Dong Jiahao, Zhang Zirui, Chen Tao
The interplay between ferroptosis and neuroinflammation during secondary injury after spinal cord injury (SCI) critically drives permanent neurological dysfunction. Targeting both processes simultaneously is a promising therapeutic strategy. Tetramethylpyrazine (TMP), the main active component of Ligusticum chuanxiong, exhibits multi-target neuroprotective properties. This review systematically summarizes TMP's role in inhibiting ferroptosis and neuroinflammation after SCI by modulating the Nrf2/JNK signaling axis. We first outline TMP's chemical structure, bioavailability, and protective effects in SCI models. Next, we elucidate the Nrf2/ARE pathway as a hub for anti-ferroptosis defense and the JNK/AP-1 pathway as a driver of inflammation and apoptosis. We then explore crosstalk between these pathways via ROS, Trx-1, and p62. Existing evidence positions TMP as a "pathway crosstalk" modulator that activates Nrf2 and inhibits JNK through multiple mechanisms, including Keap1/ASK1 modification, ROS scavenging, and adaptor protein regulation. From a spatiotemporal perspective, we analyze the phased evolution of ferroptosis and inflammation, proposing TMP's time-sequential dual regulation: early-phase anti-ferroptosis and late-phase anti-inflammation. Finally, we identify current research limitations in mechanistic depth, pathway crosstalk evidence, and translational studies, and offer future directions. This review provides an integrated viewpoint for TMP in SCI treatment, a paradigm for understanding multi-target natural products, and a theoretical foundation for shifting from antioxidant to pro-regenerative strategies.