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4 results for “Orthopoxvirus”
Development of a genus-specific antigen capture ELISA for orthopoxviruses. Target selection and optimized screening
<p><strong>Raw data for quantification of anti surface protein antibody binding to vaccinia virus.</strong></p> <p>Method description</p> <p>Immuno-negative staining and electron microscopy were performed as described elsewhere (Laue, 2010). Briefly, purified VACV<sub>NYCBOH</sub> particles were inactivated by incubation in freshly prepared 2% PFA in 0.05 M HEPES (pH 7.2), sonicated and immobilized on sample supports for transmission electron microscopy. Biotinylated pAbs were titrated on BSA coated grids, until detection with 5 nm gold nanoparticle coupled streptavidin (British Biocell, Cardiff, United Kingdom) resulted in the same mean background labelling density of ~10 particles per view field at a, 87,000-fold magnification (anti-A27: 0.7 µg/mL; anti-D8: 2 µg/mL; anti-H3: 0.9 µg/mL; anti-L1: 1.9 µg/mL). Negative staining was performed with either 0.1 or 0.5% uranyl acetate solution. For quantification, only IMV particles of the mulberry form, which were found isolated from other particles, were analyzed. Randomized sampling was done in 22 evenly distributed mesh areas with five viral particles analyzed per area. Imaging was done with a Tecnai 12 BioTwin (FEI Corp.) at 120 kV and a 1k digital CCD camera (Megaview III, Olympus Soft Imaging Solutions).</p>
A Trial to Assess the Safety, Tolerability, and Pharmacokinetics of the Anti-Orthopoxvirus Compound Tecovirimat
ClinicalTrials.gov study NCT02474589. IPD Sharing: UNDECIDED. Countries: 1. Publications: 1.
Data from: Novel orthopoxvirus infection in an Alaska resident
Background. Human infection by orthopoxviruses is being reported with increasing frequency, attributed in part to the cessation of smallpox vaccination and concomitant waning of population-level immunity. In July 2015, a female resident of interior Alaska, presented to an urgent care clinic with a dermal lesion consistent with poxvirus infection. Laboratory testing of a virus isolated from the lesion confirmed infection by an Orthopoxvirus. Methods. The virus isolate was characterized by using electron microscopy and nucleic acid sequencing. An epidemiologic investigation that included patient interviews, contact tracing and serum testing, as well as environmental and small mammal sampling was conducted to identify the infection source and possible additional cases. Results. Neither signs of active infection nor evidence of recent prior infection were observed in any of the 4 patient contacts identified. The patient's infection source was not definitively identified. Potential routes of exposure included imported fomites from Azerbaijan by the patient's cohabiting partner, or from wild small mammals in or around the patient's residence. Phylogenetic analyses demonstrated that the virus represents a distinct and previously undescribed genetic lineage of Orthopoxvirus, which is most closely related to the Old World orthopoxviruses. Conclusions. Investigation findings point to infection of the patient following exposure in or near Fairbanks. This conclusion raises questions about the geographic origins (Old World versus North American) of the genus Orthopoxvirus. Clinicians should remain vigilant for signs of poxvirus infection and alert public health officials when cases are suspected.
Data from: Novel orthopoxvirus infection in an Alaska resident
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