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Topic:Immunity

The equine immune system is a complex network of cells, tissues, and molecules that work together to protect horses from pathogens and maintain homeostasis. It consists of innate and adaptive components, each contributing to the identification and elimination of foreign invaders. Innate immunity provides a rapid, non-specific response through barriers like skin and mucous membranes, as well as cells such as macrophages and neutrophils. Adaptive immunity involves a slower, specific response mediated by lymphocytes, including B cells and T cells, which generate immunological memory. This page compiles peer-reviewed research studies and scholarly articles that explore the mechanisms, function, and clinical implications of the immune system in equine health.
Evaluation of immune responses in horses immunized using a killed Sarcocystis neurona vaccine.
Veterinary therapeutics : research in applied veterinary medicine    May 20, 2004   Volume 5, Issue 1 34-42 
Marsh AE, Lakritz J, Johnson PJ, Miller MA, Chiang YW, Chu HJ.Clinically normal horses developed cellular immunity to Sarcocystis neurona following IM vaccination with a commercial killed S. neurona vaccine, as indicated by the development of measurable anti-S. neurona IgG antibodies and additional intradermal skin testing. Large-scale independent assessments of the vaccine's performance and safety are in progress under field conditions. The next step in the evaluation of this vaccine would be to attempt experimental challenge after a reproducible reliable equine model of S. neurona encephalitis has been established that allows for reisolation of the pat...
Equine herpesvirus 1 and 4 infections: an update.
The veterinary quarterly    July 4, 2002   Volume 24, Issue 2 58-78 
van Maanen C.Equine herpesvirus 1 (EHV1) and equine herpesvirus 4 (EHV4) are important ubiquitous equine viral pathogens, causing much damage to the horse industry. EHV1 strains are associated with respiratory disease, abortion, and paresis/paralysis, whereas EHV4 strains are predominantly associated with respiratory disease. In the past decades much research effort has been put into improving knowledge about these viruses. In this paper the current state of knowledge of these viruses and the most important aspects of these virus infections, e.g. epidemiology, clinical aspects, pathogenesis and pathology, ...
Intranasal immunogenicity of a Delta cya Delta crp-pabA mutant of Salmonella enterica serotype Typhimurium for the horse.
Vaccine    June 8, 2001   Volume 19, Issue 27 3787-3795 doi: 10.1016/s0264-410x(01)00091-3
Sheoran AS, Timoney JF, Tinge SA, Sundaram P, Curtiss R.The aim of this study was to investigate the intranasal immunogenicity for the horse of a Deltacya Deltacrp-pabA mutant (MGN-707) of Salmonella enterica serotype Typhimurium (S. typhimurium). MGN-707 caused no sign of disease, was not detected in feces and a single administration induced strong Salmonella-specific serum and nasal mucosal antibody responses. All ponies had made strong salmonella specific serum IgGa, IgGb, IgA and IgM antibody responses by day 25 after the first immunization. IgM responses to salmonella lipopolysaccharide (LPS) were short lived whereas salmonella specific serum ...
Intranasal immunogenicity of a Deltacya Deltacrp-pabA mutant of Salmonella enterica serotype Typhimurium for the horse.
Vaccine    May 12, 2001   Volume 19, Issue 25-26 3591-3599 doi: 10.1016/s0264-410x(01)00072-x
Sheoran AS, Timoney JF, Tinge SA, Sundaram P, Curtiss R.The aim of this study was to investigate the intranasal immunogenicity for the horse of a Deltacya Deltacrp-pabA mutant (MGN-707) of Salmonella enterica serotype Typhimurium (S. typhimurium). MGN-707 caused no sign of disease, was not detected in feces and a single administration induced strong Salmonella-specific serum and nasal mucosal antibody responses. All ponies had made strong salmonella specific serum IgGa, IgGb, IgA and IgM antibody responses by day 25 after the first immunization. IgM responses to salmonella lipopolysaccharide (LPS) were short lived whereas salmonella specific serum ...
Equine viral arteritis.
Veterinary pathology    July 15, 2000   Volume 37, Issue 4 287-296 doi: 10.1354/vp.37-4-287
Del Piero F.Equine viral arteritis (EVA) can cause prominent economic losses for the equine industry. The purpose of this review is to provide the pathologist some familiarity with the clinical history, lesions, pathogenesis, and diagnosis of EVA. EVA is caused by an arterivirus (equine arteritis virus, EAV), and the vascular system is the principal but not unique viral target. EVA has variable presentations, including interstitial pneumonia, panvasculitis with edema, thrombosis and hemorrhage, lymphoid necrosis, renal tubular necrosis, abortion, and inflammation of male accessory genital glands. EAV anti...
Immunomodulation in horses.
The Veterinary clinics of North America. Equine practice    April 7, 2000   Volume 16, Issue 1 183-viii doi: 10.1016/s0749-0739(17)30126-8
Rush BR, Flaminio MJ.Nonspecific immunomodulators are substances that induce non-antigen-specific enhancement of the body's native or acquired defense mechanisms. Immunomodulant preparations are most often used for treatment of chronic, viral, or bacterial infection with evidence of secondary immunosuppression. The proposed mechanism of action of these products is macrophage activation and subsequent release of cytokines that enhance humoral and cell-mediated immunity. In equine medicine, nonspecific immunostimulant products are used for prevention and treatment of infectious respiratory disease and treatment of s...
Equine autoimmunity.
The Veterinary clinics of North America. Equine practice    April 7, 2000   Volume 16, Issue 1 153-164 doi: 10.1016/s0749-0739(17)30124-4
McClure JJ.Although relatively little is known about autoimmunity and autoimmune mechanisms specifically in horses, the similarities between clinical syndromes with identifiable effector mechanisms in horses and other species suggest that comparable mechanisms may be applicable. Our understanding of equine autoimmunity undoubtedly will benefit from the extensive study of autoimmunity in other species.
Equine immunity to viruses.
The Veterinary clinics of North America. Equine practice    April 7, 2000   Volume 16, Issue 1 49-68 
Slater J, Hannant D.The identification of some of the adaptive immune responses to infection with equine viruses has been the first step toward rational immunoprophylactic design. Sufficient knowledge of infection-induced immunity and informed estimates of the requirements for long-term immunity for EIV have now been obtained. Thus, the future for inactivated EIV vaccines is promising now that new adjuvants have been applied to induce cellular immunity and safe methods have been designed to stimulate virus-neutralizing (VN) antibody at mucosal surfaces. Adenoviruses induce circulating VN antibody, the presence of...
Possible role of autoimmunity to spermatozoa in idiopathic infertility of stallions.
Journal of reproduction and fertility. Supplement    January 1, 2000   Issue 56 23-30 
Kenney RM, Cummings MR, Teuscher C, Love CC.Testicular degeneration is a major cause of subfertility in stallions, although an aetiological diagnosis cannot be made in most cases. In the present study, autoimmune testicular degeneration was induced and evaluated in stallions by immunizing stallions with their own spermatozoa mixed with an adjuvant. The factors evaluated included changes in semen quality and testicular histology. A large decrease in sperm number and quality was observed in response to sperm autoantigens. An ELISA test specific for antisperm antibodies was developed which enabled antibody titres in serum, seminal plasma a...
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...
Modulation of allospecific CTL responses during pregnancy in equids: an immunological barrier to interspecies matings?
Journal of immunology (Baltimore, Md. : 1950)    April 14, 1999   Volume 162, Issue 8 4496-4501 
Baker JM, Bamford AI, Antczak DF.Maternal immune recognition of the developing conceptus in equine pregnancy is characterized by the strongest and most consistent alloantibody response described in any species, a response directed almost exclusively against paternal MHC class I Ags. This work investigated the cellular immune response to paternal MHC Ags in pregnant and nonpregnant horses and donkeys, and in horses carrying interspecies hybrid mule conceptuses. We observed profound decreases in classical, MHC-restricted, CTL activity to allogeneic paternal cells in peripheral blood lymphocytes from both horse mares and donkey ...
Evidence that surface proteins Sn14 and Sn16 of Sarcocystis neurona merozoites are involved in infection and immunity.
Infection and immunity    May 9, 1998   Volume 66, Issue 5 1834-1838 doi: 10.1128/IAI.66.5.1834-1838.1998
Liang FT, Granstrom DE, Zhao XM, Timoney JF.Sarcocystis neurona is the etiologic agent of equine protozoal myeloencephalitis (EPM). Based on an analysis of 25,000 equine serum and cerebrospinal fluid (CSF) samples, including samples from horses with neurologic signs typical of EPM or with histologically or parasitologically confirmed EPM, four major immunoblot band patterns have been identified. Twenty-three serum and CSF samples representing each of the four immunoblot patterns were selected from 220 samples from horses with neurologic signs resembling EPM and examined for inhibitory effects on the infectivity of S. neurona by an in vi...
Serum and mucosal antibody isotype responses to M-like protein (SeM) of Streptococcus equi in convalescent and vaccinated horses.
Veterinary immunology and immunopathology    February 27, 1998   Volume 59, Issue 3-4 239-251 doi: 10.1016/s0165-2427(97)00074-3
Sheoran AS, Sponseller BT, Holmes MA, Timoney JF.Equine strangles, caused by the clonal pathogen Streptococcus equi, is a source of serious economic loss despite the widespread use of commercial vaccines. The anti-phagocytic 58 kDa M-like protein (SeM) is an important protective antigen. The objective of this study was to define differences, if any, between SeM-specific convalescent serum and mucosal IgA and IgG subisotypes and those induced by vaccination with commercial strangles vaccine. SeM-specific opsonophagocytic IgGb was the predominant serum antibody in horses intramuscularly vaccinated or recently recovered from infection. Infectio...
Immunity to Rhodococcus equi.
Veterinary microbiology    June 16, 1997   Volume 56, Issue 3-4 177-185 doi: 10.1016/s0378-1135(97)00086-2
Hines SA, Kanaly ST, Byrne BA, Palmer GH.Rhodococcal pneumonia is an important, life threatening disease of foals and immunosuppressed humans. Increased knowledge of the mechanisms of protective immunity are required in order to develop an effective immunoprophylaxis strategy for horses and immunotherapeutic regiments for people. Both humoral and cellular components of the immune system may be involved in immune clearance of R. equi. The susceptibility of foals less than 4-6 months of age is postulated to reflect waning maternal antibody, and passive transfer of hyperimmune plasma can provide protection on endemic farms. However, eff...
Rhodococcal pneumonia: humoral versus cell-mediated immunity.
Equine veterinary journal    September 1, 1996   Volume 28, Issue 5 339-340 doi: 10.1111/j.2042-3306.1996.tb03101.x
Hines SA, Hietala SK.No abstract available
[Jenner’s cowpox vaccine in light of current vaccinology].
Verhandelingen - Koninklijke Academie voor Geneeskunde van Belgie    January 1, 1996   Volume 58, Issue 5 479-538 
Huygelen C.Two hundred years ago Edward Jenner inoculated James Phipps with vaccinia and 181 years later smallpox had disappeared from the surface of the earth as a result of generalized vaccination. Compared to the requirements of modern vaccinology, the procedures used by Jenner and his successors, were extremely primitive because of an almost total lack of knowledge in the field of microbiology and immunology. The active principle of smallpox vaccine is vaccinia virus, which in many respects, differs from that of natural cowpox; the term "cowpox" has been used for more than a century and a half to des...
Distribution of equid herpesvirus-1 (EHV-1) in respiratory tract associated lymphoid tissue: implications for cellular immunity.
Equine veterinary journal    November 1, 1994   Volume 26, Issue 6 470-473 doi: 10.1111/j.2042-3306.1994.tb04052.x
Kydd JH, Smith KC, Hannant D, Livesay GJ, Mumford JA.Twelve adult ponies and 2 conventional foals were exposed intranasally to EHV-1, strain Ab4 (TCID50 10(-6.6) and samples of respiratory tract associated lymphoid tissues were recovered between 12 h and 13 days after infection. Infectious virus was detected in tissue homogenates using susceptible cell monolayers and expression of viral antigens was monitored using indirect immunoperoxidase histochemistry on paraffin sections. The results showed both infectious EHV-1 and viral antigens in respiratory tract associated lymph nodes 12 h after exposure. Infected leucocytes were identified morphologi...
Strangles.
The Veterinary clinics of North America. Equine practice    August 1, 1993   Volume 9, Issue 2 365-374 doi: 10.1016/s0749-0739(17)30403-0
Timoney JF.The etiology, epizootiology, pathogenesis, and clinical presentation of strangles are described. Streptococcus equi, the causative organism, is highly host-adapted to Equidae and shows no antigenic variation. Protective immunity apparently is mediated by a combination of serum opsonic and nasopharyngeal mucosal humoral responses. Vaccines based on M protein or inactivated bacterial suspensions may reduce the clinical attack rate by 50%, a level of protection much lower than that produced during recovery from strangles.
Effects of exercise stress on various immune functions in horses.
American journal of veterinary research    August 1, 1992   Volume 53, Issue 8 1414-1417 
Wong CW, Smith SE, Thong YH, Opdebeeck JP, Thornton JR.Chemotactic locomotion and luminol-dependent chemiluminescence of neutrophils, mitogen-induced lymphocyte blastogenesis, serum cortisol concentration, immunoglobulin quantification, and leukocyte counts were determined to evaluate the effect of a single strenuous exercise in horses. Increased serum cortisol concentration (P less than 0.01) and an increased neutrophil-to-lymphocyte ratio (P less than 0.05) indicated that horses had been stressed. The chemotactic index and peak chemiluminescence production decreased significantly (P less than 0.05 and P less than 0.01, respectively) 1 day after ...
Failure of passive transfer of colostral immunity in the foal: incidence, and the effect of stud management and plasma transfusions.
The Veterinary record    May 4, 1991   Volume 128, Issue 18 416-419 doi: 10.1136/vr.128.18.416
Stoneham SJ, Digby NJ, Ricketts SW.The importance of colostrum for the passive transfer of maternal immunity to foals is well recognised. This survey reports the incidence of the failure of passive transfer of colostral immunity in thoroughbred foals in the United Kingdom during 1988 to 1990, and the effect of plasma transfusions on IgG levels in a group of them. The incidence of disease in these foals first month of life is also recorded.
Origin of the hemagglutinin on A/Equine/Johannesburg/86 (H3N8): the first known equine influenza outbreak in South Africa.
Archives of virology    January 1, 1989   Volume 106, Issue 1-2 159-164 doi: 10.1007/BF01311048
Kawaoka Y, Webster RG.A severe influenza outbreak occurred in horses in South Africa in 1986. The causative agent was identified as an influenza virus [A/Equine/Johannesburg/86 (H3N8)]. Antigenic analyses of the hemagglutinin (HA) with ferret antisera and monoclonal antibodies showed that the Eq/Johannesburg/86 virus is similar to recent equine H3 viruses. The nucleotide sequence analysis on the HA genes of Eq/Johannesburg/86 and other equine H3 influenza viruses, together with the epidemiological data, clearly demonstrated that the Eq/Johannesburg/86 virus was derived from a virus that had been circulating in hors...
Respiratory tract immune response to microbial pathogens.
Journal of the American Veterinary Medical Association    November 15, 1982   Volume 181, Issue 10 1074-1079 
Wilkie BN.Effective resistance to respiratory tract infection depends principally on specific immunity on mucosal surfaces of the upper or lower respiratory tract. Respiratory tract immune response comprises antibody and cell-mediated systems and may be induced most readily by surface presentation of replicating agents but can result from parenteral or local presentation of highly immunogenic antigens. Upper and lower respiratory tract systems differ in immunologic competence, with the lungs having a greater inventory of protective mechanisms than the trachea or nose. Several effective vaccines have bee...
Equine immunology: an introductory review.
Equine veterinary journal    October 1, 1981   Volume 13, Issue 4 218-222 doi: 10.1111/j.2042-3306.1981.tb03498.x
Wells PW, McBeath DG, Eyre P, Hanna CJ.This article attempts to relate some of the more recently accepted concepts of immunology to an understanding of the mechanisms of immunity in the horse. The cellular mechanisms involved in the immune response are outlined, with an indication of their likely role in humoral and cell-mediated immunity. In describing the humoral immune response, the structure and function of the different equine immunoglobulins are reviewed. The significance of humoral and cell-mediated immune responses are considered in relation to actively and passively acquired immunity.
An evaluation of contribution derived from investigations of equine immunodeficiencies.
Veterinary immunology and immunopathology    April 1, 1981   Volume 2, Issue 2 101-109 doi: 10.1016/0165-2427(81)90042-8
McGuire TC, Perryman LE, Banks KL.Following the descriptions of immunodeficiencies in horses beginning in 1973, there has been considerable effort to develop methods for differential diagnosis and to determine the cause and prevalence of the disorders. In addition, the equine immunodeficiencies, especially combined immunodeficiency, have been studied from a comparative viewpoint with the goal of finding information applicable to similar diseases of children. Coincident with the development of knowledge about the immunodeficiencies per se, considerable information about several aspects of immunology has been obtained. It is the...
Lyophilized hyperimmune equine serum as a source of antibodies for neonatal foals.
American journal of veterinary research    February 1, 1981   Volume 42, Issue 2 308-310 
Burton SC, Hintz HF, Kemen MJ, Holmes DF.In a study with 15 neonatal foals (5 per treatment group), foals were fed within 4 hours of birth as follows: 250 ml of colostrum, 250 ml of lyophilized serum reconstituted at 5 times the original concentration, or 250 ml of a mixture (1:1) of colostrum and lyophilized serum. Foal serum samples were tested for immunoglobulin (Ig)G concentration and titrated for anti-equine rhinovirus 1 and anti-equine influenza A1 and A2 antibodies at 0 and 24 hours after foals were born. Except in a foal which had suckled the dam before treatment, there was no evidence of IgG or specific viral antibodies in t...
Colostral immunity in the calf and the foal.
The Veterinary clinics of North America. Large animal practice    November 1, 1979   Volume 1, Issue 2 331-361 doi: 10.1016/s0196-9846(17)30188-x
Naylor JM.No abstract available
Immunity: autoimmunity, isoimmunity, and immunodeficiency in the foal.
Veterinary medicine, small animal clinician : VM, SAC    October 1, 1979   Volume 74, Issue 10 1430-1440 
Coffman J.No abstract available
Glomerulonephritis, autoimmunity, autoantibody. Animal model: anti-glomerular basement membrane antibody in horses.
The American journal of pathology    February 1, 1979   Volume 94, Issue 2 443-446 
Banks KL.No abstract available
[Pathogenesis of equine infectious anemia (with reference to similar chronic viral infection)].
Bulletin der Schweizerischen Akademie der Medizinischen Wissenschaften    September 1, 1977   Volume 33, Issue 4-6 249-263 
Hallauer C.1. Equine infectious anemia (EIA) is an immunologically-medicated disease. Immune complexes formed in blood and tissues are responsible for most symptoms and lesions (anemia, splenomegaly, lymphadenopathy, glomerulonephritis, etc.). In addition, a state of cellular hypersensitivity of the delayed type is involved in the pathogenesis. 2. Periodical attacks of pyrexia and clinical illness in the presence of immunity are caused by antigenically-modified variants of virus. By means of immunosuppressive treatments similar relapses of fever associated with the appearance of new virus variants can be...
Recrudescence of equine infectious anemia by treatment with immunosuppressive drugs.
National Institute of Animal Health quarterly    January 1, 1976   Volume 16, Issue 1 8-15 
Kono Y, Hirasawa K, Fukunaga Y, Taniguchi T.Horses which had passed a few months to a few years asymptomatically after the last recurrence of equine infectious anemia (EIA) showed a typical febrile response after treatment with the immunosuppressive agent, dexamethasone (DM) or cyclophosphamide (CY). In horses showing a febrile response, EIA virus which had not been neutralized by neutralizing antibody previously produced was propagated. In DM-treated horses it disappeared from the blood soon after pyretolysis and antibody against the virus was produced promptly. In contrast, detectable viremia persisted in CY-treated horses for 10 to 8...