Search results for "Mannose receptor"

showing 4 items of 14 documents

IL-10 down-regulates T cell activation by antigen-presenting liver sinusoidal endothelial cells through decreased antigen uptake via the mannose rece…

1998

SUMMARYOur study demonstrates that antigen-presenting liver sinusoidal endothelial cells (LSEC) induce production of interferon-gamma (IFN-γ) from cloned Th1 CD4+ T cells. We show that LSEC used the mannose receptor for antigen uptake, which further strengthened the role of LSEC as antigen-presenting cell (APC) population in the liver. The ability of LSEC to activate cloned CD4+ T cells antigen-specifically was down-regulated by exogenous prostaglandin E2 (PGE2) and by IL-10. We identify two separate mechanisms by which IL-10 down-regulated T cell activation through LSEC. IL-10 decreased the constitutive surface expression of MHC class II as well as of the accessory molecules CD80 and CD86 …

Liver cytologyT cellT-LymphocytesImmunologyAntigen presentationAntigen-Presenting CellsDown-RegulationReceptors Cell SurfaceBiologyLymphocyte ActivationDinoprostoneMiceAntigenAntigens CDmedicineImmunology and AllergyAnimalsLectins C-TypeCD86Antigen PresentationMice Inbred BALB CMembrane GlycoproteinsHistocompatibility Antigens Class IIOriginal ArticlesInterleukin-10Interleukin 10medicine.anatomical_structureMannose-Binding LectinsLiverImmunologyB7-1 AntigenCytokinesFemaleB7-2 AntigenEndothelium VascularMannoseCD80Mannose receptorMannose ReceptorClinical and experimental immunology
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Targeted Repolarization of Tumor‐Associated Macrophages via Imidazoquinoline‐Linked Nanobodies

2021

Abstract Tumor‐associated macrophages (TAMs) promote the immune suppressive microenvironment inside tumors and are, therefore, considered as a promising target for the next generation of cancer immunotherapies. To repolarize their phenotype into a tumoricidal state, the Toll‐like receptor 7/8 agonist imidazoquinoline IMDQ is site‐specifically and quantitatively coupled to single chain antibody fragments, so‐called nanobodies, targeting the macrophage mannose receptor (MMR) on TAMs. Intravenous injection of these conjugates result in a tumor‐ and cell‐specific delivery of IMDQ into MMRhigh TAMs, causing a significant decline in tumor growth. This is accompanied by a repolarization of TAMs to…

Lung NeoplasmsGeneral Chemical Engineeringmedicine.medical_treatmentGeneral Physics and AstronomyMedicine (miscellaneous)TLR 7/8 agonist02 engineering and technology01 natural scienceschemistry.chemical_compoundCancer immunotherapyTumor-Associated MacrophagesTumor MicroenvironmentMacrophageM2 macrophagesGeneral Materials ScienceReceptorResearch ArticlesMice KnockoutMembrane GlycoproteinsChemistrytumor associated macrophagesQGeneral EngineeringImidazoles021001 nanoscience & nanotechnologynanobodiesmedicine.anatomical_structureDrug deliveryQuinolines0210 nano-technologyMannose ReceptorResearch ArticleT cellScience010402 general chemistryBiochemistry Genetics and Molecular Biology (miscellaneous)Immune systemmedicineAnimalsrepolarizationcancer immunotherapyCancerSingle-Domain Antibodiesmedicine.disease0104 chemical sciencesImidazoquinolineMice Inbred C57BLDisease Models AnimalToll-Like Receptor 6Toll-Like Receptor 7drug deliveryCancer research
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Targeting cells of the immune system: mannosylated HPMA–LMA block-copolymer micelles for targeting of dendritic cells

2016

Background: Successful tumor immunotherapy depends on the induction of strong and sustained tumor antigen-specific immune responses by activated antigen-presenting cells (APCs) such as dendritic cells (DCs). Since nanoparticles have the potential to codeliver tumor-specific antigen and DC-stimulating adjuvant in a DC-targeting manner, we wanted to assess the suitability of mannosylated HPMA-LMA block polymers for immunotherapy. Materials & methods: Fluorescence-labeled block copolymer micelles derived from P(HPMA)-block-P(LMA) copolymers and according statistical copolymers were synthesized via RAFT polymerization, and loaded with the APC activator L18-MDP. Both types of copolymers wer…

Materials sciencePolymersSurface Propertiesmedicine.medical_treatmentBiomedical EngineeringMedicine (miscellaneous)Bone Marrow CellsBioengineering02 engineering and technologyDevelopment01 natural sciencesMicellePolymerizationImmune systemAntigenmedicineHumansGeneral Materials ScienceReversible addition−fragmentation chain-transfer polymerizationMicelles010405 organic chemistryDendritic CellsImmunotherapyDendritic cell021001 nanoscience & nanotechnologyMolecular biology0104 chemical sciencesCell biologyMethacrylatesNanoparticlesImmunotherapy0210 nano-technologyAcetylmuramyl-Alanyl-IsoglutamineMannoseAdjuvantSpleenMannose receptorNanomedicine
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α-Mannosyl-Functionalized Cationic Nanohydrogel Particles for Targeted Gene Knockdown in Immunosuppressive Macrophages

2019

Immunosuppressive M2 macrophages govern the immunophathogenic micromilieu in many severe diseases including cancer or fibrosis, thus, their re-polarization through RNA interference is a promising concept to support combinatorial therapies. For targeted siRNA delivery, however, safe and stable carriers are required that manage cell specific transport to M2 macrophages. Here, siRNA-loaded cationic nanogels are reported with α-mannosyl decorated surfaces that target and modify M2 macrophages selectively. Via amphiphilic precursor block copolymers bearing one single α-mannosyl moiety at their chain end mannosylated cationic nanohydrogel particles (ManNP) were obtained of 20 nm diameter determin…

Polymers and PlasticsCellBioengineering02 engineering and technology010402 general chemistry01 natural sciencesBiomaterialsMiceFibrosisRNA interferenceCationsmedicineMaterials ChemistryAnimalsHumansMannanImmunosuppression TherapyGene knockdownbiologyChemistryMacrophagesHydrogels3T3 CellsHep G2 Cells021001 nanoscience & nanotechnologymedicine.diseaseIn vitro0104 chemical sciencesCell biologymedicine.anatomical_structureRAW 264.7 CellsConcanavalin AGene Knockdown Techniquesbiology.proteinNanoparticles0210 nano-technologyMannoseMannose receptorBiotechnologyMacromolecular Bioscience
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