Immunoregulatory artificial lymph nodes restore antigen-specific tolerance in advanced multiple sclerosis

Tolerogenic dendritic cell (tolDC) vaccines are a promising antigen-specific therapy for multiple sclerosis (MS), yet their efficacy is limited by poor homing to secondary lymphoid organs and rapid loss of the tolerogenic phenotype in native inflamed lymph nodes. Here, we developed a 3D-printed tolerogenic artificial lymph node (tol-aLN) that creates a protected immune niche for durable tolerance induction. tolDCs were loaded onto a porous gelatin methacrylate scaffold engineered for sustained C-C motif chemokine ligand 21 (CCL21) release, recruiting naïve CD4 + T cells and shielding tolDCs from an inflammatory lymph node. Geometric optimization of an orthogonal lattice scaffold enhanced spatially confined DC–T cell interactions, promoting robust and stable induction of regulatory T cells (T reg cells). In experimental autoimmune encephalomyelitis (EAE), tol-aLN implantation attenuated disease even at advanced stages by inducing antigen-specific Foxp3 + T reg cells that trafficked to the spleen, lymph nodes, and central nervous system (CNS). Conditional T reg cell depletion abolished therapeutic efficacy, indicating that T reg cells are necessary mediators of tol-aLN–induced protection. Long-term studies revealed sustained remission without impairing systemic immunity. In a myelin oligodendrocyte glycoprotein (amino acids 1 to 125) (MOG 1–125 )–induced EAE model, multivalent tol-aLN also efficiently suppressed inflammatory B cells and autoantibody production, reprogramming CNS B cells toward a regulatory state. Single-cell transcriptomics further revealed a global reduction in interferon-stimulated gene activity and restoration of homeostatic microglial phenotypes. Collectively, tol-aLN offers a scalable, antigen-specific platform for immune tolerance and CNS protection, with translational potential for MS and other autoimmune diseases.

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Publication Details

Journal
Science Translational Medicine
Published
2026-10-07
DOI
https://doi.org/10.1126/scitranslmed.aea7960
Primary Topic
Multiple Sclerosis Research Studies
Type
article
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article

Immunoregulatory artificial lymph nodes restore antigen-specific tolerance in advanced multiple sclerosis

Ya Liu, Fangling Liao, Xiaobao Cao, Xing‐Jie Liang et al.
Science Translational Medicine
Multiple Sclerosis Research Studies
article

Immunoregulatory artificial lymph nodes restore antigen-specific tolerance in advanced multiple sclerosis

Ya Liu, Fangling Liao, Xiaobao Cao, Xing‐Jie Liang, Weisheng Guo, Qi Gu, Jingyu Qi, Jingsen Ji, Xinhuan Wang, Yuying Yao, Leyan Xuan, Jing Zhang, Jiaqing Wan, Gengyou Li, Lu Liu, Guangting Xie
article en

Abstract

Tolerogenic dendritic cell (tolDC) vaccines are a promising antigen-specific therapy for multiple sclerosis (MS), yet their efficacy is limited by poor homing to secondary lymphoid organs and rapid loss of the tolerogenic phenotype in native inflamed lymph nodes. Here, we developed a 3D-printed tolerogenic artificial lymph node (tol-aLN) that creates a protected immune niche for durable tolerance induction. tolDCs were loaded onto a porous gelatin methacrylate scaffold engineered for sustained C-C motif chemokine ligand 21 (CCL21) release, recruiting naïve CD4 + T cells and shielding tolDCs from an inflammatory lymph node. Geometric optimization of an orthogonal lattice scaffold enhanced spatially confined DC–T cell interactions, promoting robust and stable induction of regulatory T cells (T reg cells). In experimental autoimmune encephalomyelitis (EAE), tol-aLN implantation attenuated disease even at advanced stages by inducing antigen-specific Foxp3 + T reg cells that trafficked to the spleen, lymph nodes, and central nervous system (CNS). Conditional T reg cell depletion abolished therapeutic efficacy, indicating that T reg cells are necessary mediators of tol-aLN–induced protection. Long-term studies revealed sustained remission without impairing systemic immunity. In a myelin oligodendrocyte glycoprotein (amino acids 1 to 125) (MOG 1–125 )–induced EAE model, multivalent tol-aLN also efficiently suppressed inflammatory B cells and autoantibody production, reprogramming CNS B cells toward a regulatory state. Single-cell transcriptomics further revealed a global reduction in interferon-stimulated gene activity and restoration of homeostatic microglial phenotypes. Collectively, tol-aLN offers a scalable, antigen-specific platform for immune tolerance and CNS protection, with translational potential for MS and other autoimmune diseases.

Science Translational MedicineVol. 18(870)
Sun Yat-sen University (CN), Chinese Academy of Sciences (CN), Second Affiliated Hospital of Guangzhou Medical University (CN), National Center for Nanoscience and Technology (CN), Third Affiliated Hospital of Sun Yat-sen University (CN), Institute of Zoology (CN), Guangzhou Laboratory, Beijing Institute for Stem Cell and Regenerative Medicine (CN), Guangzhou Medical University (CN)
Openalex Percentile: Top 12%
Multiple Sclerosis Research Studies
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