Liposomal clodronate as a novel agent for treating autoimmune hemolytic anemia in a mouse model.
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[1] G. Bolognesi. [Systemic lupus erythematosus; hematological aspects]. , 1957, Il Progresso medico.
[2] R. Steinman,et al. Identification of a novel cell type in peripheral lymphoid organs of mice. IV. Identification and distribution in mouse spleen , 1975, The Journal of experimental medicine.
[3] D. Nathan,et al. The acute and transient nature of idiopathic immune hemolytic anemia in childhood. , 1976, Jornal de Pediatria.
[4] J. Atkinson,et al. Pathophysiology of Immune Hemolytic Anemia , 1977 .
[5] A. Casadei,et al. Auto‐Immune Haemolytic Anaemia in Childhood , 1979 .
[6] A. Casadei,et al. Auto-immune haemolytic anaemia in childhood: follow-up in 29 cases. , 1979, Vox sanguinis.
[7] R. Steinman,et al. Identification of a novel cell type in peripheral lymphoid organs of mice. V. Purification of spleen dendritic cells, new surface markers, and maintenance in vitro , 1979, The Journal of experimental medicine.
[8] Schreiber Ad. Systemic lupus erythematosus -- hematological aspects. , 1980 .
[9] A. Lobuglio,et al. Immune Hemolytic anemia. , 1980, The Medical clinics of North America.
[10] Heisel Ma,et al. Factors influencing prognosis in childhood autoimmune hemolytic anemia. , 1983 .
[11] J. A. Ortega,et al. Factors influencing prognosis in childhood autoimmune hemolytic anemia. , 1983, The American journal of pediatric hematology/oncology.
[12] N. Van Rooijen,et al. Elimination of phagocytic cells in the spleen after intravenous injection of liposome-encapsulated dichloromethylene diphosphonate. An enzyme-histochemical study. , 1984, Cell and tissue research.
[13] R. Sokol,et al. Autoimmune haemolysis in childhood and adolescence. , 1984, Acta haematologica.
[14] W. Rosse. Autoimmune hemolytic anemia. , 1985, Hospital practice.
[15] A. Zanella,et al. [Autoimmune hemolytic anemia]. , 2000, Haematologica.
[16] N. Rooijen,et al. Macrophage Subset Repopulation in the Spleen: Differential Kinetics After Liposome‐Mediated Elimination , 1989, Journal of leukocyte biology.
[17] B. Uitdehaag,et al. Suppression of experimental allergic encephalomyelitis in Lewis rats after elimination of macrophages , 1990, The Journal of experimental medicine.
[18] N. Van Rooijen,et al. A new method for removal of mononuclear phagocytes from heterogeneous cell populations in vitro, using the liposome-mediated macrophage 'suicide' technique. , 1990, Journal of immunological methods.
[19] N. Rooijen,et al. Selective Depletion of Liver and Splenic Macrophages Using Liposomes Encapsulating the Drug Dichloromethylene Diphosphonate: Effects on Antimicrobial Resistance , 1991, Journal of leukocyte biology.
[20] R. Berg,et al. Macrophage Elimination Increases Bacterial Translocation and Gut‐Origin Septicemia but Attenuates Symptoms and Mortality Rate in a Model of Systemic Inflammation , 1993, Annals of surgery.
[21] T. Berney,et al. Molecular and cellular basis for pathogenicity of autoantibodies. , 1994, The Tohoku journal of experimental medicine.
[22] N. Van Rooijen,et al. Liposome mediated depletion of macrophages: mechanism of action, preparation of liposomes and applications. , 1994, Journal of immunological methods.
[23] M. Jutila,et al. Elimination of mouse splenic macrophages correlates with increased susceptibility to experimental disseminated candidiasis. , 1994, Journal of immunology.
[24] J. Ravetch,et al. Cytotoxic antibodies trigger inflammation through Fc receptors. , 1995, Immunity.
[25] Y. Takei,et al. Liposome‐encapsulated dichloromethylene diphosphonate induces macrophage apoptosis in vivo and in vitro , 1996, Journal of leukocyte biology.
[26] R. Schmidt,et al. Impaired IgG-Dependent Anaphylaxis and Arthus Reaction in FcγRIII (CD16) Deficient Mice , 1996 .
[27] R. Schmidt,et al. Impaired IgG-dependent anaphylaxis and Arthus reaction in Fc gamma RIII (CD16) deficient mice. , 1996, Immunity.
[28] T. K. van den Berg,et al. Apoptosis of macrophages induced by liposome-mediated intracellular delivery of clodronate and propamidine. , 1996, Journal of immunological methods.
[29] A. Savoy,et al. Acute lethal toxicity following passive immunization for treatment of murine cryptococcosis , 1997, Infection and immunity.
[30] N. Van Rooijen,et al. Elimination, blocking, and activation of macrophages: three of a kind? , 1997, Journal of leukocyte biology.
[31] J. Mouiel,et al. Laparoscopic splenectomy: outcome and efficacy in 103 consecutive patients. , 1998, Annals of surgery.
[32] K. Sonoda,et al. Role of Macrophages in Acute Murine Cytomegalovirus Infection , 1998, Microbiology and immunology.
[33] R. Schmidt,et al. FcgammaRIII (CD16)-deficient mice show IgG isotype-dependent protection to experimental autoimmune hemolytic anemia. , 1998, Blood.
[34] T. K. van den Berg,et al. Murine IgG1 complexes trigger immune effector functions predominantly via Fc gamma RIII (CD16). , 1998, Journal of immunology.
[35] R. Schmidt,et al. FcγRIII (CD16)-Deficient Mice Show IgG Isotype-Dependent Protection to Experimental Autoimmune Hemolytic Anemia , 1998 .
[36] G. Rodan,et al. Mechanisms of action of bisphosphonates. , 1998, Annual review of pharmacology and toxicology.
[37] D. McAneny,et al. Comparative response to splenectomy in coombs‐positive autoimmune hemolytic anemia with or without associated disease , 1999, American journal of hematology.
[38] Hajime Umezu,et al. The role of Kupffer cells and regulation of neutrophil migration into the liver by macrophage inflammatory protein‐2 in primary listeriosis in mice , 1999, Pathology international.
[39] P. Croucher,et al. Bisphosphonates: Pharmacology, Mechanisms of Action and Clinical Uses , 1999, Osteoporosis International.
[40] T. Honjo,et al. High Pathogenic Potential of Low-Affinity Autoantibodies in Experimental Autoimmune Hemolytic Anemia , 1999, The Journal of experimental medicine.
[41] 邦彦 小尾口. Role of alveolar macrophages in initiation and regulation of inflammation in Pseudomonas aeruginosa pneumonia , 1999 .
[42] T. Honjo,et al. Markedly Different Pathogenicity of Four Immunoglobulin G Isotype-Switch Variants of an Antierythrocyte Autoantibody Is Based on Their Capacity to Interact in Vivo with the Low-Affinity Fcγ Receptor III , 2000, The Journal of experimental medicine.
[43] R. Schmidt,et al. Mouse FcγRII is a negative regulator of FcγRIII in IgG immune complex‐triggered inflammation but not in autoantibody‐induced hemolysis , 2000 .
[44] N. Van Rooijen,et al. Dual role for macrophages in vivo in pathogenesis and control of murine Salmonella enterica var. Typhimurium infections , 2000, European journal of immunology.
[45] W. Bell. Long-term outcome of splenectomy for idiopathic thrombocytopenic purpura. , 2000, Seminars in hematology.
[46] I. Weissman,et al. The monoclonal antibody TER‐119 recognizes a molecule associated with glycophorin A and specifically marks the late stages of murine erythroid lineage , 2000, British journal of haematology.
[47] R. Schmidt,et al. Mouse FcgammaRII is a negative regulator of FcgammaRIII in IgG immune complex-triggered inflammation but not in autoantibody-induced hemolysis. , 2000, European journal of immunology.
[48] M. Isturiz,et al. Treatment with liposome-encapsulated clodronate as a new strategic approach in the management of immune thrombocytopenic purpura in a mouse model. , 2000, Blood.
[49] M. Saif. HIV-associated autoimmune hemolytic anemia: an update. , 2001, AIDS patient care and STDs.
[50] T. van der Poll,et al. Protective Effects in Pulmonary Tuberculosis Depletion of Alveolar Macrophages Exerts , 2001 .
[51] D. Singer,et al. Asplenic-hyposplenic Overwhelming Sepsis: Postsplenectomy Sepsis Revisited , 2001, Pediatric and developmental pathology : the official journal of the Society for Pediatric Pathology and the Paediatric Pathology Society.
[52] X. Zheng,et al. Critical Role of Kupffer Cell-Derived IL-10 for Host Defense in Septic Peritonitis1 , 2001, The Journal of Immunology.
[53] P. Richards,et al. Suppression of chronic streptococcal cell wall-induced arthritis in Lewis rats by liposomal clodronate. , 2001, Rheumatology.
[54] M. Walport,et al. Complement Activation Selectively Potentiates the Pathogenicity of the IgG2b and IgG3 Isotypes of a High Affinity Anti-Erythrocyte Autoantibody , 2002, The Journal of experimental medicine.