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Necroptosis of infiltrated macrophages drives Yersinia pestis dispersal within buboes
Mohammad Arifuzzaman, W.X. Gladys Ang, Hae Woong Choi, Matthew L. Nilles, Ashley L. St. John, Soman N. Abraham
Mohammad Arifuzzaman, W.X. Gladys Ang, Hae Woong Choi, Matthew L. Nilles, Ashley L. St. John, Soman N. Abraham
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Research Article Immunology Microbiology

Necroptosis of infiltrated macrophages drives Yersinia pestis dispersal within buboes

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Abstract

When draining lymph nodes become infected by Yersinia pestis (Y. pestis), a massive influx of phagocytic cells occurs, resulting in distended and necrotic structures known as buboes. The bubonic stage of the Y. pestis life cycle precedes septicemia, which is facilitated by trafficking of infected mononuclear phagocytes through these buboes. However, how Y. pestis convert these immunocytes recruited by host to contain the pathogen into vehicles for bacterial dispersal and the role of immune cell death in this context are unknown. We show that the lymphatic spread requires Yersinia outer protein J (YopJ), which triggers death of infected macrophages by downregulating a suppressor of receptor-interacting protein kinase 1–mediated (RIPK1-mediated) cell death programs. The YopJ-triggered cell death was identified as necroptotic, which released intracellular bacteria, allowing them to infect new neighboring cell targets. Dying macrophages also produced chemotactic sphingosine 1-phosphate, enhancing cell-to-cell contact, further promoting infection. This necroptosis-driven expansion of infected macrophages in buboes maximized the number of bacteria-bearing macrophages reaching secondary lymph nodes, leading to sepsis. In support, necrostatins confined bacteria within macrophages and protected mice from lethal infection. These findings define necrotization of buboes as a mechanism for bacterial spread and a potential target for therapeutic intervention.

Authors

Mohammad Arifuzzaman, W.X. Gladys Ang, Hae Woong Choi, Matthew L. Nilles, Ashley L. St. John, Soman N. Abraham

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Figure 3

Virulence of YopJ depends on RIPK1-mediated programed cell death.

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Virulence of YopJ depends on RIPK1-mediated programed cell death.
(A) Re...
(A) Representative images showing degree of necrosis in PNs revealed by propidium iodide staining 24 h.p.i. with Kim5 or ΔyopJ strains (n = 2). Scale bar 100 μm. (B) Quantification of dead cells in the PNs by flow cytometry (n = 3–4). Data are representative of 2 independent experiments. (C) Lysis of BMDMs isolated from WT or RipK1D138N/D138N mice following in vitro infection with Kim5 or ΔyopJ (MOI 10). Data are representative of 3 independent experiments. (D) Bacterial counts in INs relative to bacterial counts in PNs 24 hours after footpad infection (n = 3). (E) Survival of WT and RipK1D138N/D138N mice following footpad challenge with Kim5 bacteria. Data are combined from 2 independent experiments, each with 5–6 mice per group. (F) Lysis of J774A.1 macrophages at 8 h.p.i. during Kim5 or ΔyopJ infections in the presence or absence of Necrostatin-1 (Nec-1, 30 μM) (n = 3). (G) Flow cytometry plots and percentage graph showing infection of neighboring macrophages from Kim5-OFP or ΔyopJ-OFP infected macrophages in the presence or absence of Nec-1, 10 hours after initial infection (n = 3). Data are representative of 2 independent experiments. (H) Survival of Kim5-infected mice with or without Nec-1s treatment. Data are combined from 2 independent experiments, n = 5 in each experiment. Significance for Kaplan-Meier curves was determined by the log-rank test. Other data were analyzed via 1-way ANOVA. *P < 0.05, **P < 0.01, ***P < 0.001.

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