Analyze Diet

Topic:DNA

DNA in horses refers to the genetic material that carries the hereditary information necessary for the growth, development, functioning, and reproduction of equine species. It consists of sequences of nucleotides that encode the genetic instructions used in the development and functioning of horses. DNA analysis in horses can provide insights into genetic diversity, lineage, and breed characteristics. It is also utilized in identifying genetic disorders, understanding hereditary traits, and assisting in selective breeding programs. This page compiles peer-reviewed research studies and scholarly articles that explore the structure, function, and applications of DNA analysis in equine genetics and breeding.
Estimation of the prevalence of severe combined immunodeficiency disease in UK Arab horses as determined by a DNA-based test.
The Veterinary record    August 19, 1999   Volume 145, Issue 1 22-23 doi: 10.1136/vr.145.1.22
Swinburne J, Lockhart L, Scott M, Binns MM.No abstract available
Species-specific amplification by PCR of ribosomal DNA from some equine strongyles.
Parasitology    August 14, 1999   Volume 119 ( Pt 1) 69-80 doi: 10.1017/s0031182099004497
Hung GC, Gasser RB, Beveridge I, Chilton NB.The first and second internal transcribed spacer sequences of 28 morphologically-defined species of horse strongyle were characterized, and specific oligonucleotide primers were designed for some species based on the nucleotide differences. Utilizing these primers, a PCR approach was developed for the specific amplification of ribosomal DNA of Strongylus vulgaris, Cyathostomum catinatum, Cylicocyclus nassatus, Cylicostephanus longibursatus or Cylicostephanus goldi. The method allowed the species-specific amplification of parasite DNA derived from faecal samples and/or copro-cultures, demonstra...
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
Physical mapping of ten equine dinucleotide repeat microsatellites.
Animal genetics    August 12, 1999   Volume 30, Issue 3 235 doi: 10.1046/j.1365-2052.1999.00404-15.x
Lear TL, Brandon R, Bell K.No abstract available
Distribution of the ERE-1 family in Perissodactyla.
Mammalian genome : official journal of the International Mammalian Genome Society    August 12, 1999   Volume 10, Issue 9 930-933 doi: 10.1007/s003359901117
Sakagami M, Hiromura K, Chemnick LG, Ryder OA.No abstract available
Equine dinucleotide repeat loci COR001-COR020.
Animal genetics    August 12, 1999   Volume 30, Issue 3 225-226 doi: 10.1046/j.1365-2052.1999.00404.x
Hopman TJ, Han EB, Story MR, Schug MD, Aquadro CF, Bowling AT, Murray JD, Caetano AR, Antczak DF.No abstract available
Molecular detection of Babesia equi and Babesia caballi in horse blood by PCR amplification of part of the 16S rRNA gene.
Veterinary parasitology    August 6, 1999   Volume 84, Issue 1-2 75-83 doi: 10.1016/s0304-4017(99)00049-7
Bashiruddin JB, Cammà C, Rebêlo E.Babesia equi and Babesia caballi are tick-borne haemoparasites that may cause babesiosis of Equidae. In southern Europe B. equi is enzootic and infections may occur asymptomatically and more frequently than those due to B. caballi. Complement fixation test (CFT) is the official serological test for the diagnosis of equine babesiosis, but it has low sensitivity during early and latent stages of the disease. With the aim of developing more sensitive and rapid direct diagnostic alternatives, PCR systems that amplified DNA targets of 664 or 659 bp regions of the 16S rRNA genes were designed and de...
Antibody responses to DNA vaccination of horses using the influenza virus hemagglutinin gene.
Vaccine    July 14, 1999   Volume 17, Issue 18 2245-2258 doi: 10.1016/s0264-410x(98)00496-4
Lunn DP, Soboll G, Schram BR, Quass J, McGregor MW, Drape RJ, Macklin MD, McCabe DE, Swain WF, Olsen CW.Equine influenza virus infection remains one of the most important infectious diseases of the horse, yet current vaccines offer only limited protection. The equine immune response to natural influenza virus infection results in long-term protective immunity, and is characterized by mucosal IgA and serum IgGa and IgGb antibody responses. DNA vaccination offers a radical alternative to conventional vaccines, with the potential to generate the same protective immune responses seen following viral infection. Antigen-specific antibody isotype responses in serum and mucosal secretions were studied i...
Phylogenetic relationships of Cheju horses to other horse breeds as determined by mtDNA D-loop sequence polymorphism.
Animal genetics    June 22, 1999   Volume 30, Issue 2 102-108 doi: 10.1046/j.1365-2052.1999.00419.x
Kim KI, Yang YH, Lee SS, Park C, Ma R, Bouzat JL, Lewin HA.Historical records suggest that horses inhabiting the island of Cheju in Korea are descendants of Mongolian horses introduced in 1276. Other studies, however, suggest that horses may have been present on the island prior to the Mongolian introduction. To determine the origin of the Cheju horses we used a phylogenetic analysis of sequences of the mitochondrial DNA (mtDNA) D-loop region, including tRNA Pro and parts of tRNA thr and tRNA Phe sequences (1102-bp excluding the tandem repeat region). Maximum parsimony and neighbor-joining trees were constructed using sequences determined for seven Ch...
Detection of equine herpesvirus types 2 and 5 (EHV-2 and EHV-5) in Przewalski’s wild horses.
Archives of virology    June 12, 1999   Volume 144, Issue 4 771-780 doi: 10.1007/s007050050542
Borchers K, Frölich K, Ludwig H.In blood samples of seven captive equid species from four German zoos EHV-1 specific antibodies were detected in 76% and EHV-4 specific antibodies in 73% of the 55 animals, whereas 93% were tested positive for EHV-2 and EHV-5, respectively. In only one blood sample from a Przewalski's wild horse EHV-4 DNA was amplified by PCR. From seven Przewalski's wild horses EHV-2, and from another one EHV-5 was isolated by cocultivation. The identity of the virus isolates was verified by PCR and restriction enzyme digestion.
Construction of chromosome-specific paints for meta- and submetacentric autosomes and the sex chromosomes in the horse and their use to detect homologous chromosomal segments in the donkey. Raudsepp T, Chowdhary BP.A pilot study comparing horse and donkey karyotypes on a molecular basis was initiated using the chromosomal microdissection approach. All equine meta- and submetacentric chromosomes, viz. ECA1 to ECA13 and the X and Y chromosomes, were microdissected. The DNA was PCR amplified, non-radioactively labelled and used as probes on equine metaphase chromosomes to confirm their origin. Once tested, the paints were used as probes on donkey metaphase chromosomes to detect homologous chromosomal segments between the two species. The results not only detected conservation of whole chromosome and/or arm ...
Multiple DNA markers differentiate Sarcocystis neurona and Sarcocystis falcatula.
The Journal of parasitology    April 29, 1999   Volume 85, Issue 2 221-228 
Tanhauser SM, Yowell CA, Cutler TJ, Greiner EC, MacKay RJ, Dame JB.Studies designed to investigate the causative agent of equine protozoal myeloencephalitis and its life cycle have been hampered by the marked similarity of Sarcocystis neurona to other Sarcocystis spp. present in the same definitive host. Random-amplified polymorphic DNA techniques were used to amplify DNA from isolates of S. neurona and Sarcocystis falcatula. DNA sequence analysis of polymerase chain reaction (PCR) products was then used to design PCR primers to amplify specific Sarcocystis spp. DNA products. The ribosomal RNA internal transcribed spacer was also amplified and compared betwee...
Identification of a new aspartic proteinase expressed by the outer chorionic cell layer of the equine placenta.
Biology of reproduction    April 20, 1999   Volume 60, Issue 5 1069-1077 doi: 10.1095/biolreprod60.5.1069
Green JA, Xie S, Szafranska B, Gan X, Newman AG, McDowell K, Roberts RM.The pregnancy-associated glycoproteins (PAGs) are placental antigens that were initially characterized as pregnancy markers in the maternal circulation of domestic ruminant species. They are members of the aspartic proteinase gene family, having greatest sequence identity with pepsinogens. However, some are not capable of functioning as enzymes. The PAGs are associated with a large gene family within the Artiodactyla order (cattle, camels, pigs). So far, no members of this family have been characterized in species outside this order. This report describes the cloning and initial characterizati...
A sensitive polymerase chain reaction based assay for the detection of Setaria digitata: the causative organism of cerebrospinal nematodiasis in goats, sheep and horses.
Veterinary parasitology    April 6, 1999   Volume 81, Issue 3 225-233 doi: 10.1016/s0304-4017(98)00248-9
Wijesundera WS, Chandrasekharan NV, Karunanayake EH.A sensitive PCR assay for the detection of Setaria digitata has been developed. Two oligonucleotide primers (17 nt) were designed from a previously cloned and characterized tandemly arranged repetitive sequence of Setaria digitata. Using these primers, it was possible to amplify small quantities (100 fg) of S. digitata genomic DNA. A simple procedure, using proteinase K and non-ionic detergent NP 40, was followed to process the host blood samples and mosquitoes harbouring L3 larvae. The sensitivity of the polymerase chain reaction based assay surpasses the microscopic detection and the previou...
Twelve equine dinucleotide repeats at microsatellite loci UCDEQ304, UCDEQ380, UCDEQ387, UCDEQ411, UCDEQ439, UCDEQ440, UCDEQ455, UCDEQ457, UCDEQ464, UCDEQ465, UCDEQ482 and UCDEQ497.
Animal genetics    March 2, 1999   Volume 30, Issue 1 69-70 doi: 10.1046/j.1365-2052.1999.00323-5.x
Eggleston-Stott ML, DelValle A, Bautista M, Dileanis S, Wictum E.No abstract available
Five equine dinucleotide microsatellite loci HTG17, HTG20, HTG21, HTG28 and HTG31.
Animal genetics    March 2, 1999   Volume 30, Issue 1 70-71 doi: 10.1046/j.1365-2052.1999.00323-6.x
Lindgren G, Persson H, Ellegren H.No abstract available
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
Comparative mapping of 18 equine type I genes assigned by somatic cell hybrid analysis.
Mammalian genome : official journal of the International Mammalian Genome Society    March 2, 1999   Volume 10, Issue 3 271-276 doi: 10.1007/s003359900985
Caetano AR, Pomp D, Murray JD, Bowling AT.Polymerase chain reaction primers designed from horse cDNA sequences and from consensus sequences highly conserved in mammalian species were used to amplify markers for synteny mapping 18 equine type I genes. These markers were used to screen a horse-mouse somatic cell hybrid panel (UCDavis SCH). Fourteen primer sets amplified horse-specific fragments, while restriction enzyme digests of PCR products were used to distinguish the fragments amplified from horse and mouse with four primer sets. Synteny assignments were made based on correlation values between each marker tested and other markers ...
A synteny map of the horse genome comprised of 240 microsatellite and RAPD markers.
Animal genetics    March 2, 1999   Volume 30, Issue 1 1-9 doi: 10.1046/j.1365-2052.1999.00377.x
Shiue YL, Bickel LA, Caetano AR, Millon LV, Clark RS, Eggleston ML, Michelmore R, Bailey E, Guérin G, Godard S, Mickelson JR, Valberg SJ, Murray JD....To generate a domestic horse genome map we integrated synteny information for markers screened on a somatic cell hybrid (SCH) panel with published information for markers physically assigned to chromosomes. The mouse-horse SCH panel was established by fusing pSV2neo transformed primary horse fibroblasts to either RAG or LMTk mouse cells, followed by G418 antibiotic selection. For each of the 108 cell lines of the panel, we defined the presence or absence of 240 genetic markers by PCR, including 58 random amplified polymorphic DNA (RAPD) markers and 182 microsatellites. Thirty-three syntenic gr...
Close association between sequence polymorphism in the KIT gene and the roan coat color in horses.
Mammalian genome : official journal of the International Mammalian Genome Society    March 2, 1999   Volume 10, Issue 3 283-288 doi: 10.1007/s003359900987
Marklund S, Moller M, Sandberg K, Andersson L.The roan coat color in horses is controlled by a dominant allele that is lethal in the homozygous condition. Phenotypic similarities to some pigmentation disorders in human and mouse, combined with comparative mapping data, identified KIT, encoding the mast cell growth factor receptor, as a major candidate gene for the roan locus (Rn). Rn has previously been mapped to equine linkage group (LG) II. In this study, LGII was expanded with KIT and PDGFRA (platelet-derived growth factor receptor alpha) by use of RFLP and linkage analysis. Moreover, highly significant linkage disequilibrium between R...
Scrotal heat stress induces altered sperm chromatin structure associated with a decrease in protamine disulfide bonding in the stallion.
Biology of reproduction    February 20, 1999   Volume 60, Issue 3 615-620 doi: 10.1095/biolreprod60.3.615
Love CC, Kenney RM.A variety of testicular insults can induce changes in the structure of spermatozoal chromatin, resulting in spermatozoal DNA that is more susceptible to acid-induced denaturation. The degree of change in the DNA can be measured using the sperm chromatin structure assay (SCSA). The SCSA measures the relative amounts of single- and double-stranded DNA after staining with the metachromatic dye, acridine orange. Here we used a stallion model (n = 4) to study the effects of scrotal heat stress on spermatozoal DNA. This model was created by insulating stallion testes for 48 h and collecting sperm da...
Differences in second-intention wound healing between horses and ponies: histological aspects.
Equine veterinary journal    February 10, 1999   Volume 31, Issue 1 61-67 doi: 10.1111/j.2042-3306.1999.tb03792.x
Wilmink JM, van Weeren PR, Stolk PW, Van Mil FN, Barneveld A.The histological aspects of second-intention healing were studied in 5 horses and 5 ponies. Biopsies were taken weekly from standardised wounds on the metatarsus and femoral biceps muscle of one horse and one pony. Sections were stained to enable cell counting and the detection of DNA synthesis, fibrin, smooth muscle actin (SMA), collagen, and bacteria. In the ponies, the number of polymorphonuclear leucocytes (PMNs) was high during the first 3 weeks and subsequently decreased rapidly. In the horses, the initial number of PMNs was lower, but remained persistently elevated during the evaluation...
Quantitation of equine cytokine mRNA expression by reverse transcription-competitive polymerase chain reaction.
Veterinary immunology and immunopathology    February 9, 1999   Volume 67, Issue 1 1-15 doi: 10.1016/s0165-2427(98)00212-8
Giguère S, Prescott JF.A reverse transcription-competitive polymerase chain reaction (RT-cPCR) method was developed to quantitate equine interleukin (IL)-1alpha, IL-1beta, IL-2, IL-4, IL-5, IL-6, IL-10, IL-12 p35, IL-12 p40, interferon-gamma (INF-gamma), tumor necrosis factor-alpha (TNF-alpha), and beta-actin mRNA expression. Using primers based on equine-specific sequences, these cytokines could be detected in concanavalin A-stimulated peripheral blood mononuclear cells. The specificity of the amplified product was confirmed by sequencing. For each cytokine, the assay was made quantitative by generating competitor ...
Two SINE families associated with equine microsatellite loci.
Mammalian genome : official journal of the International Mammalian Genome Society    January 29, 1999   Volume 10, Issue 2 140-144 doi: 10.1007/s003359900959
Gallagher PC, Lear TL, Coogle LD, Bailey E.BLAST searches of 61 equine microsatellite sequences revealed two related families of retroposons. The first family included seven markers, all of which showed significant homology to the Equine Repetitive Element-1 (ERE-1) Short Interspersed Nucleotide Element (SINE) sequence. Length of homology ranged from 76 to 171 bases with identities to the ERE-1 consensus sequence ranging from 71% to 83%. The second family referred to as Equine Repetitive Element-2 (ERE-2) has a consensus sequence that showed homology to ERE-1 over approximately 60 bases. These 60 bases comprised subunit I. Sequence com...
Eight new equine dinucleotide repeat microsatellites at the NVHEQ26, NVHEQ29, NVHEQ31, NVHEQ40, NVHEQ43, NVHEQ90, NVHEQ98 and NVHEQ100 loci.
Animal genetics    January 12, 1999   Volume 29, Issue 6 470 
Røed KH, Midthjell L, Bjørnstad G.No abstract available
Fourteen new polymorphic equine microsatellites.
Animal genetics    January 12, 1999   Volume 29, Issue 6 469-470 
George LA, Miller LM, Valberg SJ, Mickelson JR.No abstract available
Mitochondrial control region and 12S rRNA variation in Przewalski’s horse (Equus przewalskii).
Animal genetics    January 12, 1999   Volume 29, Issue 6 456-459 doi: 10.1046/j.1365-2052.1998.296380.x
Oakenfull EA, Ryder OA.Variation in the control region and the 12S rRNA gene of all surviving mitochondrial lineages of Przewalski's horse was investigated. Variation is low despite the present day population being descended from 13 individuals probably representing animals from three different regions of its range. Phylogenetic comparison of these sequences, with sequences for the domestic horse, does not resolve the ancestral status of either horse.
Organisation of the equine immunoglobulin constant heavy chain genes. II. Equine cgamma genes.
Veterinary immunology and immunopathology    January 8, 1999   Volume 66, Issue 3-4 273-287 doi: 10.1016/s0165-2427(98)00182-2
Overesch G, Wagner B, Radbruch A, Leibold W.The number of immunoglobulin G constant heavy chain genes (cgamma genes) varies broadly among mammalian species, reflecting structural and functional differences between expressed immunoglobulin G (IgG) isotypes and allotypes. Up to now equine IgG isotypes have been defined only at the biochemical and serological level. It is still not clear how many IgG isotypes exist in horses and whether there are any allotypes. Here, we describe the isolation and characterisation of equine cgamma genes. An equine genomic lambda phage library was screened with a human cgamma4 probe. Cross-hybridising equine...
Molecular characteristics of equine stromelysin and the tissue inhibitor of metalloproteinase 1.
American journal of veterinary research    December 19, 1998   Volume 59, Issue 12 1557-1562 
Richardson DW, Dodge GR.To clone the entire coding sequence of equine matrix metalloproteinase-3 (MMP-3, stromelysin) and tissue inhibitor of metalloproteinase-1 (TIMP-1) and compare their nucleotide and amino acid sequences with those of MMP-3 and TIMP-1 from other species. Methods: Articular cartilage harvested from the joints of 4 foals, 2 yearlings, and 3 adult horses. Methods: A cDNA library was constructed from mRNA extracted from equine chondrocytes. The library was screened and clones selected that contained the cDNA for MMP-3 and TIMP-1. The cDNA was sequenced and the nucleotide and deduced amino acid sequen...
Phylogenetic relationships within the genus Equus and the evolution of alpha and theta globin genes.
Journal of molecular evolution    December 16, 1998   Volume 47, Issue 6 772-783 doi: 10.1007/pl00006436
Oakenfull EA, Clegg JB.Sequences of the alpha1, alpha2 and theta globin genes from six equid species have been determined to investigate relationships within the genus Equus. Analyses using standard phylogenetic methods, or an approach designed to account for the effects of gene conversion between the alpha genes, gave broadly similar results and show that the horses diverged from the zebra/ass ancestor approximately 2.4 million years ago and that the zebra and ass species arose in a rapid radiation approximately 0.9 million years ago. These results from the alpha genes are corroborated by theta gene data and are in...
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