Related Experiment Video
Updated: Jun 1, 2026

Production of Pseudotyped Particles to Study Highly Pathogenic Coronaviruses in a Biosafety Level 2 Setting
Published on: March 1, 2019
Phylogenetic analysis of Puumala virus subtype Bavaria, characterization and diagnostic use of its recombinant
Marc Mertens1, Eveline Kindler, Petra Emmerich
1Institute for Novel and Emerging Infectious Diseases, Friedrich-Loeffler-Institut, Federal Research Institute for Animal Health, 17493 Greifswald-Insel Riems, Germany.
Abstract:
Puumala virus (PUUV) is the predominant hantavirus species in Germany causing large numbers of mild to moderate cases of haemorrhagic fever with renal syndrome (HFRS). During an outbreak in South-East Germany in 2004 a novel PUUV subtype designated Bavaria was identified as the causative agent of HFRS in humans [1]. Here we present a molecular characterization of this PUUV strain by investigating novel partial and almost entire nucleocapsid (N) protein-encoding small (S-) segment sequences and partial medium (M-) segment sequences from bank voles (Myodes glareolus) trapped in Lower Bavaria during 2004 and 2005. Phylogenetic analyses confirmed their classification as subtype Bavaria, which is further subdivided into four geographical clusters. The entire N protein, harbouring an amino-terminal hexahistidine tag, of the Bavarian strain was produced in yeast Saccharomyces cerevisiae and showed a slightly different reactivity with N-specific monoclonal antibodies, compared to the yeast-expressed N protein of the PUUV strain Vranica/Hällnäs. Endpoint titration of human sera from different parts of Germany and from Finland revealed only very slight differences in the diagnostic value of the different recombinant proteins. Based on the novel N antigen indirect and monoclonal antibody capture IgG-ELISAs were established. By using serum panels from Germany and Finland their validation demonstrated a high sensitivity and specificity. In summary, our investigations demonstrated the Bavarian PUUV strain to be genetically divergent from other PUUV strains and the potential of its N protein for diagnostic applications.
Insights
A novel Puumala virus (PUUV) subtype, Bavaria, caused hemorrhagic fever with renal syndrome (HFRS) in Germany. Its nucleocapsid protein shows diagnostic potential, with new ELISAs demonstrating high sensitivity and specificity.
Area of Science:
- Virology
- Immunology
- Molecular Biology
Background:
- Puumala virus (PUUV) is the primary cause of hemorrhagic fever with renal syndrome (HFRS) in Germany.
- A novel PUUV subtype, designated Bavaria, was identified during a 2004 outbreak in southeastern Germany.
Purpose of the Study:
- To molecularly characterize the novel PUUV Bavaria subtype.
- To investigate the diagnostic potential of the PUUV Bavaria strain's nucleocapsid (N) protein.
Main Methods:
- Phylogenetic analysis of S-segment and M-segment sequences from bank voles.
- Production of the entire N protein of the Bavarian strain in yeast (Saccharomyces cerevisiae).
- Development and validation of indirect and monoclonal antibody capture IgG-ELISAs using recombinant N proteins.
Main Results:
- Phylogenetic analyses confirmed the classification of the PUUV strain as subtype Bavaria, with four geographical clusters identified.
- The yeast-expressed Bavarian N protein exhibited slightly different reactivity with monoclonal antibodies compared to another PUUV strain.
- Newly established ELISAs showed high sensitivity and specificity when tested with serum panels from Germany and Finland.
Conclusions:
- The Bavarian PUUV strain is genetically distinct from other PUUV strains.
- The nucleocapsid protein of the Bavarian PUUV strain holds significant potential for diagnostic applications in HFRS detection.
More Related Videos
08:10Production of High-Titer Infectious Influenza Pseudotyped Particles with Envelope Glycoproteins from Highly Pathogenic H5N1 and Avian H7N9 Viruses
Published on: January 15, 2020
12:20Bacterial Artificial Chromosomes: A Functional Genomics Tool for the Study of Positive-strand RNA Viruses
Published on: December 29, 2015