The nano-windmill exerts superior anti-inflammatory effects via reducing choline uptake to inhibit macrophage activation.
暂无分享,去创建一个
Mingzheng Li | Nanxin Liu | Xiaoxiao Cai | R. Cannon | P. Ji | X. Pang | Yuke Zhong | Li Mei
[1] T. Tian,et al. A dynamic DNA tetrahedron framework for active targeting , 2023, Nature Protocols.
[2] Tao Zhang,et al. A Tetrahedral Framework DNA‐Based Bioswitchable miRNA Inhibitor Delivery System: Application to Skin Anti‐Aging , 2022, Advanced materials.
[3] Xiaoxiao Cai,et al. Myelosuppression Alleviation and Hematopoietic Regeneration by Tetrahedral‐Framework Nucleic‐Acid Nanostructures Functionalized with Osteogenic Growth Peptide , 2022, Advanced science.
[4] Yanjing Li,et al. Prospects and challenges of dynamic DNA nanostructures in biomedical applications , 2022, Bone Research.
[5] Tao Zhang,et al. A Lysosome‐Activated Tetrahedral Nanobox for Encapsulated siRNA Delivery , 2022, Advanced materials.
[6] S. Shi,et al. Modulation of the Crosstalk between Schwann Cells and Macrophages for Nerve Regeneration: A Therapeutic Strategy Based on a Multifunctional Tetrahedral Framework Nucleic Acids System , 2022, Advanced materials.
[7] Mengting Liu,et al. Tetrahedral framework nucleic acid carrying angiogenic peptide prevents bisphosphonate-related osteonecrosis of the jaw by promoting angiogenesis , 2022, International Journal of Oral Science.
[8] R. Xu,et al. Antiepilepticus Effects of Tetrahedral Framework Nucleic Acid via Inhibition of Gliosis-Induced Downregulation of Glutamine Synthetase and Increased AMPAR Internalization in the Postsynaptic Membrane. , 2022, Nano letters.
[9] Lifeng Li,et al. Metformin attenuated sepsis-related liver injury by modulating gut microbiota , 2022, Emerging microbes & infections.
[10] Xiang Yu,et al. Tetrahedral Framework Nucleic Acids Can Alleviate Taurocholate-Induced Severe Acute Pancreatitis and Its Subsequent Multiorgan Injury in Mice. , 2022, Nano letters.
[11] Tao Zhang,et al. Tetrahedral-Framework Nucleic Acids Carry Small Interfering RNA to Downregulate Toll-Like Receptor 2 Gene Expression for the Treatment of Sepsis. , 2022, ACS applied materials & interfaces.
[12] Wanjun Chen,et al. Modulation of Macrophage Immunometabolism: A New Approach to Fight Infections , 2022, Frontiers in Immunology.
[13] Tao Zhang,et al. Biomimetic Nanoerythrosome‐Coated Aptamer–DNA Tetrahedron/Maytansine Conjugates: pH‐Responsive and Targeted Cytotoxicity for HER2‐Positive Breast Cancer , 2022, Advanced materials.
[14] Yunfeng Lin,et al. Tetrahedral framework nucleic acids-based delivery of microRNA-155 inhibits choroidal neovascularization by regulating the polarization of macrophages , 2021, Bioactive materials.
[15] Tao Zhang,et al. A DNA Nanostructure-Based Neuroprotectant against Neuronal Apoptosis via Inhibiting Toll-like Receptor 2 Signaling Pathway in Acute Ischemic Stroke. , 2021, ACS nano.
[16] Tao Zhang,et al. Functionalizing Framework Nucleic‐Acid‐Based Nanostructures for Biomedical Application , 2021, Advanced materials.
[17] M. Shankar-Hari,et al. The immunology of sepsis. , 2021, Immunity.
[18] M. Trivedi,et al. Dysregulation of mitochondrial dynamics, mitophagy and apoptosis in major depressive disorder: Does inflammation play a role? , 2021, Molecular Psychiatry.
[19] M. Alexander,et al. The Interplay of Mitophagy and Inflammation in Duchenne Muscular Dystrophy , 2021, Life.
[20] Y. Wen,et al. Anti-inflammatory activity of curcumin-loaded tetrahedral framework nucleic acids on acute gouty arthritis , 2021, Bioactive materials.
[21] Yanjing Li,et al. Tetrahedral Framework Nucleic Acids Induce Immune Tolerance and Prevent the Onset of Type 1 Diabetes. , 2021, Nano letters.
[22] A. Bolstad,et al. Lipid, fatty acid, carnitine- and choline derivative profiles in rheumatoid arthritis outpatients with different degrees of periodontal inflammation , 2021, Scientific Reports.
[23] D. Jahn,et al. Complexity of macrophage metabolism in infection. , 2021, Current opinion in biotechnology.
[24] Tao Zhang,et al. The protective effect of tetrahedral framework nucleic acids on periodontium under inflammatory conditions , 2020, Bioactive materials.
[25] Hua Wang,et al. NLRP3 regulates alveolar bone loss in ligature‐induced periodontitis by promoting osteoclastic differentiation , 2020, Cell proliferation.
[26] T. Horng,et al. Lipid Metabolism in Regulation of Macrophage Functions. , 2020, Trends in cell biology.
[27] Ronghui Zhou,et al. Design, fabrication and applications of tetrahedral DNA nanostructure-based multifunctional complexes in drug delivery and biomedical treatment , 2020, Nature Protocols.
[28] S. Tait,et al. Mitochondrial DNA in inflammation and immunity , 2020, EMBO reports.
[29] A. Malik,et al. mtDNA Activates cGAS Signaling and Suppresses the YAP-Mediated Endothelial Cell Proliferation Program to Promote Inflammatory Injury. , 2020, Immunity.
[30] P. Papapanou,et al. Disruption of Monocyte and Macrophage Homeostasis in Periodontitis , 2020, Frontiers in Immunology.
[31] Chunyan Wan,et al. NLRP3 inflammasome mediates M1 macrophage polarization and IL-1β production in inflammatory root resorption. , 2020, Journal of clinical periodontology.
[32] Z. Ran,et al. Emerging views of mitophagy in immunity and autoimmune diseases , 2020, Autophagy.
[33] F. Petronilho,et al. The NLRP3 Inflammasome and Its Role in Sepsis Development , 2019, Inflammation.
[34] Chengxiang Qiu,et al. Mitochondrial Damage and Activation of the STING Pathway Lead to Renal Inflammation and Fibrosis. , 2019, Cell metabolism.
[35] Songhang Li,et al. Tetrahedral Framework Nucleic Acids Promote Corneal Epithelial Wound Healing in Vitro and in Vivo. , 2019, Small.
[36] A. Viola,et al. The Metabolic Signature of Macrophage Responses , 2019, Front. Immunol..
[37] R. Terkeltaub,et al. Choline Uptake and Metabolism Modulate Macrophage IL-1β and IL-18 Production. , 2019, Cell metabolism.
[38] Houhui Song,et al. Recent advances in the mechanisms of NLRP3 inflammasome activation and its inhibitors , 2019, Cell Death & Disease.
[39] Jin Zhang,et al. Review: the Role and Mechanisms of Macrophage Autophagy in Sepsis , 2018, Inflammation.
[40] J. T. Afshari,et al. Macrophage plasticity, polarization, and function in health and disease , 2018, Journal of cellular physiology.
[41] A. Hevener,et al. New mitochondrial DNA synthesis enables NLRP3 inflammasome activation , 2018, Nature.
[42] M. Ochani,et al. B-1a cells protect mice from sepsis-induced acute lung injury , 2018, Molecular medicine.
[43] J. Montiel-Company,et al. Using NMR in saliva to identify possible biomarkers of glioblastoma and chronic periodontitis , 2018, PloS one.
[44] Tao Zhang,et al. Anti-inflammatory and Antioxidative Effects of Tetrahedral DNA Nanostructures via the Modulation of Macrophage Responses. , 2018, ACS applied materials & interfaces.
[45] M. Dkhil,et al. Ziziphus spina-christi leaf extract pretreatment inhibits liver and spleen injury in a mouse model of sepsis via anti-oxidant and anti-inflammatory effects , 2018, Inflammopharmacology.
[46] L. O’Neill,et al. Macrophage Immunometabolism: Where Are We (Going)? , 2017, Trends in immunology.
[47] L. O’Neill,et al. Mitochondria are the powerhouses of immunity , 2017, Nature Immunology.
[48] R. Xavier,et al. Succinate Dehydrogenase Supports Metabolic Repurposing of Mitochondria to Drive Inflammatory Macrophages , 2016, Cell.
[49] J. Knuuti,et al. Type 2 diabetes enhances arterial uptake of choline in atherosclerotic mice: an imaging study with positron emission tomography tracer 18F-fluoromethylcholine , 2016, Cardiovascular Diabetology.
[50] G. Hajishengallis. Immunomicrobial pathogenesis of periodontitis: keystones, pathobionts, and host response. , 2014, Trends in immunology.
[51] J. Tschopp,et al. A role for mitochondria in NLRP3 inflammasome activation , 2011, Nature.
[52] K. Rock,et al. Silica crystals and aluminum salts activate the NALP3 inflammasome through phagosomal destabilization , 2008, Nature Immunology.