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Biology subjects

Walper, F.

Publications and source records attributed to Walper, F..

4 recordsLinked to original sources

Antigenic cartography using variant-specific hamster sera reveals substantial antigenic variation among Omicron subvariants

SARS-CoV-2 has developed substantial antigenic variability. As the majority of the population now has pre-existing immunity due to infection or vaccination, the use of experimentally generated animal immune sera can be valuable for measuring antigenic differences between virus variants. Here, we immunized Syrian hamsters by two successive infections with one of eight SARS-CoV-2 variants. Their sera were titrated against 14 SARS-CoV-2 variants and the resulting titers visualized using antigenic cartography. The antigenic map shows a condensed cluster containing all pre-Omicron variants (D614G, Alpha, Delta, Beta, Mu, and an engineered B.1+E484K variant), and a considerably more distributed positioning among a selected panel of Omicron subvariants (BA.1, BA.2, BA.4/5, the BA.5 descendants BF.7 and BQ.1.18; the BA.2.75 descendant BN.1.3.1; and the BA.2-derived recombinant XBB.2). Some Omicron subvariants were as antigenically distinct from each other as the wildtype is from the Omicron BA.1 variant. The results highlight the potential of using variant-specifically infected hamster sera for the continued antigenic characterisation of SARS-CoV-2.

immunology↗

HIV-1 infection causes depletion of monocytic cells through a non-canonical cell death pathway

Programmed cell death is a regulatory mechanism to eliminate infected or damaged cells. Several programmed cell death pathways exist, including apoptosis, necroptosis and pyroptosis, which can be distinguished by the cellular molecules involved. Here we show that infection of monocytic cells with HIV-1 causes cell death, which is dose- and cell type dependent and occurs independently of nucleic acid sensing or interferon (IFN) signaling. Death is observed in the case of near full-length viruses that produce viral proteins upon infection, but not in case of a minimal lentiviral vector that does not express viral gene products, demonstrating the necessity of viral gene products or a near-full length RNA genome to trigger death. Inhibition of reverse transcription or integration rescues cells, indicating that a step after integration is responsible. Using mutant viruses, we further narrow down the step in the retroviral replication cycle that triggers death. Inhibition of diverse cell death pathways individually cannot rescue cells from death following infection, consistent with PANoptosis, a cellular death process that cannot be accounted for by any single programmed cell death pathway alone. Our results elucidate the viral and cellular determinants of cell death caused by HIV-1 infection and outline cellular responses that result in the depletion of specific cell populations.

microbiology↗

Genetic variability, including gene duplication and deletion, in early sequences from the 2022 European monkeypox outbreak

Genome sequences from 47 monkeypox virus infections detected in a German university virology laboratory were analyzed in context of other sequences from the 2022 outbreak and earlier monkeypox genomes. Identical non-synonymous amino acid changes in six genes and the signature of APOBEC editing match other sequences from the European outbreak. Non-synonymous changes that were present in one to three sequences were found in 34 other genes. In sequences from two lesions of one patient, an 856 nucleotide translocation between genome termini resulted in the duplication of an initial 5 gene, and the disruption or complete deletion of four genes near the 3 genome end. Orthopoxvirus genome rearrangements of this nature are known to confer fitness advantages in the face of selection pressure. This change may therefore represent an early virus adaptation in the novel widespread and sustained human-to-human context of the current monkeypox outbreak.

bioinformatics↗

Post-entry, spike-dependent replication advantage of B.1.1.7 and B.1.617.2 over B.1 SARS-CoV-2 in an ACE2-deficient human lung cell line

Epidemiological data demonstrate that SARS-CoV-2 variants of concern (VOC) B.1.1.7 and B.1.617.2 are more transmissible and infections are associated with a higher mortality than non-VOC virus infections. Phenotypic properties underlying their enhanced spread in the human population remain unknown. B.1.1.7 virus isolates displayed inferior or equivalent spread in most cell lines and primary cells compared to an ancestral B.1 SARS-CoV-2, and were outcompeted by the latter. Lower infectivity and delayed entry kinetics of B.1.1.7 viruses were accompanied by inefficient proteolytic processing of spike. B.1.1.7 viruses failed to escape from neutralizing antibodies, but slightly dampened induction of innate immunity. The bronchial cell line NCI-H1299 supported 24- and 595-fold increased growth of B.1.1.7 and B.1.617.2 viruses, respectively, in the absence of detectable ACE2 expression and in a spike-determined fashion. Superior spread in NCI-H1299 cells suggests that VOCs employ a distinct set of cellular cofactors that may be unavailable in standard cell lines.

microbiology↗