Integrated network toxicology and transcriptomics reveal NF-κB signaling as a key mediator of TDCPP-induced inflammatory responses in human microglia

  • Environ Int. 2026 Jun 15:214:110373. doi: 10.1016/j.envint.2026.110373.
Chuyan Zhang  1 Tao Song  2 Jialin Zhou  1 Xinran Wang  1 Xia Rao  1 Chan Ding  1 Haitao Cao  1 Zhaoqiang Jiang  1 Yongxin Li  1 Huadong Xu  3 Jianlin Lou  4
Affiliations
  • 1. School of Public Health, Hangzhou Medical College, Hangzhou, Zhejiang, China.
  • 2. Huzhou Key Laboratory of Precise Prevention and Control of Major Chronic Diseases, School of Medicine, and The First Affiliated Hospital, Huzhou Normal University, Huzhou, Zhejiang, China; School of Science, Huzhou Normal University, Huzhou, Zhejiang, China.
  • 3. School of Public Health, Hangzhou Medical College, Hangzhou, Zhejiang, China. Electronic address: [email protected].
  • 4. School of Public Health, Hangzhou Medical College, Hangzhou, Zhejiang, China; Huzhou Key Laboratory of Precise Prevention and Control of Major Chronic Diseases, School of Medicine, and The First Affiliated Hospital, Huzhou Normal University, Huzhou, Zhejiang, China; School of Science, Huzhou Normal University, Huzhou, Zhejiang, China. Electronic address: [email protected].
Abstract

Tris(1,3-dichloro-2-propyl) phosphate (TDCPP) is a ubiquitous organophosphorus flame retardant linked to neurodevelopmental disorders. However, the molecular cascades driving its neurotoxicity, particularly microglial-mediated neuroinflammation, remain incompletely understood. Here, we applied an integrated systems toxicology strategy combining network toxicology, transcriptomics, and experimental validation to identify key pathways mediating TDCPP-induced neurotoxicity. Initial in silico screening of 14 organophosphorus flame retardants (OPFRs) identified TDCPP as a high-priority candidate with prominent predicted neurotoxicity. Integration of network-predicted pathways with transcriptomic profiles from TDCPP-exposed human microglia (HMC3) identified the NF-κB signaling pathway as a key mediator. Experimental validation confirmed that TDCPP activated the canonical NF-κB pathway, characterized by p65 phosphorylation, IκBα degradation, p65 nuclear translocation, and NFKB1 upregulation. This triggered the transcription of pro-inflammatory mediators (IL6, IL1B, TNF, PTGS2) and a secretome shift involving cytokine surges and compensatory IL-10 release. Pharmacological blockade using BAY 11-7082 and siRNA-mediated knockdown of p65 effectively reversed these pro-inflammatory alterations, establishing a causal link. Collectively, this study demonstrates that TDCPP disrupts microglial homeostasis by hijacking the NF-κB signaling axis. These findings indicate that TDCPP alters microglial immune homeostasis and triggers inflammatory responses, which may serve as a mechanistic link to OPFR-associated neurotoxicity, providing a potential target for mitigation.

Keywords
HMC3 cells; NF-κB signaling pathway; Network toxicology; Neuroinflammation; Neurotoxicity; Organophosphorus flame retardants; TDCPP.
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