Ultrasmall Cerium-EGCG Nanoparticles Ameliorate Sepsis via Macrophage Reprogramming and Ferroptosis Inhibition.
Wu Weijie, Ma Chao, Xi Wenjie, Zhao Le, Huang Minghai, Yang Shushu, Fu Rao, Kang Yang, Chi Xinjin
Abstract
Sepsis is a life-threatening organ dysfunction caused by a dysregulated host response to infection, in which oxidative stress, ferroptosis, and macrophage-driven immune dysregulation form a self-amplifying pathological cycle. Epigallocatechin gallate (EGCG), a natural polyphenol with antioxidant and immunomodulatory activities, holds therapeutic potential for sepsis but is limited by rapid metabolism and low bioavailability. To overcome these limitations, we constructed ultrasmall Ce-EGCG nanoparticles (NPs) via one-pot metal-phenolic coordination self-assembly between cerium ions and EGCG. The resulting NPs exhibited excellent colloidal stability and efficient cellular internalization. Ce-EGCG NPs displayed dual catalase- and superoxide-dismutase-mimetic activities, scavenging both cytosolic and mitochondrial reactive oxygen species, and consistently outperformed equivalent doses of free EGCG and free Ce ions, demonstrating that the assembled metal-phenolic architecture is essential for the observed activity. In LPS- or H2O2-stimulated macrophages, Ce-EGCG NPs reversed Fe2+ overload, suppressed lipid peroxidation, and reprogrammed macrophages from a pro-inflammatory M1 toward an anti-inflammatory M2 phenotype. In CLP-induced septic mice, Ce-EGCG NPs ameliorated multi-organ injury, attenuated systemic cytokine storm, and improved survival, while showing favorable biosafety. Mechanistically, Ce-EGCG NPs activate the Nrf2/HO-1/NQO1 antioxidant axis and the GPX4/SLC7A11/ACSL4 anti-ferroptotic axis. Together, these findings show that Ce-EGCG NPs break the oxidative-ferroptotic-inflammatory cycle of sepsis through coordinated antioxidant, anti-ferroptotic, and immunomodulatory actions, offering a rationally designed nanotherapeutic strategy for sepsis and related inflammatory conditions.
Key Findings
- Ultrasmall Ce-EGCG nanoparticles exhibit catalase- and superoxide-dismutase-mimetic activities, effectively scavenging reactive oxygen species.
- Ce-EGCG NPs reverse Fe2+ overload, suppress lipid peroxidation, and reprogram macrophages from pro-inflammatory M1 to anti-inflammatory M2 phenotype.
- In septic mice, Ce-EGCG NPs activate the Nrf2/HO-1/NQO1 antioxidant axis and the GPX4/SLC7A11/ACSL4 anti-ferroptotic axis, reducing multi-organ injury and improving survival.
Clinical Significance
Ce-EGCG nanoparticles offer a novel nanotherapeutic approach to sepsis by disrupting the oxidative-ferroptotic-inflammatory cycle, potentially improving outcomes in sepsis and related inflammatory diseases.
Citation
Wu Weijie, Ma Chao, Xi Wenjieet al.. Ultrasmall Cerium-EGCG Nanoparticles Ameliorate Sepsis via Macrophage Reprogramming and Ferroptosis Inhibition. ACS applied materials & interfaces. 2026-Aug-21.