Carboxymethylated Alginate-Resiquimod Micelles Reverse the Immunosuppressive Tumor Microenvironment and Synergistically Enhance the Chemotherapy and Immunotherapy for Gastric Cancer.
暂无分享,去创建一个
C. Li | Shujing Zhao | Wangran Wu | Xingxing Liu | Xian Shen | Jinfeng Wang | Jiamin Chen | Tao Lu | Hong-yun Chen | Jiahui Han
[1] E. Giovannetti,et al. Applications and clinical trial landscape using Toll-like receptor agonists to reduce the toll of cancer , 2023, npj Precision Oncology.
[2] P. Lyon,et al. Immune checkpoint inhibition: a future guided by radiology , 2023, The British journal of radiology.
[3] C. Li,et al. Intelligent manganese dioxide nanocomposites induce tumor immunogenic cell death and remould tumor microenvironment , 2023, Chemical Engineering Journal.
[4] Jae-Hoon Chang,et al. T-cell engaging poly(lactic-co-glycolic acid) nanoparticles as a modular platform to induce a potent cytotoxic immunogenic response against PD-L1 overexpressing cancer. , 2022, Biomaterials.
[5] M. Fauconnier,et al. ATR-FTIR spectroscopy combined with DNA barcoding and GC-MS to assess the quality and purity of saffron (Crocus Sativus L.) , 2022, Vibrational Spectroscopy.
[6] C. Li,et al. 3d oxidized alginate-porcine liver acellular collagen droplets for tumor microenvironment mimicking. , 2022, International journal of biological macromolecules.
[7] Di Huang,et al. Turning cold tumors hot: from molecular mechanisms to clinical applications. , 2022, Trends in immunology.
[8] N. Behrendt,et al. Uncovering mediators of collagen degradation in the tumor microenvironment , 2022, Matrix biology plus.
[9] Shyh-Dar Li,et al. Liposomal Resiquimod for Enhanced Immunotherapy of Peritoneal Metastases of Colorectal Cancer , 2021, Pharmaceutics.
[10] J. Kagan,et al. Innate immune detection of lipid oxidation as a threat assessment strategy , 2021, Nature Reviews Immunology.
[11] Shuixing Zhang,et al. Tumor-Associated Macrophages and Their Functional Transformation in the Hypoxic Tumor Microenvironment , 2021, Frontiers in Immunology.
[12] Xuesi Chen,et al. Cisplatin Nanoparticles Possess Stronger Anti-tumor Synergy with PD1/PD-L1 Inhibitors than the Parental Drug. , 2021, Acta biomaterialia.
[13] Shusen Zheng,et al. Self-assembly nanovaccine containing TLR7/8 agonist and STAT3 inhibitor enhances tumor immunotherapy by augmenting tumor-specific immune response , 2021, Journal for ImmunoTherapy of Cancer.
[14] Guofang Zhang,et al. Reinforcing the Combinational Immuno-Oncotherapy of Switching "Cold" Tumor to "Hot" by Responsive Penetrating Nanogels. , 2021, ACS applied materials & interfaces.
[15] B. Tang,et al. Esterase-Activated Theranostic Prodrug for Dual Organelles-Targeted Imaging and Synergetic Chemo-Photodynamic Cancer Therapy , 2021 .
[16] Y. Samstag,et al. Hijacked Immune Cells in the Tumor Microenvironment: Molecular Mechanisms of Immunosuppression and Cues to Improve T Cell-Based Immunotherapy of Solid Tumors , 2021, International journal of molecular sciences.
[17] Yanfeng Gao,et al. Development of Toll-like Receptor Agonist-Loaded Nanoparticles as Precision Immunotherapy for Reprogramming Tumor-Associated Macrophages. , 2021, ACS applied materials & interfaces.
[18] S. Kuroda,et al. Enhancing antibody-dependent cellular phagocytosis by Re-education of tumor-associated macrophages with resiquimod-encapsulated liposomes. , 2020, Biomaterials.
[19] J. Schneck,et al. Biomaterials to enhance antigen-specific T cell expansion for cancer immunotherapy. , 2020, Biomaterials.
[20] A. Borowsky,et al. Development of thermosensitive resiquimod-loaded liposomes for enhanced cancer immunotherapy. , 2020, Journal of controlled release : official journal of the Controlled Release Society.
[21] H. Santos,et al. Peptide-guided resiquimod-loaded lignin nanoparticles convert tumor-associated macrophages from M2 to M1 phenotype for enhanced chemotherapy. , 2020, Acta biomaterialia.
[22] Orsu Prabhakar,et al. Fabrication and characterization of carboxymethyl guar gum nanocomposite for application of wound healing. , 2020, International journal of biological macromolecules.
[23] Dakang Xu,et al. Redefining Tumor-Associated Macrophage Subpopulations and Functions in the Tumor Microenvironment , 2020, Frontiers in Immunology.
[24] Zhaowu Ma,et al. Dendritic cell biology and its role in tumor immunotherapy , 2020, Journal of Hematology & Oncology.
[25] Hyesun Hyun,et al. Harnessing nanomedicine to overcome the immunosuppressive tumor microenvironment , 2020, Acta Pharmacologica Sinica.
[26] M. Lord,et al. Engineering nanomedicines through boosting immunogenic cell death for improved cancer immunotherapy , 2020, Acta Pharmacologica Sinica.
[27] H. Santos,et al. Artificially cloaked viral nanovaccine for cancer immunotherapy , 2019, Nature Communications.
[28] C. Shao,et al. Harnessing tumor-associated macrophages as aids for cancer immunotherapy , 2019, Molecular Cancer.
[29] H. Sung,et al. Modulation of tumor microenvironment using a TLR-7/8 agonist-loaded nanoparticle system that exerts low-temperature hyperthermia and immunotherapy for in situ cancer vaccination. , 2019, Biomaterials.
[30] Y. Liu,et al. Natural Product Albiziabioside A Conjugated with Pyruvate Dehydrogenase Kinase Inhibitor Dichloroacetate to Induce Apoptosis-Ferroptosis M2-TAMs Polarization for Combined Cancer Therapy. , 2019, Journal of medicinal chemistry.
[31] Peter A Kleindl,et al. Formulation and preclinical evaluation of a toll-like receptor 7/8 agonist as an anti-tumoral immunomodulator. , 2019, Journal of controlled release : official journal of the Controlled Release Society.
[32] M. Noguchi,et al. Differences of tumor-recruiting myeloid cells in murine squamous cell carcinoma influence the efficacy of immunotherapy combined with a TLR7 agonist and PD-L1 blockade. , 2019, Oral oncology.
[33] Michael F. Cuccarese,et al. TLR7/8-agonist-loaded nanoparticles promote the polarization of tumour-associated macrophages to enhance cancer immunotherapy. , 2018, Nature biomedical engineering.
[34] R. Weinberg,et al. Understanding the tumor immune microenvironment (TIME) for effective therapy , 2018, Nature Medicine.
[35] P. Kelly,et al. The Cancer Immunotherapy Revolution. , 2018, Science.
[36] Xiaoyu Liang,et al. Chloroquine modulates antitumor immune response by resetting tumor-associated macrophages toward M1 phenotype , 2018, Nature Communications.
[37] Yuanyuan Liu,et al. Dual pH-responsive multifunctional nanoparticles for targeted treatment of breast cancer by combining immunotherapy and chemotherapy. , 2018, Acta biomaterialia.
[38] Mauro Ferrari,et al. Lipopolyplex potentiates anti-tumor immunity of mRNA-based vaccination. , 2017, Biomaterials.
[39] A. Tzankov,et al. The immune system and cancer evasion strategies: therapeutic concepts , 2016, Journal of internal medicine.
[40] Deepa K. Raj,et al. Galactosylated alginate-curcumin micelles for enhanced delivery of curcumin to hepatocytes. , 2016, International journal of biological macromolecules.
[41] Zheng Wang,et al. Biodegradable Polymer-Curcumin Conjugate Micelles Enhance the Loading and Delivery of Low-Potency Curcumin , 2012, Pharmaceutical Research.
[42] Peter Fredericks,et al. Interactions between alginate and chitosan biopolymers characterized using FTIR and XPS. , 2007, Biomacromolecules.
[43] P. Allavena,et al. Macrophage polarization: tumor-associated macrophages as a paradigm for polarized M2 mononuclear phagocytes. , 2002, Trends in immunology.
[44] S. Akira,et al. Small anti-viral compounds activate immune cells via the TLR7 MyD88–dependent signaling pathway , 2002, Nature Immunology.