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Biomedical subjects

P Hübert

Publications and source records attributed to P Hübert.

9 recordsLinked to original sources

Detection of bovine herpesvirus type 1 in blood from naturally infected cattle by using a sensitive PCR that discriminates between wild-type virus and virus lacking glycoprotein E.

In the present study, we report for the first time on the detection of bovine herpesvirus type 1 (BHV-1) in whole-blood samples derived from naturally infected cattle. Sensitive PCR assays specific for glycoprotein B (gB), gC, and gE of BHV-1 allow the detection of one BHV-1 DNA copy in 10(5) to 10(7) peripheral blood leukocytes (PBLs). The incidence of BHV-1-positive PBLs in naturally infected cattle appears to be quite high (92.2% positive PBLs among all samples tested), although in most cases only between 10(-5) and 10(-7) positive leukocytes were present. The results demonstrate that the viral DNA is detectable not only in the peripheral blood of acutely infected animals but, more importantly, also in the peripheral blood of subclinically infected cattle. The gE-specific PCR described in the report allows discrimination between wild-type (WT) virus-infected and vaccinated animals, which is of importance for control programs that use the recently introduced vaccination strategy with a gE-negative virus. The results further show that doubtful serological results can be verified or falsified and that individual animals can be monitored for the presence or absence of WT BHV-1 or gE-negative virus in cattle herds. The PCR protocols allow the detection of BHV-1 prior to seroconversion or in BHV-1-seronegative cattle. Finally, the results indicate the simultaneous presence of WT and gE-negative vaccine virus in the PBLs of several cattle. Therefore, investigations of viremia in naturally and experimentally infected cattle and on the identification of infected cell types of bovine PBLs can be now performed.

Animals↗

[Comparison of laboratory diagnostic methods for the detection of infection with the virus of classical swine fever in the early inspection phase: an experimental study].

Virus isolation in the PK-15 cell culture, two commercial antigen ELISAs, reverse transcriptional-polymerase chain reaction (RT-PCR), and flow cytometry have been evaluated to detect viremic pigs in the early period of classical swine fever virus (CSFV) infection. Domestic pigs were experimentally inoculated with the virulent CSFV strain 'Alfort 187' and two field isolates. CSFV isolation and RT-PCR were found to be the most sensitive methods for the detection of highly virulent CSFV in the early period of infection which is characterized by the absence of clinical symptoms. Using antigen ELISAs and flow cytometry CSFV could be detected in infected animals after the onset of clinical signs. After infection with a less virulent CSFV field isolate originating from wild boar, viremic pigs could be identified by direct virus isolation. The reasons for the negative results of the RT-PCR still remain unknown. In conclusion we recommend to modify the procedure (antigen ELISA) for the detection of clinically healthy domestic pigs in accordance with the decision 98/413/EC.

Animals↗

Detection of low-virulent classical swine fever virus in blood of experimentally infected animals: comparison of different methods.

The effectiveness of virus isolation, commercial antigen enzyme-linked immunosorbent assay (ELISA), reverse transcriptase-polymerase chain reaction (RT-PCR), and flow cytometry in detection of a low-virulent classical swine fever virus (CSFV) in blood in the early period of infection was evaluated. Domestic pigs at the age of 6-8 weeks and young wild boars were inoculated with a low-virulent field isolate of CSFV originating from a wild boar. This virus induced serious clinical reaction in only one pig which was naturally infected with Pasteurella multocida. Nine of 13 infected domestic pigs showed viremia. All infected weanling pigs were found viraemic by virus isolation on day 6 post infection (p.i.) but virus-free by RT-PCR. The flow cytometry was apparently not as sensitive as the virus isolation. Two young wild boars infected with the virus were viremic only for the first 2 days p.i. Virus isolation and RT-PCR were of similar sensitivity. Three different commercial antigen ELISAs used were not able to detect viral antigen in any animal.

Animals↗

In-situ hybridization for demonstration of equine herpesvirus type 1 DNA in paraffin wax-embedded tissues and its use in horses with disseminated necrotizing myeloencephalitis.

The detection of equine herpesvirus type 1 (EHV-1) in infected cell cultures, and in tissues taken at necropsy, by the in-situ hybridization technique is described. A 4.9 kb Bam HI fragment of EHV-1 vaccine strain RacH was used as a probe after labelling with [alpha-32P] thymidine 5'-triphosphate ([32P]TTP) or digoxigenin-deoxyuridine 5'-triphosphate (dUTP). Both probes specifically detected EHV-1 DNA in either cytospin or paraffin wax-embedded preparations of infected cells. The digoxigenin-labelled probe was further used to examine tissue sections of equine fetuses which had been aborted due to EHV-1 infection. In all cases positive hybridization signals were mainly associated with the nuclei. Positive results were confirmed by immunostaining of EHV-1 antigen in adjacent sections. However, both methods failed to detect EHV-1 in spinal cord sections of six horses suffering from disseminated necrotizing myeloencephalitis (DNM). These results support the hypothesis that DNM is not caused by a productive viral infection of parenchyma of the nervous system but is immunologically mediated.

Animals↗

Rapid identification and differentiation of the vaccine strain Rac H from EHV 1 field isolates using a non-radioactive DNA probe.

A method for rapid differentiation between the EHV 1 live vaccine strain Rac H and field isolates is described. Total DNA was isolated from virus-infected small scale cell cultures. DNA fragments digested with restriction endonuclease BamHI were separated, transferred and immobilized on filter membranes. A Digoxigenin-labeled probe derived from EHV 1 was used for hybridization. This probe hybridized specifically to sequences of the inverted terminal repeat region which in case of Rac H include a deletion of 0.8 kb. By comparing the different migration patterns after blot hybridization it could be shown that in 65 isolates from cases of abortion the live vaccine strain Rac H was not involved.

Abortion, Veterinary↗

[The use of genetic engineering in veterinary medicine with examples from epidemiology, diagnosis and drug production].

The results of genetic engineering have reached practical veterinary medicine already. Nevertheless there is a great lack of knowledge among those veterinarians who usually do not work with these methods. Therefore we want to give an introduction into the advantages and dangers of this technology concerning veterinary medicine. Some important analytical methods are explained. Related viruses such as WEE and EEE or canine parvovirus, feline parvovirus and mink enteritis virus, or the related coronaviruses FIPV and TGEV serve as examples for the possibilities in molecular diagnosis and epidemic monitoring. The history of the gl- mutants of PRV, now prescribed as vaccine strains in the FRG, is an example of the development of genetic engineered vaccines. A new generation of vaccines based on recombinant vaccinia viruses is imminent. Thus we have to be aware of the high risks and responsibility of everybody who is involved in these new systems, especially the scientist who produces genetically altered organisms.

Animals↗

Current problems in zoonosis research.

New developments in the field of Zoonosis research are discussed. They include: 1. New emerging viral zoonosis 2. Multicausal zoonoses 3. Genetic aspects of the origin of new zoonoses 4. Transmission of zoonoses to man through foodstuffs of animal origin 5. The environment and zoonoses. Continuous zoonosis research with new molecular biological techniques is a necessity. In the final analysis, there are no true limits in the field of infectiology. Such research requires cooperation between ecologists, zoologists, botanists, molecular biologists, physicians and veterinarians.

Animals↗

Cloning of a restriction fragment of phage mu DNA coding for early functions.

The DNA of an E. coli K12 strain harboring ten wildtype Mu prophages was restricted with endonuclease EcoRI, and the fragments ligated into the plasmid vector pMB9. Upon transformation of a strain carrying a heat inducible (Mu cts62) prophage, one temperature-resistant transformant was isolated. This transformant strain harbors the hybrid plasmid pKN001, containing the EcoRI.C fragment of Mu DNA as shown by restriction and heteroduplex analysis. Stable transformants of pKN001 are immune to superinfection with phage Mu. Transformation of Mu sensitive bacteria with pKN001 results in killing of the recipients (10(-4) surviving bacteria). The killing function is not expressed upon transformation of Mu-immune (lysogenic) bacteria.

Cell Transformation, Viral↗