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Stolte-Leeb, N.

Publications and source records attributed to Stolte-Leeb, N..

2 recordsLinked to original sources

Glycoprotein K8.1 is Critical for Liver and Bone Marrow Tropism of Kaposi's Sarcoma-Associated Herpesvirus (KSHV) in the Marmoset Infection Model

Kaposis sarcoma-associated herpesvirus (KSHV) is a human tumor virus with significant disease burden, particularly in Sub-Saharan Africa, where Kaposis sarcoma is prevalent. KSHV disproportionately affects immunocompromised individuals and men who have sex with men. A suitable animal model is critical for the development of a preventive vaccine, as it must replicate viral spread and immune interactions. The common marmoset (Callithrix jacchus) had previously been established as conducive to KSHV infection with non-BAC-derived virus via the intravenous (i.v.) route. We used this animal model to establish the ability to infect marmosets with bacterial artificial chromosome (BAC)-derived KSHV and to establish the role of individual glycoproteins (GPs) in the colonization of specific host tissues. We infected three groups of four animals each with BAC16-derived KSHV wild type (wt), KSHV gHASAELAAN, or KSHV{Delta}K8.1. KSHV gHASAELAAN contains mutations in gH that interfere with binding to the EphA2 receptor, which normally forms a high-affinity complex with gH/gL, whereas KSHV{Delta}K8.1 does not express GP K8.1. The KSHV gHASAELAAN mutant was used at a relatively higher concentration to overcome its intrinsic defect and to allow for analysis of tissue tropism. While seroconversion to the KSHV LANA antigen was variable, all animals exhibited clearly detectable viral DNA load in many tissues. Highest loads were detected in spleen, liver, heart and bone marrow. Viral DNA loads in these four tissues did not significantly differ between groups infected with KSHV wt or with the gHASAELAAN mutant. However, KSHV{Delta}K8.1-infected animals exhibited significantly lower levels of viral DNA in liver and bone marrow, but not in spleen or heart. Analysis of immune cells demonstrated significant activation of CD4+ and CD8+ T-cells in KSHV wt-infected animals. In wt and gHASAELAAN-infected animals, different B cell subpopulations were found to expand after infection, which implies that the gH/gL glycoprotein complex may shape the host response to KSHV in unexpected ways. In summary, our findings demonstrate that neither the interaction with Eph family receptors nor GP K8.1 is essential for infection via the i.v. route but K8.1 plays a critical role for KSHV tissue tropism in vivo.

microbiology↗

Macrophage- and CD4+ T cell-derived SIV differ in glycosylation, infectivity and neutralization sensitivity

The human immunodeficiency virus (HIV) envelope protein (Env) mediates viral entry into host cells and is the primary target for the humoral immune response. Env is extensively glycosylated, and these glycans shield underlying epitopes from neutralizing antibodies. The glycosylation of Env is influenced by the type of host cell in which the virus is produced. Thus, HIV is distinctly glycosylated by CD4+ T cells, the major target cells, and macrophages. However, the specific differences in glycosylation between viruses produced in these cell types have not been explored at the molecular level. Moreover, the impact of these differences on viral spread and neutralization sensitivity remains largely unknown. To address these questions, we employed the simian immunodeficiency virus (SIV) model. Glycan analysis revealed higher relative levels of oligomannose-type N-glycans in SIV from CD4+ T cells (T-SIV) compared to SIV from macrophages (M-SIV), and the complex-type N-glycans profiles differed between the two viruses. Notably, M-SIV demonstrated greater infectivity than T-SIV, even when accounting for Env incorporation, suggesting that host cell-dependent factors influence infectivity. Further, M-SIV was more efficiently disseminated by HIV binding cellular lectins. We also evaluated the influence of cell type-dependent differences on SIVs vulnerability to carbohydrate binding agents (CBAs) and neutralizing antibodies. T-SIV demonstrated greater susceptibility to mannose-specific CBAs, possibly due to its elevated expression of oligomannose-type N-glycans. In contrast, M-SIV exhibited higher susceptibility to neutralizing sera in comparison to T-SIV. These findings underscore the importance of host cell-dependent attributes of SIV, such as glycosylation, in shaping both infectivity and the potential effectiveness of intervention strategies.

microbiology↗