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Updated: Feb 11, 2026

Author Spotlight: Advancing Syphilis Research — Innovations in Treponema pallidum Cultivation and Genetic Engineering
Published on: January 24, 2025
Akt, mTOR and NF-κB pathway activation in Treponema pallidum stimulates M1 macrophages
Li-Rong Lin1, Zheng-Xiang Gao2, Yong Lin1
1Zhongshan Hospital, Medical College of Xiamen University, Xiamen 361004, China; Institute of Infectious Disease, Medical College of Xiamen University, Xiamen 361004, China.
Abstract:
The polarization of macrophages and the molecular mechanism involved during the early process of syphilis infection remain unknown. This study was conducted to explore the influence of Treponema pallidum (T. pallidum) treatment on macrophage polarization and the Akt-mTOR-NFκB signaling pathway mechanism involved in this process. M0 macrophages derived from the phorbol-12-myristate-13-acetate-induced human acute monocytic leukemia cell line THP-1 were cultured with T. pallidum. T. pallidum induced inflammatory cytokine (IL-1β and TNF-α) expression in a dose- and time-dependent manner. However IL-10 cytokine expression decreased at the mRNA and protein levels. Additionally, the expression of the M1 surface marker iNOS was up-regulated with incubation time, and the expression of the M2 surface marker CD206 was low (vs. PBS treated macrophages, P < 0.001) and did not fluctuate over 12 h. Further studies revealed that Akt-mTOR-NFκB pathway proteins, including p-Akt, p-mTOR, p-S6, p-p65, and p-IκBα, were significantly higher in the T. pallidum-treated macrophages than in the PBS-treated macrophages (P < 0.05). In addition, inflammatory cytokine expression was suppressed in T. pallidum-induced M1 macrophages pretreated with LY294002 (an Akt-specific inhibitor) or PDTC (an NF-κB inhibitor), while inflammatory cytokine levels increased in T. pallidum-induced M1 macrophages pretreated with rapamycin (an mTOR inhibitor). These findings revealed that T. pallidum promotes the macrophage transition to pro-inflammatory M1 macrophages in vitro. The present study also provides evidence that Akt, mTOR and NF-κB pathway activation in T. pallidum stimulates M1 macrophages. This study provides novel insights into the innate immune response to T. pallidum infection.
Insights
Treponema pallidum infection drives macrophages to a pro-inflammatory M1 state. This involves the Akt-mTOR-NFκB pathway, offering insights into syphilis innate immunity.
Area of Science:
- Immunology
- Microbiology
- Cell Biology
Background:
- The early immune response to Treponema pallidum (T. pallidum), the causative agent of syphilis, is not fully understood.
- Macrophage polarization plays a critical role in host defense but its specific role in early syphilis remains unclear.
Purpose of the Study:
- To investigate the effect of T. pallidum on macrophage polarization.
- To elucidate the molecular mechanisms, specifically the Akt-mTOR-NFκB signaling pathway, involved in T. pallidum-induced macrophage polarization.
Main Methods:
- Human acute monocytic leukemia THP-1 cells were differentiated into M0 macrophages and treated with T. pallidum.
- Macrophage polarization markers (iNOS, CD206), inflammatory cytokines (IL-1β, TNF-α, IL-10), and signaling pathway proteins (p-Akt, p-mTOR, p-S6, p-p65, p-IκBα) were analyzed.
- Specific pathway inhibitors (LY294002, PDTC, rapamycin) were used to confirm the role of the Akt-mTOR-NFκB pathway.
Main Results:
- T. pallidum treatment induced a dose- and time-dependent increase in pro-inflammatory cytokines (IL-1β, TNF-α) and M1 marker iNOS.
- IL-10 and M2 marker CD206 expression were significantly decreased or remained low.
- Activation of Akt, mTOR, and NF-κB signaling pathways was observed in T. pallidum-treated macrophages.
- Inhibitor studies confirmed the involvement of Akt, mTOR, and NF-κB in T. pallidum-induced M1 polarization.
Conclusions:
- T. pallidum promotes the polarization of macrophages towards a pro-inflammatory M1 phenotype in vitro.
- The Akt-mTOR-NFκB signaling pathway is a key mediator of T. pallidum-induced M1 macrophage polarization.
- These findings provide novel insights into the innate immune response during the early stages of syphilis infection.
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