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Screening Bioactive Nanoparticles in Phagocytic Immune Cells for Inhibitors of Toll-like Receptor Signaling
Published on: July 26, 2017
A cell-free TLR5high MSC membrane nanoparticle therapy for Crohn's disease: Targeted immunomodulation via the
Yuanyuan Xie1, Yu Li2, Congwang Xu3
1Clinical Stem Cell Center, Nanjing Drum Tower Hospital, Clinical Medical College of Traditional Chinese and Western Medicine, Nanjing University of Chinese Medicine, Nanjing, Jiangsu Province 210009, China; Clinical Stem Cell Center, Nanjing Drum Tower Hospital, Affiliated Hospital of Medical School, Nanjing University, Nanjing, Jiangsu Province 210009, China.
Inflammatory bowel disease (IBD), including Crohn's disease (CD; Th1/Th17-driven) and ulcerative colitis (Th2-skewed), lacks therapies correcting T-cell imbalance. Current cytokine-focused treatments remain ineffective, while mesenchymal stromal cells (MSCs) therapies are hindered by inherent heterogeneity and challenges related to cell viability maintenance, batch-to-batch consistency, and standardization. This study aimed to (Kaplan, 2015 (1)) identify MSCs subtypes targeting CD pathology, Sebastian and Siegmund (2024) (2) create MSCs-mimicking nanoparticles, and (Li et al., 2016 (3)) propose a "deconstructed cell therapy" framework. Using colon datasets and CD blood samples, Th1/Th17-macrophage dysregulation was mapped. Transcriptomic screening of eight MSCs sources identified dental pulp-derived TLR5high-MSCs as superior Th1/Th17 inhibitors compared to umbilical cord TLR5low-MSCs. In colitis models, TLR5high-MSCs intercepted gut flagellin (Fla), blocking macrophage TLR5/NF-κB to restore T-cell balance. Decellularized MSCs membranes were engineered into nanovesicles (TLR5high-CMNP), which showed 3.7-fold higher Fla. affinity than antibodies and suppressed Th1/Th17 activity in vitro. In murine colitis, TLR5high-CMNP achieved comparable efficacy to MSCs (e.g., 68.9 % reduction in MPO scores), while avoiding challenges associated with live-cell administration - such as embolism occurrence (0 % vs. 24 % in MSCs), need for viability maintenance, and potential variability in TLR5 expression. Bioinformatic analysis confirmed TLR5 as pivotal for MSCs specificity, enabling tailored nanoparticle design. This study highlights TLR5high-CMNP as a safer, cell-free MSCs alternative and introduces a paradigm prioritizing precise immune checkpoint targeting (e.g., Fla./TLR5) over broad cytokine suppression, resolving IBD therapeutic ambiguity through scalable biomimetic nanomaterials.
Inflammatory bowel disease (IBD), including Crohn's disease (CD; Th1/Th17-driven) and ulcerative colitis (Th2-skewed), lacks therapies correcting T-cell imbalance. Current cytokine-focused treatments remain ineffective, while mesenchymal stromal cells (MSCs) therapies are hindered by inherent heterogeneity and challenges related to cell viability maintenance, batch-to-batch consistency, and standardization. This study aimed to (Kaplan, 2015 (1)) identify MSCs subtypes targeting CD pathology, Sebastian and Siegmund (2024) (2) create MSCs-mimicking nanoparticles, and (Li et al., 2016 (3)) propose a "deconstructed cell therapy" framework. Using colon datasets and CD blood samples, Th1/Th17-macrophage dysregulation was mapped. Transcriptomic screening of eight MSCs sources identified dental pulp-derived TLR5high-MSCs as superior Th1/Th17 inhibitors compared to umbilical cord TLR5low-MSCs. In colitis models, TLR5high-MSCs intercepted gut flagellin (Fla), blocking macrophage TLR5/NF-κB to restore T-cell balance. Decellularized MSCs membranes were engineered into nanovesicles (TLR5high-CMNP), which showed 3.7-fold higher Fla. affinity than antibodies and suppressed Th1/Th17 activity in vitro. In murine colitis, TLR5high-CMNP achieved comparable efficacy to MSCs (e.g., 68.9 % reduction in MPO scores), while avoiding challenges associated with live-cell administration - such as embolism occurrence (0 % vs. 24 % in MSCs), need for viability maintenance, and potential variability in TLR5 expression. Bioinformatic analysis confirmed TLR5 as pivotal for MSCs specificity, enabling tailored nanoparticle design. This study highlights TLR5high-CMNP as a safer, cell-free MSCs alternative and introduces a paradigm prioritizing precise immune checkpoint targeting (e.g., Fla./TLR5) over broad cytokine suppression, resolving IBD therapeutic ambiguity through scalable biomimetic nanomaterials.
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