
Animal genetics    November 22, 2000   Volume 31, Issue 4 289-290 doi: 10.1046/j.1365-2052.2000.00655.x
Wagner HJ, Reissmann M.No abstract available
TKY101: a highly polymorphic equine dinucleotide repeat locus.
Animal genetics    October 14, 2000   Volume 30, Issue 2 163 doi: 10.1046/j.1365-2052.1999.00382-3.x
Mashima S, Kakoi H, Tozaki T.No abstract available
Genotyping of Bacteroides fragilis isolates from stool specimens by arbitrarily-primed-PCR.
Diagnostic microbiology and infectious disease    September 7, 2000   Volume 37, Issue 4 225-229 doi: 10.1016/s0732-8893(00)00150-4
Sarma PN, Tang YJ, Prindiville TP, Osborne PD, Jang S, Silva J, Cohen SH.In order to determine genetic relatedness of Bacteroides fragilis isolates from different clinical sources, arbitrarily primed polymerase chain reaction (PCR) (AP-PCR) was used to compare 17 strains isolated from patients with inflammatory bowel disease (IBD) and 20 strains isolated from foals with diarrhea. Three reference ATCC strains were also analyzed. Eighteen unique types were identified with a 22-mer arbitrary primer (ERIC-2) among the 20 patient isolates. Types 1 (enterotoxigenic) and 9 (nonenterotoxigenic), were each found in the stools of two patients. All other isolates showed a dis...
Genomic variability of equine herpesvirus-5.
Archives of virology    August 30, 2000   Volume 145, Issue 7 1359-1371 doi: 10.1007/s007050070095
Dunowska M, Holloway SA, Wilks CR, Meers J.Seventeen New Zealand isolates of equine herpesvirus 5 (EHV-5) were compared to the Australian prototype strain. PCR primers were designed to amplify EHV-5 glycoprotein B (gB) gene, and Restriction Fragment Length Polymorphism (RFLP) was used to detect differences between cloned PCR products. EHV-5 isolates from different horses showed a high degree of heterogeneity. However, EHV-5 isolates from individual horses remained homogeneous when examined over a period of time or isolated from different sites. A single EHV-5 gB RFLP profile was detected in isolates from each individual horse but one. ...
Characterization of Escherichia coli isolated from adult horses with and without enteritis.
The veterinary quarterly    August 22, 2000   Volume 22, Issue 3 162-166 doi: 10.1080/01652176.2000.9695048
van Duijkeren E, van Asten AJ, Gaastra W.In the present study E. coli strains isolated from the faeces of ten horses with diarrhoea and 14 horses without diarrhoea were characterized. All horses were culture negative for Salmonella species. Nine colonies of E. coli from each faecal sample were picked at random and a DNA fingerprint was made by means of a polymerase chain reaction (PCR) using Enterobacterial Repetitive Intergenic Consensus (ERIC) primers. The number of E. coli genotypes did not differ significantly between horses with and without diarrhoea. In addition, all E. coli strains with different DNA fingerprints were tested b...
Characterisation of 25 new physically mapped horse microsatellite loci: AHT24++-48.
Animal genetics    July 15, 2000   Volume 31, Issue 3 237-238 
Swinburne JE, Lockhart L, Aldridge V, Marti E, Breen M, Binns MM.No abstract available
The isolation and characterization of 34 equine microsatellite loci, TKY290-TKY323.
Animal genetics    July 15, 2000   Volume 31, Issue 3 234-236 
Tozaki T, Kakoi H, Mashima S, Hirota K, Hasegawa T, Ishida N, Miura N, Tomita M.No abstract available
The equine CD74 gene has a polymorphic (CAG)n repeat in the 5′-untranslated region.
Animal genetics    July 15, 2000   Volume 31, Issue 3 239-240 
Tozaki T, Mashima S, Miura N, Tomita M.No abstract available
First comprehensive low-density horse linkage map based on two 3-generation, full-sibling, cross-bred horse reference families.
Genomics    June 22, 2000   Volume 66, Issue 2 123-134 doi: 10.1006/geno.2000.6207
Swinburne J, Gerstenberg C, Breen M, Aldridge V, Lockhart L, Marti E, Antczak D, Eggleston-Stott M, Bailey E, Mickelson J, Røed K, Lindgren G....Two 3-generation full-sibling reference families have been produced and form a unique resource for genetic linkage mapping studies in the horse. The F(2) generations, now comprising 61 individuals, consist of 28- to 32-day-old embryos removed nonsurgically from two pairs of identical twin mares. The same stallion sired all F(2)s such that the two full-sibling families are half-sibling with respect to each other. The families are crossbred to maximize levels of heterozygosity and include Arabian, Thoroughbred, Welsh Cob, and Icelandic Horse breeds. Milligram quantities of DNA have been isolated...
Use of repetitive sequence-based polymerase chain reaction for molecular epidemiologic analysis of Streptococcus equi subspecies equi.
American journal of veterinary research    June 13, 2000   Volume 61, Issue 6 699-705 doi: 10.2460/ajvr.2000.61.699
Al-Ghamdi GM, Kapur V, Ames TR, Timoney JF, Love DN, Mellencamp MA.To determine whether repetitive sequence-based polymerase chain reaction (rep-PCR) could be used to differentiate Streptococcus equi isolates, to examine S equi isolates from throughout the world, and to determine whether a horse had > 1 subtype of S equi during an outbreak of disease. Methods: An initial group of 32 S equi isolates, 63 S equi isolates from various geographic areas, and 17 S equi isolates obtained during outbreaks of disease. Methods: An aliquot of S equi genomic DNA was amplified, using enterobacterial repetitive intergenic consensus primers. Gel electrophoresis was perfor...
Twenty-one new equine dinucleotide repeat microsatellites.
Animal genetics    April 27, 2000   Volume 31, Issue 2 141 doi: 10.1046/j.1365-2052.2000.00574.x
Roberts MC, Murtaugh J, Valberg SJ, Mickelson JR, Alexander LJ.No abstract available
Two polymorphic markers for the horse SLC11A1 (NRAMP1) gene.
Animal genetics    April 27, 2000   Volume 31, Issue 2 152 doi: 10.1046/j.1365-2052.2000.00599.x
Horín P, Matiasovic J.No abstract available
The isolation and characterization of 18 equine microsatellite loci, TKY272-TKY289.
Animal genetics    April 27, 2000   Volume 31, Issue 2 149-150 doi: 10.1046/j.1365-2052.2000.00596.x
Tozaki T, Kakoi H, Mashima S, Hirota K, Hasegawa T, Ishida N, Miura N, Tomita M.No abstract available
Detection of heterogeneous genotypes among Australian strains of Taylorella equigenitalis.
Australian veterinary journal    March 29, 2000   Volume 78, Issue 1 56-57 doi: 10.1111/j.1751-0813.2000.tb10362.x
Matsuda M, Kagawa S, Sakamoto Y, Miyajima M, Barton M, Moore JE.No abstract available
Ten equine microsatellite loci: TKY25, TKY26, TKY27, TKY28, TKY29, TKY267, TKY268, TKY269, TKY270 and TKY271.
Animal genetics    February 26, 2000   Volume 31, Issue 1 68-69 doi: 10.1111/j.1365-2052.2000.579-1.x
Kakoi H, Tozaki T, Hirota K, Mashima S, Kurosawa M, Miura N.No abstract available
Characterization of ten equine dinucleotide microsatellite loci: NVHEQ21, NVHEQ54, NVHEQ67, NVHEQ70, NVHEQ75, NVHEQ77, NVHEQ79, NVHEQ81, NVHEQ82 and NVHEQ83.
Animal genetics    February 26, 2000   Volume 31, Issue 1 78-79 doi: 10.1111/j.1365-2052.2000.579-13.x
Bjørnstad G, Midthjell L, Røed KH.No abstract available
The genetic structure of Spanish Celtic horse breeds inferred from microsatellite data.
Animal genetics    February 26, 2000   Volume 31, Issue 1 39-48 doi: 10.1046/j.1365-2052.2000.00591.x
Cañon J, Checa ML, Carleos C, Vega-Pla JL, Vallejo M, Dunner S.Partition of the genetic variability, genetic structure and relationships among seven Spanish Celtic horse breeds were studied using PCR amplification of 13 microsatellites on 481 random individuals. In addition, 60 thoroughbred horses were included. The average observed heterozygosity and the mean number of alleles were higher for the Atlantic horse breeds than for the Balearic Islands breeds. Only eight percentage of the total genetic variability could be attributed to differences among breeds (mean FST approximately 0.08; P < 0.01). Atlantic breeds clearly form a separate cluster from th...
Determination of intraspecies variations of the V2 region of the 16S rRNA gene of Streptococcus equi subsp. zooepidemicus.
Research in veterinary science    February 24, 2000   Volume 68, Issue 1 33-39 doi: 10.1053/rvsc.1999.0332
Abdulmawjood A, Lämmler CH.The 16S rRNA gene of 39 S. equi subsp. zooepidemicus strains and two S. equi subsp. equi strains was amplified by polymerase chain reaction and subsequently digested with the restriction enzyme Hinc II. A restriction profile with two fragments with sizes of 1250 bp and 200 bp could be observed for both S. equi subsp. equi strains and for 30 of the 39 S. equi subsp. zooepidemicus strains indicating a sequence variation within the V2 region of the 16S rRNA gene of the remaining nine S. equi subsp. zooepidemicus isolates. A segment of the 16S rRNA gene including the hypervariable V2 region of 11 ...
Comparison of the phenotypes of Streptococcus zooepidemicus isolated from tonsils of healthy horses and specimens obtained from foals and donkeys with pneumonia.
American journal of veterinary research    February 24, 2000   Volume 61, Issue 2 162-166 doi: 10.2460/ajvr.2000.61.162
Anzai T, Walker JA, Blair MB, Chambers TM, Timoney JF.To determine whether streptococcal pneumonia is caused by strains of Streptococcus zooepidemicus similar to those obtained from the tonsils of healthy horses. Methods: 5 tonsils from healthy horses, 8 tracheal washes and 6 lung specimens from foals with pneumonia, and 5 nasopharyngeal swab specimens from donkeys with acute bronchopneumonia. Methods: Variable M-like protectively immunogenic SzP proteins of 5 isolates of S. zooepidemicus from each tonsil and clinical specimen were compared, using immunoblots. The SzP gene of 13 isolates representative of various SzP immunoblot phenotypes from 1 ...
Mitochondrial D-loop sequence variation among the 16 maternal lines of the Lipizzan horse breed.
Animal genetics    December 28, 1999   Volume 30, Issue 6 423-430 doi: 10.1046/j.1365-2052.1999.00557.x
Kavar T, Habe F, Brem G, Dovc P.Mitochondrial DNA from 49 Lipizzan horses representing 16 maternal lines from the original stud at Lipica was used for SSCP analysis and DNA sequencing. The SSCP analysis of the 444 bp long fragment of the D-loop region extending from the tRNA(Pro) gene to the central conserved sequence block revealed three distinct groups of SSCP patterns. Both ends of the D-loop region (378 bp and 310 bp), which are considered as the most variable regions within the mammalian mitochondrial DNA, were sequenced. According to 49 polymorphic sites identified within the both parts of the D-loop region, the 16 mat...
Report of the International Equine Gene Mapping Workshop: male linkage map.
Animal genetics    December 3, 1999   Volume 30, Issue 5 341-354 doi: 10.1046/j.1365-2052.1999.00510.x
Guérin G, Bailey E, Bernoco D, Anderson I, Antczak DF, Bell K, Binns MM, Bowling AT, Brandon R, Cholewinski G, Cothran EG, Ellegren H, Förster M....The goal of the First International Equine Gene Mapping Workshop, held in 1995, was the construction of a low density, male linkage map for the horse. For this purpose, the International Horse Reference Family Panel (IHRFP) was established, consisting of 12 paternal half-sib families with 448 half-sib offspring provided by 10 laboratories. Blood samples were collected and DNA extracted in each laboratory and sent to the Lexington laboratory (KY, USA) for dispatch in aliquots to 14 typing laboratories. In total, 161 markers (144 microsatellites, seven blood groups and 10 proteins) were tested f...
Equine dinucleotide repeat loci COR041-COR060.
Animal genetics    September 1, 1999   Volume 30, Issue 4 320-321 doi: 10.1046/j.1365-2052.1999.00445-4.x
Ruth LS, Hopman TJ, Schug MD, Aquadro CF, Bowling AT, Murray JD, Caetano AR, Antczak DF.No abstract available
Equine dinucleotide repeat loci COR021-COR040.
Animal genetics    August 12, 1999   Volume 30, Issue 3 235-237 doi: 10.1046/j.1365-2052.1999.00404-16.x
Murphie AM, Hopman TJ, Schug MD, Aquadro CF, Bowling AT, Murray JD, Caetano AR, Antczak DF.No abstract available
Detection of a common genotype among strains of Taylorella equigenitalis isolated from thoroughbred horses in Japan between 1994 and 1996.
Journal of basic microbiology    May 21, 1999   Volume 39, Issue 2 127-130 doi: 10.1002/(sici)1521-4028(199905)39:23.0.co;2-q
Matsuda M, Miyazawa T, Anzai T.We examined whether or not the genotype J could be detected among 21 new strains of T. equigenitalis isolated between 1994 and 1996 in Japan since our previous report (MIYAZAWA et al. 1995). The respective pulsed-field gel electrophoretic profiles of the 21 Japanese strains, as well as those of an old EQ59 used as a reference strain after separate digestion with the two restriction enzymes, ApaI and NotI, were essentially identical but differed from those of T. equigenitalis NCTC11184T and KENTUCKY 188, respectively. Hence, the 21 strains and EQ59 appeared to have a common genotype J. Conseque...
Genetic analysis of three South African horse breeds.
Journal of the South African Veterinary Association    April 7, 1999   Volume 69, Issue 4 120-125 doi: 10.4102/jsava.v69i4.839
Cothran EG, van Dyk E.Genetic variability at 7 blood-group and 10 biochemical genetic loci was examined in 3 South African horse breeds, the Nooitgedacht, Boerperd and Basuto Pony. Observed heterozygosity for these breeds was intermediate for domestic horses, with the highest heterozygosity in the Boerperd and the lowest in the Basuto Pony. The 3 breeds show greater genetic similarity to each other than to other domestic horse breeds. Compared to other breeds, the South African breeds show greater genetic similarity to breeds such as the Thoroughbred, Holstein, Trakehner and Hanovarian and also to North American br...
Diversity of isolates of Rhodococcus equi from Australian thoroughbred horse farms.
Antonie van Leeuwenhoek    March 9, 1999   Volume 74, Issue 1-3 21-25 doi: 10.1023/a:1001791509073
Morton AC, Baseggio N, Peters MA, Browning GF.Pulsed field gel electrophoresis of restriction endonuclease digested genomic DNA from a collection of clinical isolates of Rhodococcus equi was used to compare strain diversity on different Thoroughbred horse farms over time. Restricted diversity was found among the isolates tested, as the same strains were detected on multiple farms and in multiple years. Marked variation occurred in strain prevalence with some strains being represented by single isolates, and the most prevalent by 26 isolates. There were dominant strains on some farms and the prevalence of some strains differed between farm...
Genetic polymorphisms of equine microsatellite loci: TKY16, TKY19 and TKY21.
Animal genetics    March 2, 1999   Volume 30, Issue 1 68-69 doi: 10.1046/j.1365-2052.1999.00323-4.x
Kakoi H, Tozaki T, Hirota K, Mashima S.No abstract available
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