Antibody alone does not prevent experimental cytomegalovirus retinitis in mice with retrovirus-induced immunodeficiency (MAIDS). 1997

R D Dix, and C Cray, and S W Cousins
Department of Ophthalmology, Bascom Palmer Eye Institute, University of Miami School of Medicine, Fla., USA. rdix@mednet.med.miami.edu

Passive-transfer studies were performed to assess the ability of antibody alone to reduce the frequency and/or severity of necrotizing retinitis caused by murine cytomegalovirus (MCMV) in C57BL/6 mice with retrovirus-induced immunodeficiency syndrome (MAIDS). Initial experiments showed a gradual decline in the ability of mice to initiate humoral immunity during the evolution of MAIDS so that neither MCMV-specific IgM nor IgG could be detected during late-stage MAIDS. Passively administered hyperimmune MCMV immunoglobulin, however, could be detected within the serum of mice with MAIDS for at least 9 days after intraperitoneal injection and protected these animals in preliminary experiments from systemic MCMV disease and death when administered 24 h prior to intraperitoneal challenge with a lethal dose of virus. Nonetheless, passive transfer of hyperimmune MCMV serum to mice with MAIDS failed to reduce intraocular MCMV titers, frequency of retinitis, or severity of retinitis when administered 24 h prior to subretinal MCMV inoculation. Whereas whole eyes of MAIDS animals that received normal mouse serum and were injected subretinally with MCMV had an ocular MCMV titer of 4.3 log10 and a frequency of retinitis of 89% (severity score = 55%), whole eyes of antibody-treated mice with MAIDS had an ocular MCMV titer of 4.3 log10 and a frequency of retinitis of 87% (severity score = 57 %). Passive transfer of a neutralizing MCMV-specific monoclonal antibody also failed to reduce the frequency or severity of MCMV retinitis when administered to mice with MAIDS prior to subretinal MCMV inoculation. Our findings suggest that antibody immunotherapy alone will not be effective therapeutically for cytomegalovirus retinitis in patients with AIDS.

UI MeSH Term Description Entries
D007074 Immunoglobulin G The major immunoglobulin isotype class in normal human serum. There are several isotype subclasses of IgG, for example, IgG1, IgG2A, and IgG2B. Gamma Globulin, 7S,IgG,IgG Antibody,Allerglobuline,IgG(T),IgG1,IgG2,IgG2A,IgG2B,IgG3,IgG4,Immunoglobulin GT,Polyglobin,7S Gamma Globulin,Antibody, IgG,GT, Immunoglobulin
D007075 Immunoglobulin M A class of immunoglobulin bearing mu chains (IMMUNOGLOBULIN MU-CHAINS). IgM can fix COMPLEMENT. The name comes from its high molecular weight and originally was called a macroglobulin. Gamma Globulin, 19S,IgM,IgM Antibody,IgM1,IgM2,19S Gamma Globulin,Antibody, IgM
D007116 Immunization, Passive Transfer of immunity from immunized to non-immune host by administration of serum antibodies, or transplantation of lymphocytes (ADOPTIVE TRANSFER). Convalescent Plasma Therapy,Immunoglobulin Therapy,Immunotherapy, Passive,Normal Serum Globulin Therapy,Passive Antibody Transfer,Passive Transfer of Immunity,Serotherapy,Passive Immunotherapy,Therapy, Immunoglobulin,Antibody Transfer, Passive,Passive Immunization,Therapy, Convalescent Plasma,Transfer, Passive Antibody
D008807 Mice, Inbred BALB C An inbred strain of mouse that is widely used in IMMUNOLOGY studies and cancer research. BALB C Mice, Inbred,BALB C Mouse, Inbred,Inbred BALB C Mice,Inbred BALB C Mouse,Mice, BALB C,Mouse, BALB C,Mouse, Inbred BALB C,BALB C Mice,BALB C Mouse
D008810 Mice, Inbred C57BL One of the first INBRED MOUSE STRAINS to be sequenced. This strain is commonly used as genetic background for transgenic mouse models. Refractory to many tumors, this strain is also preferred model for studying role of genetic variations in development of diseases. Mice, C57BL,Mouse, C57BL,Mouse, Inbred C57BL,C57BL Mice,C57BL Mice, Inbred,C57BL Mouse,C57BL Mouse, Inbred,Inbred C57BL Mice,Inbred C57BL Mouse
D012160 Retina The ten-layered nervous tissue membrane of the eye. It is continuous with the OPTIC NERVE and receives images of external objects and transmits visual impulses to the brain. Its outer surface is in contact with the CHOROID and the inner surface with the VITREOUS BODY. The outer-most layer is pigmented, whereas the inner nine layers are transparent. Ora Serrata
D004195 Disease Models, Animal Naturally-occurring or experimentally-induced animal diseases with pathological processes analogous to human diseases. Animal Disease Model,Animal Disease Models,Disease Model, Animal
D004797 Enzyme-Linked Immunosorbent Assay An immunoassay utilizing an antibody labeled with an enzyme marker such as horseradish peroxidase. While either the enzyme or the antibody is bound to an immunosorbent substrate, they both retain their biologic activity; the change in enzyme activity as a result of the enzyme-antibody-antigen reaction is proportional to the concentration of the antigen and can be measured spectrophotometrically or with the naked eye. Many variations of the method have been developed. ELISA,Assay, Enzyme-Linked Immunosorbent,Assays, Enzyme-Linked Immunosorbent,Enzyme Linked Immunosorbent Assay,Enzyme-Linked Immunosorbent Assays,Immunosorbent Assay, Enzyme-Linked,Immunosorbent Assays, Enzyme-Linked
D005260 Female Females
D006566 Herpesviridae Infections Virus diseases caused by the HERPESVIRIDAE. Herpesvirus Infections,B Virus Infection,Infections, Herpesviridae,Infections, Herpesvirus,B Virus Infections,Herpesviridae Infection,Herpesvirus Infection,Infection, B Virus,Infection, Herpesviridae,Infection, Herpesvirus,Infections, B Virus

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