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T. pallidum achieves immune evasion by blocking autophagic flux in microglia through hexokinase 2
Xiao-Tong Wang1, Lin Xie2, Yun-Ting Hu2
1Center of Clinical Laboratory, Zhongshan Hospital of Xiamen University, School of Medicine, Xiamen University, Xiamen, China; Department of Laboratory, Tianjin Medical University Cancer Institute and Hospital, Tianjin Key Laboratory of Digestive Cancer, National Clinical Research Center for Cancer, Key Laboratory of Cancer Prevention and Therapy, Tianjin's Clinical Research Center for Cancer, Tianjin, China.
Abstract:
Increasing evidence suggests that immune cell clearance is closely linked to cellular metabolism. Neurosyphilis, a severe neurological disorder caused by Treponema pallidum (T. pallidum) infection, significantly impacts the brain. Microglia, the innate immune cells of the central nervous system, play a critical role in neuroinflammation and immune surveillance. However, the inability of the nervous system to fully eliminate T. pallidum points to a compromised clearance function of microglia. This study investigates how T. pallidum alters the immune clearance ability of microglia and explores the underlying metabolic mechanisms. RNA sequencing (RNA seq), LC-MS metabolomics, and XFe96 Seahorse assays were employed to assess metabolic activity in microglial cells. Western blotting, qPCR, and immunofluorescence imaging were utilized to evaluate autophagy flux and extent of T. pallidum infections. Transcriptomic analysis revealed that T. pallidum alters the transcription expression of key glycolytic enzymes, including hexokinase 1 (HK1), hexokinase 2 (HK2), and lactate dehydrogenase A (LDHA), leading to significant metabolic dysregulation. Specifically, metabolomic analysis showed reduced levels of phosphoenolpyruvate and citrate, while lactate production was notably increased. Functional assays confirmed that T. pallidum impairs glycolytic activity in microglial, as evidenced by decreased glycolytic flux, glycolytic reserve capacity, and maximum glycolytic capacity. Moreover, our results indicate that HK2, a crucial glycolytic enzyme, is closely associated with the autophagy. T. pallidum infection inhibits HK2 expression, which in turn suppresses autophagic flux by reducing the formation of lysosome-associated membrane protein 2 (LAMP2) and disrupting autophagosome-lysosome fusion. These findings suggest that T. pallidum hijacks microglial metabolic pathways, specifically glycolysis, to evade immune clearance. By inhibiting the glycolytic enzyme HK2, T. pallidum modulates autophagy and enhances immune evasion, providing a novel insight into the pathogenesis of neurosyphilis. This study paves the way for further investigations into the role of metabolic reprogramming in the immune escape mechanisms of T. pallidum.
Insights
Treponema pallidum impairs microglial immune clearance in neurosyphilis by disrupting glycolysis and autophagy. The bacterium inhibits hexokinase 2 (HK2), hindering bacterial elimination and promoting immune evasion.
Area of Science:
- Neuroimmunology
- Cellular Metabolism
- Infectious Diseases
Background:
- Neurosyphilis, caused by Treponema pallidum (T. pallidum), involves brain inflammation and impaired immune cell function.
- Microglia, the CNS immune cells, are crucial for neuroinflammation and pathogen clearance.
- The inability to eliminate T. pallidum suggests compromised microglial immune clearance.
Purpose of the Study:
- Investigate how T. pallidum affects microglial immune clearance.
- Explore the underlying metabolic mechanisms of this immune evasion.
- Determine the role of glycolysis and autophagy in T. pallidum infection of microglia.
Main Methods:
- RNA sequencing (RNA seq) and LC-MS metabolomics for metabolic profiling.
- XFe96 Seahorse assays to assess microglial metabolic activity.
- Western blotting, qPCR, and immunofluorescence for autophagy flux and infection levels.
Main Results:
- T. pallidum alters expression of glycolytic enzymes (HK1, HK2, LDHA), causing metabolic dysregulation.
- Reduced phosphoenolpyruvate and citrate, increased lactate production observed.
- Microglial glycolysis, glycolytic reserve, and maximum capacity were impaired.
- T. pallidum infection inhibited HK2 expression, suppressing autophagy by affecting LAMP2 and autophagosome-lysosome fusion.
Conclusions:
- T. pallidum hijacks microglial glycolysis to evade immune clearance.
- Inhibition of HK2 by T. pallidum modulates autophagy and enhances immune evasion.
- Metabolic reprogramming is a key mechanism in T. pallidum immune escape during neurosyphilis.
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