Cell Membrane-Cloaked Polymeric Nanosystems Stabilize Vulnerable Plaques by Isolating Pro-Ferroptotic Phospholipids and Rescuing Macrophage viability

Background The progression of atherosclerosis is driven by the continuous accumulation of macrophage foam cells and their subsequent demise via ferroptosis—an iron-dependent, lipid peroxidation-driven form of cell death that expands the necrotic core. However, the clinical translation of anti-ferroptotic agents is severely hindered by poor localization to the vascular intima and rapid systemic clearance. Here, we engineered macrophage-biomimetic nanoparticles loaded with curcumin (Cum@MM-NPs) to actively target vulnerable plaques, halt localized ferroptosis, and systemically reprogram lipid metabolism. Methods Polymeric poly(lactic-co-glycolic acid) cores loaded with curcumin were cloaked with RAW264.7 macrophage-derived cell membranes via co-extrusion. in vitro cellular targeting, lipid handling, and anti-ferroptotic mechanisms were evaluated using oxidized LDL (ox-LDL)-stimulated macrophages. in vivo pharmacokinetic stability, homotypic plaque targeting, and therapeutic efficacy were comprehensively assessed in high-fat diet (HFD)-fed ApoE-/- mice. Furthermore, untargeted serum lipidomics were utilized to evaluate systemic metabolic reprogramming. Results Cum@MM-NPs exhibited a definitive core-shell architecture, successfully retained characteristic macrophage surface antigens, and demonstrated sustained curcumin release. in vitro , the biomimetic coating facilitated homotypic targeting to foam cells while rescuing them from ox-LDL-induced ferroptosis by chelating labile iron (Fe 2+ ), restoring GPX4 antioxidant defenses, and preventing pathological lipid droplet accumulation. in vivo , Cum@MM-NPs exhibited prolonged circulation and highly specific accumulation in aortic plaques. Therapeutically, Cum@MM-NP administration drastically reduced aortic plaque burden, inhibited local pro-inflammatory cytokine secretion, and stabilized vulnerable lesions by enhancing collagen-rich fibrous caps. Mechanistically, Cum@MM-NPs successfully arrested intraplaque ferroptosis, evidenced by normalized mitochondrial ultrastructure and cleared lipid peroxides (4-HNE). Beyond localized plaque stabilization, untargeted lipidomics revealed that the nanotherapy comprehensively reversed HFD-induced hepatic steatosis and systemically depleted circulating pro-ferroptotic polyunsaturated phosphatidylethanolamines (PE-PUFAs). Conclusions Cum@MM-NPs function as a highly biocompatible, dual-action nanotherapeutic platform. By simultaneously quenching localized vascular ferroptosis and systematically dismantling the pro-ferroptotic lipidome, this macrophage-biomimetic strategy offers a highly translatable paradigm for the treatment of advanced atherosclerosis and interconnected metabolic comorbidities.

Authors

Institutions

Publication Details

Journal
Materials Today Bio
Published
2026-09-01
DOI
https://doi.org/10.1016/j.mtbio.2026.103608
Primary Topic
Ferrocene Chemistry and Applications
Type
article
Field-Weighted Citation Impact
0.00
Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
article

Cell Membrane-Cloaked Polymeric Nanosystems Stabilize Vulnerable Plaques by Isolating Pro-Ferroptotic Phospholipids and Rescuing Macrophage viability

Xun Hu, Yuansheng Zhai, Chen Deng, Yan Liu et al.
Materials Today Bio
Ferrocene Chemistry and Applications
article

Cell Membrane-Cloaked Polymeric Nanosystems Stabilize Vulnerable Plaques by Isolating Pro-Ferroptotic Phospholipids and Rescuing Macrophage viability

Xun Hu, Yuansheng Zhai, Chen Deng, Yan Liu, Liang Li, Shiyu Chen, Weili Duan, Jingjing Zhao, Xinlin Luo, Junyu Chen, Xiao Ke, Rongfeng Yang, Jiajia Gao, Huanjun Ruan
article en

Abstract

Background The progression of atherosclerosis is driven by the continuous accumulation of macrophage foam cells and their subsequent demise via ferroptosis—an iron-dependent, lipid peroxidation-driven form of cell death that expands the necrotic core. However, the clinical translation of anti-ferroptotic agents is severely hindered by poor localization to the vascular intima and rapid systemic clearance. Here, we engineered macrophage-biomimetic nanoparticles loaded with curcumin (Cum@MM-NPs) to actively target vulnerable plaques, halt localized ferroptosis, and systemically reprogram lipid metabolism. Methods Polymeric poly(lactic-co-glycolic acid) cores loaded with curcumin were cloaked with RAW264.7 macrophage-derived cell membranes via co-extrusion. in vitro cellular targeting, lipid handling, and anti-ferroptotic mechanisms were evaluated using oxidized LDL (ox-LDL)-stimulated macrophages. in vivo pharmacokinetic stability, homotypic plaque targeting, and therapeutic efficacy were comprehensively assessed in high-fat diet (HFD)-fed ApoE-/- mice. Furthermore, untargeted serum lipidomics were utilized to evaluate systemic metabolic reprogramming. Results Cum@MM-NPs exhibited a definitive core-shell architecture, successfully retained characteristic macrophage surface antigens, and demonstrated sustained curcumin release. in vitro , the biomimetic coating facilitated homotypic targeting to foam cells while rescuing them from ox-LDL-induced ferroptosis by chelating labile iron (Fe 2+ ), restoring GPX4 antioxidant defenses, and preventing pathological lipid droplet accumulation. in vivo , Cum@MM-NPs exhibited prolonged circulation and highly specific accumulation in aortic plaques. Therapeutically, Cum@MM-NP administration drastically reduced aortic plaque burden, inhibited local pro-inflammatory cytokine secretion, and stabilized vulnerable lesions by enhancing collagen-rich fibrous caps. Mechanistically, Cum@MM-NPs successfully arrested intraplaque ferroptosis, evidenced by normalized mitochondrial ultrastructure and cleared lipid peroxides (4-HNE). Beyond localized plaque stabilization, untargeted lipidomics revealed that the nanotherapy comprehensively reversed HFD-induced hepatic steatosis and systemically depleted circulating pro-ferroptotic polyunsaturated phosphatidylethanolamines (PE-PUFAs). Conclusions Cum@MM-NPs function as a highly biocompatible, dual-action nanotherapeutic platform. By simultaneously quenching localized vascular ferroptosis and systematically dismantling the pro-ferroptotic lipidome, this macrophage-biomimetic strategy offers a highly translatable paradigm for the treatment of advanced atherosclerosis and interconnected metabolic comorbidities.

Materials Today Bio
Sun Yat-sen University (CN), Jinan University (CN), Chinese Academy of Medical Sciences & Peking Union Medical College (CN), CARE Canada (CA), The First Affiliated Hospital, Sun Yat-sen University (CN), Shenzhen Bao'an District People's Hospital (CN), Huizhou Central People's Hospital (CN), University of Hong Kong - Shenzhen Hospital (CN), Shenzhen Pingle Orthopedic Hospital (CN), Fu Wai Hospital (CN), University of Hong Kong (HK)
Openalex Percentile: Top 19%
Ferrocene Chemistry and Applications
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.