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Updated: Aug 6, 2026

An Adoptive Transfer Model of Rheumatoid Arthritis in Mice
Published on: June 6, 2025
Biomimetic nanosystem rewires microRNA-mediated inflammatory circuits and disrupts ROS crosstalk for multifaceted
Youcong Gong1, Zijia Zhou2, Jinkun Huang2
1Marshall Laboratory of Biomedical Engineering, Precision Medicine and Health Research Institute, Shenzhen Key Laboratory for Nano-Biosensing Technology, Guangdong Key Laboratory of Biomedical Measurements and Ultrasound Imaging, School of Biomedical Engineering, Shenzhen University Medical School, Shenzhen University, Shenzhen, 518060, China; College of Physics and Optoelectronic Engineering, Shenzhen University, Shenzhen, 518060, China.
None:
Rheumatoid arthritis (RA) persists due to the intractable pro-inflammatory M1 macrophage phenotype, sustained by dysregulated cytokine/reactive oxygen species (ROS) production, where conventional single-target therapies fail to achieve durable M1-to-M2 repolarization. To address this, we develop DPPDz@EXO, a biomimetic nanosystem that integrates M1 responsiveness with multi-target therapy functionality. Its core (DPP) consists of redox-sensitive polydopamine nanoparticles modified with dihydrolipoic acid and polyethyleneimine, enabling ROS scavenging and delivery of a miRNA-programmed DNAzyme (Dz). The Dz stays inactive in healthy cells but is selectively activated by M1 macrophage-overexpressed miRNA-155, triggering cleavage of upstream regulator miRNA-342. This initiates a self-amplifying regulatory cascade, in which suppression of pro-inflammatory miRNA-155 leads to inhibition of JAK/STAT signaling, while concurrent upregulation of anti-inflammatory miRNA-let-7e attenuates NF-κB activation. Together, these effects synergistically suppress multiple pro-inflammatory pathways at their root. An outer shell of M2 macrophage-derived exosomes (EXO) provides inflammation-targeted delivery and inherent immunomodulatory signals. By simultaneously rewiring pathogenic miRNA networks, scavenging ROS, and reinforcing M2 polarization, DPPDz@EXO achieves effective and sustained M1-to-M2 repolarization and mitigates RA progression. This study introduces a comprehensive strategy integrating synthetic nanotechnology with endogenous immunoregulatory mechanisms, offering a powerful and adaptable platform for multi-target RA therapy.
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