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Immunodeficiency reviews.

Discontinued
Periodical
Allergy and Immunolog
Immunologic Deficiency Syndromes
Publisher:
Harwood Academic,. Chur : Harwood
Frequency: Four no. a year
Country: Switzerland
Language: English
Start Year:1988 - 1992
Identifiers
ISSN:0893-5300 (Print)
0893-5300 (Linking)
NLM ID:9001383
(DNLM):SR0063021(s)
(OCoLC):15559491
Coden:IMMREH
Classification:W1 IM484I
MHC haplotype diversity in Persian Arabian horses determined using polymorphic microsatellites.
Immunogenetics    November 23, 2017   Volume 70, Issue 5 305-315 doi: 10.1007/s00251-017-1039-x
Sadeghi R, Moradi-Shahrbabak M, Miraei Ashtiani SR, Miller DC, Antczak DF.Previous research on the equine major histocompatibility complex (MHC) demonstrated strong correlations between haplotypes defined by polymorphic intra-MHC microsatellites and haplotypes defined using classical serology. Here, we estimated MHC diversity in a sample of 124 Arabian horses from an endangered strain native to Iran (Persian Asil Arabians), using a validated 10-marker microsatellite panel. In a group of 66 horses related as parent-offspring pairs or half-sibling groups, we defined 51 MHC haplotypes, 49 of which were new. In 47 of the remaining 58 unrelated horses, we could assign on...
Peptide-binding motifs of two common equine class I MHC molecules in Thoroughbred horses.
Immunogenetics    March 18, 2017   Volume 69, Issue 5 351-358 doi: 10.1007/s00251-017-0978-6
Bergmann T, Lindvall M, Moore E, Moore E, Sidney J, Miller D, Tallmadge RL, Myers PT, Malaker SA, Shabanowitz J, Osterrieder N, Peters B, Hunt DF....Quantitative peptide-binding motifs of MHC class I alleles provide a valuable tool to efficiently identify putative T cell epitopes. Detailed information on equine MHC class I alleles is still very limited, and to date, only a single equine MHC class I allele, Eqca-1*00101 (ELA-A3 haplotype), has been characterized. The present study extends the number of characterized ELA class I specificities in two additional haplotypes found commonly in the Thoroughbred breed. Accordingly, we here report quantitative binding motifs for the ELA-A2 allele Eqca-16*00101 and the ELA-A9 allele Eqca-1*00201. Uti...
Polymorphism at expressed DQ and DR loci in five common equine MHC haplotypes.
Immunogenetics    November 26, 2016   Volume 69, Issue 3 145-156 doi: 10.1007/s00251-016-0964-4
Miller D, Tallmadge RL, Binns M, Zhu B, Mohamoud YA, Ahmed A, Brooks SA, Antczak DF.The polymorphism of major histocompatibility complex (MHC) class II DQ and DR genes in five common equine leukocyte antigen (ELA) haplotypes was determined through sequencing of mRNA transcripts isolated from lymphocytes of eight ELA homozygous horses. Ten expressed MHC class II genes were detected in horses of the ELA-A3 haplotype carried by the donor horses of the equine bacterial artificial chromosome (BAC) library and the reference genome sequence: four DR genes and six DQ genes. The other four ELA haplotypes contained at least eight expressed polymorphic MHC class II loci. Next generation...
Positive selection in the SLC11A1 gene in the family Equidae.
Immunogenetics    February 4, 2016   Volume 68, Issue 5 353-364 doi: 10.1007/s00251-016-0905-2
Bayerova Z, Janova E, Matiasovic J, Orlando L, Horin P.Immunity-related genes are a suitable model for studying effects of selection at the genomic level. Some of them are highly conserved due to functional constraints and purifying selection, while others are variable and change quickly to cope with the variation of pathogens. The SLC11A1 gene encodes a transporter protein mediating antimicrobial activity of macrophages. Little is known about the patterns of selection shaping this gene during evolution. Although it is a typical evolutionarily conserved gene, functionally important polymorphisms associated with various diseases were identified in ...
The common equine class I molecule Eqca-1*00101 (ELA-A3.1) is characterized by narrow peptide binding and T cell epitope repertoires.
Immunogenetics    September 23, 2015   Volume 67, Issue 11-12 675-689 doi: 10.1007/s00251-015-0872-z
Bergmann T, Moore C, Sidney J, Miller D, Tallmadge R, Harman RM, Oseroff C, Wriston A, Shabanowitz J, Hunt DF, Osterrieder N, Peters B, Antczak DF....Here we describe a detailed quantitative peptide-binding motif for the common equine leukocyte antigen (ELA) class I allele Eqca-1*00101, present in roughly 25 % of Thoroughbred horses. We determined a preliminary binding motif by sequencing endogenously bound ligands. Subsequently, a positional scanning combinatorial library (PSCL) was used to further characterize binding specificity and derive a quantitative motif involving aspartic acid in position 2 and hydrophobic residues at the C-terminus. Using this motif, we selected and tested 9- and 10-mer peptides derived from the equine herpesvir...
Hematopoiesis in the equine fetal liver suggests immune preparedness.
Immunogenetics    September 2, 2014   Volume 66, Issue 11 635-649 doi: 10.1007/s00251-014-0799-9
Battista JM, Tallmadge RL, Stokol T, Felippe MJ.We investigated how the equine fetus prepares its pre-immune humoral repertoire for an imminent exposure to pathogens in the neonatal period, particularly how the primary hematopoietic organs are equipped to support B cell hematopoiesis and immunoglobulin (Ig) diversity. We demonstrated that the liver and the bone marrow at approximately 100 days of gestation (DG) are active sites of hematopoiesis based on the expression of signature messenger RNA (mRNA) (c-KIT, CD34, IL7R, CXCL12, IRF8, PU.1, PAX5, NOTCH1, GATA1, CEBPA) and protein markers (CD34, CD19, IgM, CD3, CD4, CD5, CD8, CD11b, CD172A)...
The equine CD1 gene family is the largest and most diverse yet identified.
Immunogenetics    November 7, 2013   Volume 66, Issue 1 33-42 doi: 10.1007/s00251-013-0741-6
Dossa RG, Alperin DC, Hines MT, Hines SA.The CD1 family is a group of non-polymorphic MHC class I-like molecules that present lipid-based antigens to T cells. Previous work in our laboratory demonstrated that cytotoxic T lymphocytes from immune adult horses recognize lipids from the cell wall of an important equine pathogen, Rhodococcus equi. These findings suggest an important role for the equine CD1 antigen presentation system in protective immune responses to microbial pathogens in the horse. In this study, we characterized and mapped the equine CD1 gene cluster. The equine genome was found to contain 13 complete CD1 genes; seven ...
The same ELA class II risk factors confer equine insect bite hypersensitivity in two distinct populations.
Immunogenetics    September 23, 2011   Volume 64, Issue 3 201-208 doi: 10.1007/s00251-011-0573-1
Andersson LS, Swinburne JE, Meadows JR, Broström H, Eriksson S, Fikse WF, Frey R, Sundquist M, Tseng CT, Mikko S, Lindgren G.Insect bite hypersensitivity (IBH) is a chronic allergic dermatitis common in horses. Affected horses mainly react against antigens present in the saliva from the biting midges, Culicoides ssp, and occasionally black flies, Simulium ssp. Because of this insect dependency, the disease is clearly seasonal and prevalence varies between geographical locations. For two distinct horse breeds, we genotyped four microsatellite markers positioned within the MHC class II region and sequenced the highly polymorphic exons two from DRA and DRB3, respectively. Initially, 94 IBH-affected and 93 unaffected Sw...
Development of a DNA microarray for detection of expressed equine classical MHC class I sequences in a defined population.
Immunogenetics    August 4, 2010   Volume 62, Issue 9 633-639 doi: 10.1007/s00251-010-0463-y
Ramsay JD, Leib SR, Orfe L, Call DR, Tallmadge RL, Fraser DG, Mealey RH.Development of an accurate and efficient molecular-based equine MHC class I typing method would facilitate the study of T lymphocyte immune responses in horses. Here, a DNA microarray was designed to detect expressed classical MHC class I genes comprising serologically defined equine leukocyte antigen (ELA)-A haplotypes represented in a closed Arabian horse breeding herd. Initially, cloning and sequencing of RT-PCR products were used to identify sequences associated with the ELA-A1, A4, and W11 haplotypes, and one undefined haplotype, in six horses. Subsequently, sequence-specific, conserved (...
Analysis of MHC class I genes across horse MHC haplotypes.
Immunogenetics    January 23, 2010   Volume 62, Issue 3 159-172 doi: 10.1007/s00251-009-0420-9
Tallmadge RL, Campbell JA, Miller DC, Antczak DF.The genomic sequences of 15 horse major histocompatibility complex (MHC) class I genes and a collection of MHC class I homozygous horses of five different haplotypes were used to investigate the genomic structure and polymorphism of the equine MHC. A combination of conserved and locus-specific primers was used to amplify horse MHC class I genes with classical and nonclassical characteristics. Multiple clones from each haplotype identified three to five classical sequences per homozygous animal and two to three nonclassical sequences. Phylogenetic analysis was applied to these sequences, and gr...
Characterization of equine and other vertebrate TLR3, TLR7, and TLR8 genes.
Immunogenetics    July 1, 2009   Volume 61, Issue 7 529-539 doi: 10.1007/s00251-009-0381-z
Astakhova NM, Perelygin AA, Zharkikh AA, Lear TL, Coleman SJ, MacLeod JN, Brinton MA.Toll-like receptors 3, 7, and 8 (TLR3, TLR7, and TLR8) were studied in the genomes of the domestic horse and several other mammals. The messenger RNA sequences and exon/intron structures of these TLR genes were determined. An equine bacterial artificial chromosome clone containing the TLR3 gene was assigned by fluorescent in situ hybridization to the horse chromosomal location ECA27q16-q17 and this map location was confirmed using an equine radiation hybrid panel. Direct sequencing revealed 13 single-nucleotide polymorphisms in the coding regions of the equine TLR 3, 7, and 8 genes. Of these p...
Polymorphism and selection in the major histocompatibility complex DRA and DQA genes in the family Equidae.
Immunogenetics    June 26, 2009   Volume 61, Issue 7 513-527 doi: 10.1007/s00251-009-0380-0
Janova E, Matiasovic J, Vahala J, Vodicka R, Van Dyk E, Horin P.The major histocompatibility complex genes coding for antigen binding and presenting molecules are the most polymorphic genes in the vertebrate genome. We studied the DRA and DQA gene polymorphism of the family Equidae. In addition to 11 previously reported DRA and 24 DQA alleles, six new DRA sequences and 13 new DQA alleles were identified in the genus Equus. Phylogenetic analysis of both DRA and DQA sequences provided evidence for trans-species polymorphism in the family Equidae. The phylogenetic trees differed from species relationships defined by standard taxonomy of Equidae and from trees...
Genomic characterization of MHC class I genes of the horse.
Immunogenetics    November 8, 2005   Volume 57, Issue 10 763-774 doi: 10.1007/s00251-005-0034-9
Tallmadge RL, Lear TL, Antczak DF.The availability of a contig of bacterial artificial chromosome (BAC) clones spanning the equine major histocompatibility complex (MHC) made possible a detailed analysis of horse MHC class I genes. Prior to this study, only a single horse MHC class I gene had been sequenced at the genomic level. Although many ( approximately 60) MHC class I cDNA sequences had been determined and published, from this information, it was not possible to determine how many class I loci are expressed in horses or to assign individual sequences to allelic series. In this study, 15 MHC class I genes were identified ...
Characterization of the horse (Equus caballus) IGHA gene.
Immunogenetics    October 15, 2003   Volume 55, Issue 8 552-560 doi: 10.1007/s00251-003-0617-2
Wagner B, Greiser-Wilke I, Antczak DF.Nucleotide sequences of the immunoglobulin constant heavy chain genes of the horse have been described for IGHM, IGHG and IGHE genes, but not for IGHA. Here, we provide the nucleotide sequence of the genomic IGHA gene of the horse ( Equus caballus), including its secretion region and the transmembrane exon. The equine IGHA gene shows the typical structure of a mammalian IGHA gene, with only three exons, separated by two introns of similar size. The hinge exon is located at the 5' end of the CH2 exon and encodes a hinge region of 11 amino acids, which contains five proline residues. The coding ...
Cloning and sequencing of the equine and ovine high-affinity IgE receptor beta-and gamma-chain cDNA.
Immunogenetics    April 23, 2003   Volume 55, Issue 2 122-125 doi: 10.1007/s00251-003-0564-y
McAleese SM, Miller HR.The high-affinity receptor for IgE is expressed on the surface of mast cells and basophils. It is a transmembrane protein with one alpha, one beta and two gamma subunits. The cDNA sequences for the alpha subunit have already been determined. We report here the cDNA sequences for the beta and gamma subunits. The cytoplasmic domains of these subunits are important for intracellular signalling and the deduced amino acid sequences show the expected immunoreceptor tyrosine-based activation motifs. The gamma subunit is highly conserved between species but more variation is seen with the beta subunit...
Characterization of the beta2-microglobulin gene of the horse.
Immunogenetics    December 5, 2002   Volume 54, Issue 10 725-733 doi: 10.1007/s00251-002-0514-0
Tallmadge RL, Lear TL, Johnson AK, Guérin G, Millon LV, Carpenter SL, Antczak DF.A clone containing beta(2)-microglobulin (beta(2)-m), the light chain of the major histocompatibility complex class I cell surface molecule, was isolated from an equine bacterial artificial chromosome library. This clone was used as a template for polymerase chain reaction (PCR) and unidirectional sequencing to elucidate the genomic sequence and intron/exon boundaries. We obtained 7,000 bases of sequence, extending from 1,100 nucleotides (nt) upstream of the coding region start through 1,698 nt downstream of the stop codon. The sequence contained regulatory elements in the region upstream of t...
Evolution of the six horse IGHG genes and corresponding immunoglobulin gamma heavy chains.
Immunogenetics    July 4, 2002   Volume 54, Issue 5 353-364 doi: 10.1007/s00251-002-0458-4
Wagner B, Greiser-Wilke I, Wege AK, Radbruch A, Leibold W.It is generally assumed that the different mammalian IgG isotypes have developed during evolution by duplications of a common ancestor gamma heavy chain constant region gene (IGHG). In contrast to other species studied so far, which express between one and four IGHG genes, the horse (Equus caballus) genome contains six IGHG genes, and it has been postulated that they all can be expressed. For determination of the evolutionary history of the six horse IGHG genes, genomic DNA and cDNA of the IGHG genes were sequenced. The structure of these genes with reference to exons and introns was determine...
Molecular and functional characterization of genes encoding horse MHC class I antigens.
Immunogenetics    November 17, 2001   Volume 53, Issue 9 802-809 doi: 10.1007/s00251-001-0384-x
Carpenter S, Baker JM, Bacon SJ, Hopman T, Maher J, Ellis SA, Antczak DF.Sequence and functional analyses were undertaken on two cDNAs and a genomic clone encoding horse major histocompatibility complex (MHC) class I molecules. All of the clones were isolated from a single horse that is homozygous for all known horse MHC class I and class II antigens. The two cDNAs (clones 8-9 and 1-29) were isolated from a lymphocyte library and encode polymorphic MHC antigens from two loci. The genomic cosmid clone, isolated from a sperm library, contains the 8-9 gene. All three genes were expressed in mouse L-cells and were recognized by alloantisera and, for the cDNAs, by allor...
Cloning and sequencing of the horse and sheep high-affinity IgE receptor alpha chain cDNA.
Immunogenetics    September 2, 2000   Volume 51, Issue 10 878-881 doi: 10.1007/s002510000200
McAleese SM, Halliwell RE, Miller HR.No abstract available
Cloning and sequencing of horse interleukin-12 and interleukin-18 cDNAs.
Immunogenetics    October 29, 1999   Volume 50, Issue 1-2 94-97 doi: 10.1007/s002510050693
Nicolson L, Penha-Goncalves MN, Keanie JL, Logan NA, Argyle DJ, Onions DE.No abstract available
Polymorphism and multiple loci for the horse DQA gene.
Immunogenetics    June 20, 1998   Volume 47, Issue 6 487-490 doi: 10.1007/s002510050387
Fraser DG, Bailey E.No abstract available
Characterization of horse (Equus caballus) immunoglobulin mu chain-encoding genes.
Immunogenetics    January 1, 1997   Volume 45, Issue 6 386-393 doi: 10.1007/s002510050220
Schrenzel MD, King DP, McKnight ML, Ferrick DA.Horse (Equus caballus) immunoglobulin mu chain-encoding (IgM) variable, joining, and constant gene segments were cloned and characterized. Nucleotide sequence analyses of 15 cDNA clones from a mesenteric lymph node library identified 7 unique variable gene segments, 5 separate joining segments, and a single constant region. Based on comparison with human sequences, horse variable segments could be grouped into either family 1 of immunoglobulin (Ig) clan I or family 4 of Ig clan II subclan IV. All horse sequences had a relatively conserved 16 base pair (bp) segment in framework 3 which was reco...
Polymorphism of DRA among equids.
Immunogenetics    January 1, 1996   Volume 43, Issue 5 315-317 
Albright-Fraser DG, Reid R, Gerber V, Bailey E.No abstract available
Demonstration of three DRB loci in a domestic horse family.
Immunogenetics    January 1, 1996   Volume 44, Issue 6 441-445 doi: 10.1007/BF02602805
Fraser DG, Bailey E.Single-strand conformational polymorphism (SSCP) gel electrophoresis and DNA sequencing were used to characterize the second exon of the horse DRB homologue as well as to identify eight new DRB alleles. The SSCP gels presented a complex pattern, with phenotypes exhibiting between 4 and 13 bands. The DRB SSCP patterns were studied for two families (6 to 13 bands per pattern). For both families, the patterns showed simple Mendelian inheritance. The polymerase chain reaction products from two individuals possessing homozygous major histocompatibility complex (MHC) alleles by descent were cloned a...
Horse (Equus caballus) T-cell receptor alpha, gamma, and delta chain genes: nucleotide sequences and tissue-specific gene expression.
Immunogenetics    January 1, 1995   Volume 42, Issue 2 112-122 doi: 10.1007/BF00178585
Schrenzel MD, Ferrick DA.Horse (Equus caballus) T-cell receptor alpha (TCRA), gamma (TCRG), and delta (TCRD) chain genes were isolated from a cDNA library and characterized. Five unique TCRAV families, including four full-length sequences, five distinct TCRAJ genes, and a single TCRAC gene were identified. TCRAV genes had closest homology with human sequences and least similarity to rat genes. Among eight horse TCRG genes, two distinct constant region genes with considerable variation in the connecting region were identified, but no variable or joining genes were present. Southern blot hybridization confirmed the pres...
Molecular cloning and characterization of horse DQA cDNA.
Immunogenetics    January 1, 1994   Volume 40, Issue 6 457 doi: 10.1007/BF00177830
Szalai G, Antczak DF, Gerber H, Lazary S.No abstract available
Molecular cloning and characterization of horse DQB cDNA.
Immunogenetics    January 1, 1994   Volume 40, Issue 6 458 doi: 10.1007/BF00177831
Szalai G, Antczak DF, Gerber H, Lazary S.No abstract available
Horse cDNA clones encoding two MHC class I genes.
Immunogenetics    January 1, 1994   Volume 40, Issue 2 163 doi: 10.1007/BF00188182
Barbis DP, Maher JK, Stanek J, Klaunberg BA, Antczak DF.No abstract available
Cloning and sequencing of horse interferon-gamma cDNA.
Immunogenetics    January 1, 1994   Volume 39, Issue 6 448-449 doi: 10.1007/BF00176167
Grünig G, Himmler A, Antczak DF.No abstract available
Characterization of horse (Equus caballus) T-cell receptor beta chain genes.
Immunogenetics    January 1, 1994   Volume 40, Issue 2 135-144 doi: 10.1007/BF00188177
Schrenzel MD, Watson JL, Ferrick DA.Genes encoding the horse (Equus caballus) T-cell receptor beta chain (TCRB) were cloned and characterized. Of 33 cDNA clones isolated from the mesenteric lymph node, 30 had functionally rearranged gene segments, and three contained germline sequences. Sixteen unique variable segments (TCRBV), 14 joining genes (TCRBJ), and two constant region genes (TCRBC) were identified. Horse TCRBV were grouped into nine families based on similarity to human sequences. TCRBV2 and TCRBV12 were the most commonly represented horse families. Analysis of predicted protein structure revealed the presence of conser...