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Han-Chun Yang

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Open access Sep 2026

African swine fever virus impairs porcine alveolar macrophages bactericidal function by disrupting lysosomal acidification and cathepsin activity

African swine fever virus (ASFV) is a devastating pathogen that poses a severe threat to the global swine industry. ASFV primarily targets the porcine monocyte-macrophage system, which is crucial for defending against bacterial infections via phagocytosis and subsequent intracellular degradation. Clinically, ASFV infection can be complicated by severe secondary bacterial infections. This creates a compelling paradox: while prior in vitro studies indicate that ASFV actually increases the phagocytic activity of porcine alveolar macrophages (PAMs), clinical observations frequently report severe secondary bacterial infections. This contradiction led us to hypothesize that the downstream intracellular bactericidal clearance might be compromised. Here, utilizing an in vitro co-infection model, it was demonstrated that ASFV significantly impairs the bactericidal capacity of PAMs against representative bacteria (Escherichia coli, Glaesserella parasuis, and Streptococcus suis), facilitating their intracellular survival and persistence. Although ASFV infection triggers massive reactive oxygen species (ROS) production, this oxidative stress remains functionally ineffective because phagolysosomal acidification and structural integrity are profoundly impaired. Mechanistically, at the late stage of infection, ASFV launches a multipronged assault on the endolysosomal network. Structurally, ASFV inhibits phagosomal and lysosomal acidification while inducing oxidative stress-driven severe lysosomal membrane permeabilization (LMP), leading to reduced phagolysosome volume and physical depletion of the lysosomal pool. Molecularly, ASFV impairs degradative capacity through the transcriptional suppression and blunted lysosomal enrichment of vacuolar (H+) ATPase (V-ATPase) subunits, alongside the disruption of lysosomal protease cathepsin D (CTSD) maturation. Furthermore, systematic screening identified six core candidate viral proteins, including CP530R, D129R, E183L, O174L, Q706L, and QP509R, that profoundly suppress both ATP6V0D and CTSK transcription, further exacerbating this functional impairment. Collectively, our in vitro findings reveal that ASFV dismantles host phagolysosomal acidification, thereby neutralizing the microbicidal potential of infected macrophages and potentially converting them into a permissive niche for secondary bacterial pathogens. These observations provide critical new mechanistic insights that may help explain ASFV-associated immune dysfunction at the cellular level.

Zhen Xu, Feng-Yang Shi, Zhi-Yong Xiang et al. · 0 citations
Open access Jul 2026

Integrated Single‐Cell and TCR Profiling Reveals Protection‐Associated CD8+ T Cell Subsets Linked to Viral Control in PRRSV

ABSTRACT Porcine reproductive and respiratory syndrome virus (PRRSV) remains a major threat to global swine industry, yet the immune mechanisms underlying protective vaccination are incompletely understood. Here, we applied integrated single‐cell RNA sequencing and T cell receptor (TCR) profiling to characterize immune responses in a PRRSV vaccination–challenge model spanning complete, partial, and non‐protection outcomes. We identified distinct CD8+ T cell subsets that were selectively enriched in protected animals vaccinated with modified live vaccine (MLV) and marked by clonal expansion, strong cytotoxic transcriptional programs, and enhanced functional activity, which correlated with rapid control of viremia after challenge. In contrast, non‐protected animals accumulated dysfunctional CD8+ T cells expressing exhaustion‐associated markers such as CTLA4 despite partial cytotoxic signatures. Mechanistically, the protection‐associated responses were primarily driven by viral structural proteins (SP). Replacing the SP‐coding region of a heterologous strain reshaped the CD8+ T cell landscape from a mixed cytotoxic/exhausted profile toward a protective program, accompanied by improved clinical outcomes. Further, optimal CD8+ T cell activation required macrophages/monocytes‐derived innate signaling, including TLR4 and TLR8 pathways, and was enhanced by CD4+ T cell help. Together, our findings define protection‐associated CD8+ T cell states linked to viral control and provide insights for rational PRRSV vaccine design.

C. Kong, Siang Chen, Maolin Li et al. · 0 citations

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