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Biomedical subjects

B Beer

Publications and source records attributed to B Beer.

At least 19 recordsLinked to original sources

Selective anxiolysis produced by ocinaplon, a GABA(A) receptor modulator.

Benzodiazepines remain widely used for the treatment of anxiety disorders despite prominent, often limiting side effects including sedation, muscle relaxation, and ataxia. A compound producing a robust anxiolytic action comparable to benzodiazepines, but lacking these limiting side effects at therapeutic doses (an anxioselective agent), would represent an important advance in the treatment of generalized anxiety disorder, and perhaps other anxiety disorders. Here we report that the pyrazolo[1,5-a]-pyrimidine, ocinaplon, exhibits an anxioselective profile in both preclinical procedures and in patients with generalized anxiety disorder, the most common of the anxiety disorders. In rats, ocinaplon produces significant muscle relaxation, ataxia, and sedation only at doses >25-fold higher than the minimum effective dose (3.1 mg/kg) in the Vogel "conflict" test. This anticonflict effect is blocked by flumazenil (Ro 15-1788), indicating that like benzodiazepines, ocinaplon produces an anxiolytic action through allosteric modulation of GABA(A) receptors. Nonetheless, in eight recombinant GABA(A) receptor isoforms expressed in Xenopus oocytes, the potency and efficacy of ocinaplon to potentiate GABA responses varied with subunit composition not only in an absolute sense, but also relative to the prototypical benzodiazepine, diazepam. In a double blind, placebo controlled clinical trial, a 2-week regimen of ocinaplon (total daily dose of 180-240 mg) produced statistically significant reductions in the Hamilton rating scale for anxiety scores. In this study, the incidence of benzodiazepine-like side effects (e.g., sedation, dizziness) in ocinaplon-treated patients did not differ from placebo. These findings indicate that ocinaplon represents a unique approach both for the treatment and understanding of anxiety disorders.

Adult↗

Fabrication of highly porous scaffold materials based on functionalized oligolactides and preliminary results on their use in bone tissue engineering.

Tissue engineering offers a promising new approach to repair bone defects. Its practical realisation is connected with the development of suitable scaffold materials. In the present work, functionalized oligolactides have been prepared and used as macromers for the scaffold fabrication The developed fabrication process leads to highly porous scaffolds, available in various shapes and sizes, with an open inter-connective pore structure and porosities up to 90%. Degradable or even osteoconductive components as well as biocompatible co-monomers can be used as additives to modulate the scaffold properties. Under in vitro conditions, the scaffolds exhibit a continuous degradation with varying degradation rates depending on their material composition. In vitro studies on the cultivation of osteoblasts on the scaffolds were performed and revealed their excellent biocompatibility. Cell growth on the scaffold surfaces and inside the scaffolds, formation of extracellular matrix and starting mineralization were detected by microscopical and histological analyses. Based on these results the developed materials are well-suited candidates for the design of tailor-made matrices in bone tissue engineering

Journal Article↗

Analysis of SIV-specific CTL in the rhesus macaque model of AIDS: the use of simian fibroblasts as an alternative source of target cells for chromium release assays.

The simian immunodeficiency virus (SIV) model of AIDS is widely used for the development of human immunodeficiency virus (HIV) vaccine strategies, particularly for the analysis of correlates of protective immunity. As it is not always possible to establish autologous B-lymphoblastoid cell lines (B-LCL) for use as targets in the analysis of cytotoxic T cell (CTL) activity, we have compared B-LCL with primary simian skin cells. Using a well-defined SIV gag-encoded CTL epitope restricted by Mamu A*01 major histocompatibility complex (MHC) class I, we have shown that peripheral blood mononuclear cells (PBMC) from vaccinated and infected macaques can kill MHC class I-matched skin fibroblasts presenting the cognate epitope but that skin fibroblasts are a less sensitive target than B-LCL for the detection of CTL.

Acquired Immunodeficiency Syndrome↗

Treatment of feline leukemia virus (FeLV) infection.

FeLV infection is still considered to account for most disease-related deaths in pet cats. Different treatment attempts with various drugs were performed in the past but none resulted in healing or complete virus elimination. Therefore, it caused a sensation when Horber and Mayr [Horber, D., Mayr, B., 1991. Prax. 19, 311-314; Horber, D., Schnabl, W., Mayr, B., 1992. Tierarztl. Umschau 47, 556-560; Mayr, B., Horber, D., 1992. Kleintierprax. 37, 515-518] published that they were able to cure 80 to 100% FeLV-infected cats from viremia by using an immunomodulating compound. Articles in cat breeder and cat owner journals appeared assuming that obviously there is a rescue for FeLV-infected cats suffering from this deadly infection. The immunomodulator [Buttner, M., 1993. Comp. Immun. Microbiol. Infect. Dis. 18, 1-10] used in those studies was the so-called 'paramunity inducer' PIND-ORF (Baypamun, Bayer, Leverkusen, Germany) consisting of inactivated parapox ovis virus. Since that time, Baypamun is the most commonly used drug for treatment of FeLV infection in Germany and other European countries. Four placebo-controlled double-blind trials were performed to determine the therapeutic efficacy of Baypamun and other compounds in naturally FeLV-infected cats under controlled conditions.

Adjuvants, Immunologic↗

Characteristics of Filoviridae: Marburg and Ebola viruses.

Filoviruses are enveloped, nonsegmented negative-stranded RNA viruses. The two species, Marburg and Ebola virus, are serologically, biochemically, and genetically distinct. Marburg virus was first isolated during an outbreak in Europe in 1967, and Ebola virus emerged in 1976 as the causative agent of two simultaneous outbreaks in southern Sudan and northern Zaire. Although the main route of infection is known to be person-to-person transmission by intimate contact, the natural reservoir for filoviruses still remains a mystery.

Animals↗

Why are the natural hosts of SIV resistant to AIDS?

An increasing number of African primate species have been shown to be infected in the wild with their own distinct variants of simian immunodeficiency virus. The most striking feature of these natural host systems is the lack of AIDS-like disease despite long-term infection. In the African green monkey (AGM)/SIVagm system there is no evidence that a vigorous antiviral immune response, a lack of variability or a low virus load accounts for this lack of pathogenicity. New-born AGMs appear to be even more resistant to the virus than adults, despite their immature immune system and higher pool of target cells. The fact that AGMs, unlike HIV-infected humans, lack a humoral immune response to non-denatured Gag protein and do not show trapping of virus in the lymph nodes suggested that tolerance to Gag might prevent the formation of immune complexes which would normally be filtered out by the lymphoid tissues with detrimental results. This apparent tolerance to Gag is a common feature of many, if not all, of the natural host systems and might explain why the lymph nodes and immune system in general remain intact in these primates in the face of continuous, high level virus replication.

Animals↗

Simian immunodeficiency virus of African green monkeys is apathogenic in the newborn natural host.

Several studies have demonstrated that newborn animals are more susceptible to disease development following infection with retroviruses than adults. Adult African green monkeys (AGMs) infected with SIVagm do not develop AIDS-like disease and the objective of the study was to determine whether experimental infection of newborn AGMs with SIVagm would result in pathogenesis. Neonatal AGMs were found to have a higher percentage of circulating CD4+ lymphocytes than adults (62% versus 14%) and therefore a higher potential pool of target cells for SIVagm infection. However, no differences in the in vitro replication kinetics of SIVagm in peripheral blood mononuclear cells of adult or neonatal AGMs could be observed. In vivo, the neonatal AGMs became viremic at the earliest two months after inoculation whereas the adult AGMs had evidence of virus replication already 2 to 6 weeks after infection. None of the animals developed AIDS-like symptoms upon infection. In the heterologous cynomolgus macaque host, a newborn infected with SIVagm developed early high virus loads and died two months after birth with AIDS-like histopathologic features. It would therefore appear that in contrast to the situation with many other retroviruses, newborn AGMs are no more permissive to SIVagm infection than are adults.

Aging↗

SIVmac vaccine studies using whole inactivated virus antigen sequentially depleted of viral proteins.

Groups of four rhesus monkeys were immunised at 0, 1, 2, and 13 months with whole inactivated SIVmac32H, SIVmac depleted of the outer envelope glycoprotein gp130, virus cores depleted of the lipid membrane (and hence transmembrane glycoproteins), or purified gag protein. These macaques plus controls were challenged with either the homologous SIVmac251-32H grown in human cells or the same virus passed once through monkey cells. None of those challenged with monkey-grown virus were protected, whereas all in the whole and gp130-depleted virus groups, and one in the core group resisted challenge with human-grown virus. As the only difference between the challenge viruses was a single in vitro passage in monkey cells it can be concluded that protection was solely due to human cell components. Finally, passive transfer of high titer IgG from monkeys infected with the homologous challenge virus failed to protect monkeys from infection despite the presence of circulating neutralising antibodies.

Animals↗

The U3 promoter and the nef gene of simian immunodeficiency virus (SIV) smmPBj1.9 do not confer acute pathogenicity upon SIVagm.

Two chimeric proviruses comprising the U3 promoter and the nef gene of simian immunodeficiency virus (SIV) smmPBj1.9 in addition to other genomic regions of SIVagm3mc from African green monkeys (Cercopithecus aethiops) were constructed. The derived chimeric viruses (SIVagm3mc/SIVsmmPBj1.9) were both able to replicate in nonstimulated peripheral blood leukocytes from pig-tailed macaques (Macaca nemestrina), a biological property often correlated with acute pathogenicity. However, only one of the chimeric viruses was acutely pathogenic, inducing a rapid depletion of the peripheral CD4+ T cells in two infected pig-tailed macaques within 10 days after infection in a manner similar to infection with SIVsmmPBj1.9 itself. The other chimeric virus actively replicated during the first 8 weeks after experimental infection of two pig-tailed macaques but induced neither acute disease nor CD4+ T-cell depletion for 113 weeks after infection. Thus, the U3 promoter and the nef gene of SIVsmmPBj1.9 alone appear to be insufficient to confer acute pathogenicity to SIVagm3mc.

Animals↗

Chemoattractant factors and the control of human immunodeficiency virus replication.

Factors secreted by CD8(+) T cells have been described to suppress immunodeficiency virus replication. The research efforts to identify these factors led to the proposal of some candidate proteins as being responsible for the antiviral effects. Chemokines and IL-16 are secreted by CD8(+) T cells and inhibit HIV replication through different mechanisms. However, their antiviral properties cannot fully explain the inhibitory activities found in cell culture supernatants from CD8(+) T cells.

Antiviral Agents↗

Vaccine effect using a live attenuated nef-deficient simian immunodeficiency virus of African green monkeys in the absence of detectable vaccine virus replication in vivo.

Immunization of adult macaques with live attenuated simian immunodeficiency viruses (SIVs) lacking the nef genes has been shown to protect against challenge with full-length pathogenic SIV. To test live attenuated virus vaccines for the first time in a natural host we have constructed a mutant SIV from African green monkeys (SIVagm) with a deletion of 125 bp in the nef gene (SIVagm3 delta nef). This mutant showed moderately delayed in vitro replication in the T cell line MOLT-4/8 and in primary peripheral blood mononuclear cells from African green monkeys (Cercopithecus aetiops) and pig-tailed macaques (Macaca nemestrina) compared with cloned wild-type SIVagm3. In contrast, in vivo replication of SIVagm3 delta nef in African green monkeys was severely impaired or undetectable and did not induce seroconversion. After challenge with wild-type SIVagm3 the SIVagm3 delta nef preinoculated African green monkeys showed a memory antibody response that declined after week 2. In three of four African green monkeys the cell-associated virus load and in two of four African green monkeys the plasma virus load was dramatically decreased after the challenge compared with naive control animals. The remaining animal showed no evidence of productive challenge virus replication. This study demonstrates that a strong vaccine effect or protection in the SIVagm/African green monkey system is possible using a live attenuated vaccine in the absence of a productive infection and corresponding humoral immune response.

Animals↗

Lack of dichotomy between virus load of peripheral blood and lymph nodes during long-term simian immunodeficiency virus infection of African green monkeys.

During the asymptomatic phase of human immunodeficiency virus 1 (HIV-1) infection the lymphatic tissues seem to function as a major reservoir of HIV. We have examined the viral load in peripheral blood mononuclear cells (PBMC) and lymph node mononuclear cells (LNMC) of 12 naturally and 4 experimentally long-term simian Immunodeficiency virus (SIV)-infected African green monkeys (AGM) to help explain the apathogenicity of the AGM isolates of SIV (SIVagm) in their natural host. The mean number of SIVagm producing cells determined by limiting dilution assay was found to be 1.7 +/- 2.2 and 2.1 +/- 3.3 per 10(5) PBMC or LNMC, respectively. Similarly, polymerase chain reaction analysis of serially diluted cells showed the mean provirus carrying cell number to be 2.8 +/- 3.7 per 10(5) PBMC and 4.0 +/- 5.5 per 10(5) LNMC. When normalized for CD4+ cells the provirus and infectious virus loads in the LNMC and PBMC were also similar. No trapping of virus particles could be detected by in situ hybridization or immunohistochemistry. The data demonstrate that in contrast to HIV-1-infected humans, the viral burden in the lymph nodes of long-term SIV(agm)-infected AGMs is comparable to that in the PBMC.

Animals↗

Protection from pathogenic SIVmac challenge following short-term infection with a nef-deficient attenuated virus.

Infection of rhesus macaques with attenuated SIVmac is, at present, the only strategy which confers significant protection from challenge with wild-type SIVmac grown in monkey PBMC. However, initial results suggest that the protective mechanism does not develop until late after "vaccination" (approx 10 months). As part of a European study using the C8 variant of SIVmac251-32H (containing an in-frame 12-bp deletion in the nef gene), we wished to determine (a) if protection could be achieved against challenge with a "swarm" of SIVmac251-32H produced in monkey cells and (b) if protection could be demonstrated after a short period of infection with the attenuated virus. Eight Indian rhesus macaques were infected with C8 and four were challenged after 10 weeks with 50 MID50 of an uncloned stock of SIVmac251-32H grown in rhesus cells, and the other four were challenged after 20 weeks. Four animals served as naive controls. Three of the four monkeys challenged at 10 weeks and three of those challenged at 20 weeks were protected from productive superinfection. From one monkey in each group it was, however, possible to demonstrate the presence of the wild-type provirus in monkey PBMC by diagnostic PCR and anamnestic immune response. There was no apparent correlation between the levels of binding or neutralizing antibodies on the day of challenge and subsequent protection. Approximately 1 year after infection with the attenuated virus all monkeys were rechallenged with the heterologous SIVsm strain, first with 10-20 MID50 and then with 1000 MID50. Although not all of the SIVsm-inoculated naive controls became productively infected, PCR analysis failed to reveal any evidence for infection of the "immunized" monkeys.

Animals↗

Comparison of T-cell subpopulations in cats naturally infected with feline leukaemia virus or feline immunodeficiency virus.

T-cell subsets were studied by flow cytometry in 58 feline leukaemia virus (FeLV)-positive cats with naturally acquired FeLV infection to determine whether the changes in CD4+ or CD8+ T cell populations differed from those observed in 55 feline immunodeficiency virus (FIV)-positive cats with naturally acquired FIV infection. The sole criterion for inclusion into the study was seropositivity. Mean (SD) CD4+ T cell values of FeLV positive cats were decreased to 31.1 (8.0) per cent and their CD8+ T cell values were increased to 22.8 (6.3) per cent in comparison with uninfected control cats (37.9 [9.5] per cent CD4+; 15.2 [6.3] per cent CD8+). The CD4+/CD8+ ratio was reduced to 1.5 (0.7), compared with 3.0 (1.5) in 39 FeLV-and FIV-negative control cats. Differences from control values were significant, but there was no significant difference between CD4+ and CD8+ lymphocytes of FeLV-versus FIV-infected cats. These findings indicate that FeLV and FIV have similar effects on T lymphocyte subsets. Both retrovirus infections can induce immunodeficiency, both viruses infect a broad range of lymphohaemopoietic cells, despite having different primary target cells, and can induce the killing of lymphocytic cells in vitro. It is concluded that a decreased CD4+/CD8+ ratio is not restricted to FIV infections but may also occur in FeLV infection.

Animals↗