Immunology of the maternal-fetal interface.
暂无分享,去创建一个
[1] S. Fisher,et al. Viral and bacterial pathogens at the maternal-fetal interface. , 2004, The Journal of infectious diseases.
[2] J. Bulmer,et al. Immune cells in the placental bed. , 2010, The International journal of developmental biology.
[3] J. Becker,et al. Profiling Chemokines, Cytokines and Growth Factors in Human Early Pregnancy Decidua By Protein Array , 2007, American journal of reproductive immunology.
[4] M. Adams,et al. Spiral Arterial Remodeling Is Not Essential for Normal Blood Pressure Regulation in Pregnant Mice , 2010, Hypertension.
[5] R. Redline,et al. Role of local immunosuppression in murine fetoplacental listeriosis. , 1987, The Journal of clinical investigation.
[6] D. Schust,et al. REVIEW ARTICLE: The Contribution of Macrophages to Normal and Pathological Pregnancies , 2010, American journal of reproductive immunology.
[7] P. Stone,et al. CD83(+)dendritic cells in the decidua of women with recurrent miscarriage and normal pregnancy. , 2004, Placenta.
[8] J. Pollard,et al. A study of granulated metrial gland cell differentiation in pregnant, macrophage-deficient, osteopetrotic (op/op) mice , 1992, Experientia.
[9] S. Fisher,et al. Human Cytomegalovirus Transmission from the Uterus tothe Placenta Correlates with the Presence of Pathogenic Bacteria andMaternalImmunity , 2003, Journal of Virology.
[10] A. Rudensky,et al. Extrathymic Generation of Regulatory T Cells in Placental Mammals Mitigates Maternal-Fetal Conflict , 2012, Cell.
[11] J. Cross,et al. Post-implantation mouse conceptuses produce paracrine signals that regulate the uterine endometrium undergoing decidualization. , 2006, Developmental biology.
[12] Alison S Care,et al. Interleukin 10 Regulates Inflammatory Cytokine Synthesis to Protect Against Lipopolysaccharide-Induced Abortion and Fetal Growth Restriction in Mice1 , 2007, Biology of reproduction.
[13] M. Carrington,et al. Maternal activating KIRs protect against human reproductive failure mediated by fetal HLA-C2. , 2010, The Journal of clinical investigation.
[14] D. Levy,et al. Chemokine Gene Silencing in Decidual Stromal Cells Limits T Cell Access to the Maternal-Fetal Interface , 2012, Science.
[15] P. Ruck,et al. Antigen-Presenting Cells in Human Endometrium During the Menstrual Cycle Compared to Early Pregnancy , 2004, The Journal of the Society for Gynecologic Investigation: JSGI.
[16] X. Qu,et al. BDCA‐1+, BDCA‐2+ and BDCA‐3+ dendritic cells in early human pregnancy decidua , 2008, Clinical and experimental immunology.
[17] S. Lye,et al. Macrophages Infiltrate the Human and Rat Decidua During Term and Preterm Labor: Evidence That Decidual Inflammation Precedes Labor1 , 2012, Biology of reproduction.
[18] D. Bullard,et al. Preferential Accumulation of Antigen-specific Effector CD4 T Cells at an Antigen Injection Site Involves CD62E-dependent Migration but Not Local Proliferation , 2003, The Journal of experimental medicine.
[19] S. Damrauer,et al. Human decidual NK cells from gravid uteri and NK cells from cycling endometrium are distinct NK cell subsets. , 2010, Placenta.
[20] O. Mandelboim,et al. REVIEW ARTICLE: The Unique Properties of Uterine NK Cells , 2010, American journal of reproductive immunology.
[21] J. Strominger,et al. T cell apoptosis at the maternal–fetal interface in early human pregnancy, involvement of galectin-1 , 2008, Proceedings of the National Academy of Sciences.
[22] J. Hanna,et al. Decidual NK cells regulate key developmental processes at the human fetal-maternal interface , 2006, Nature Medicine.
[23] Judith E. Cartwright,et al. Remodelling at the maternal-fetal interface: relevance to human pregnancy disorders. , 2010, Reproduction.
[24] E. Pamer. Immune responses to Listeria monocytogenes , 2004, Nature Reviews Immunology.
[25] J. Dietl,et al. Human decidua contains potent immunostimulatory CD83(+) dendritic cells. , 2000, The American journal of pathology.
[26] R. Apps,et al. A critical look at HLA-G. , 2008, Trends in immunology.
[27] B. Huppertz,et al. The distribution of macrophages in spiral arteries of the placental bed in pre-eclampsia differs from that in healthy patients. , 1999, Placenta.
[28] T. Shima,et al. Accumulation of IL‐17‐Positive Cells in Decidua of Inevitable Abortion Cases , 2010, American journal of reproductive immunology.
[29] J. Ernerudh,et al. Cytokine Secretion Patterns of NK Cells and Macrophages in Early Human Pregnancy Decidua and Blood: Implications for Suppressor Macrophages in Decidua , 2003, American journal of reproductive immunology.
[30] Chie-Pein Chen,et al. Pre‐eclampsia is associated with dendritic cell recruitment into the uterine decidua , 2008, The Journal of pathology.
[31] P. D. de Groot,et al. Pathogenic role of antiphospholipid antibodies , 2008, Lupus.
[32] J. Riley,et al. Murine Endometrial and Decidual NK1.1+ Natural Killer Cells Display a B220+CD11c+ Cell Surface Phenotype1 , 2009, Biology of reproduction.
[33] S. L. Aukerman,et al. Colony-stimulating factor-1 and c-fms expression in human endometrial tissues and placenta during the menstrual cycle and early pregnancy. , 1991, The Journal of clinical endocrinology and metabolism.
[34] P. Parham,et al. Review: Immunogenetics of human placentation. , 2012, Placenta.
[35] A. Bocking,et al. The Prevalence of Chronic Deciduitis in Cases of Preterm Labor without Clinical Chorioamnionitis , 2009, Pediatric and developmental pathology : the official journal of the Society for Pediatric Pathology and the Paediatric Pathology Society.
[36] R. Redline. Villitis of unknown etiology: noninfectious chronic villitis in the placenta. , 2007, Human pathology.
[37] J. Ernerudh,et al. FOXP3+ Regulatory T Cells and T Helper 1, T Helper 2, and T Helper 17 Cells in Human Early Pregnancy Decidua1 , 2010, Biology of reproduction.
[38] P. Medawar. Some immunological and endocrinological problems raised by the evolution of viviparity in verte- brates , 1953 .
[39] N. Sebire,et al. Impaired decidual natural killer cell regulation of vascular remodelling in early human pregnancies with high uterine artery resistance , 2012, The Journal of pathology.
[40] T. Shima,et al. REVIEW ARTICLE: Th1/Th2/Th17 and Regulatory T‐Cell Paradigm in Pregnancy , 2010, American journal of reproductive immunology.
[41] Aeilko H. Zwinderman,et al. Use of uterine artery Doppler ultrasonography to predict pre-eclampsia and intrauterine growth restriction: a systematic review and bivariable meta-analysis , 2008, Canadian Medical Association Journal.
[42] O. Lassila,et al. Phenotypic characterization of human decidual macrophages , 2003, Clinical and experimental immunology.
[43] P. Rogers,et al. Lymphatics in the human endometrium disappear during decidualization. , 2010, Human reproduction.
[44] C. Ruiz-Ruiz,et al. Fetal-placental hypoxia does not result from failure of spiral arterial modification in mice. , 2010, Placenta.
[45] Steffen Jung,et al. Uterine DCs are crucial for decidua formation during embryo implantation in mice. , 2008, The Journal of clinical investigation.
[46] F. Barré-Sinoussi,et al. Decidual soluble factors participate in the control of HIV-1 infection at the maternofetal interface , 2011, Retrovirology.
[47] L. Glimcher,et al. Constraints in antigen presentation severely restrict T cell recognition of the allogeneic fetus. , 2007, The Journal of clinical investigation.
[48] Surendra Sharma,et al. Uterine NK Cells Mediate Inflammation-Induced Fetal Demise in IL-10-Null Mice , 2005, The Journal of Immunology.
[49] F. Claas,et al. Elsevier Trophoblast Research Award Lecture: Unique properties of decidual T cells and their role in immune regulation during human pregnancy. , 2010, Placenta.
[50] B. Klapp,et al. In vivo dendritic cell depletion reduces breeding efficiency, affecting implantation and early placental development in mice , 2008, Journal of Molecular Medicine.
[51] D. Keskin,et al. TGFβ promotes conversion of CD16+ peripheral blood NK cells into CD16− NK cells with similarities to decidual NK cells , 2007, Proceedings of the National Academy of Sciences.
[52] J. Dietl,et al. Specific subsets of immune cells in human decidua differ between normal pregnancy and preeclampsia - a prospective observational study , 2009, Reproductive biology and endocrinology : RB&E.
[53] Luchuan Liang,et al. Assessment of Requirements for IL-15 and IFN Regulatory Factors in Uterine NK Cell Differentiation and Function During Pregnancy 1 , 2003, The Journal of Immunology.
[54] A. Bakardjiev,et al. Invasive Extravillous Trophoblasts Restrict Intracellular Growth and Spread of Listeria monocytogenes , 2011, PLoS pathogens.
[55] E. Pamer,et al. Coordinate regulation of tissue macrophage and dendritic cell population dynamics by CSF-1 , 2011, The Journal of experimental medicine.
[56] B. Mitchell,et al. The distribution of uterine macrophages in virgin and early pregnant mice. , 1991, Journal of anatomy.
[57] J. Thaxton,et al. TLR-Mediated Preterm Birth in Response to Pathogenic Agents , 2010, Infectious diseases in obstetrics and gynecology.
[58] R. Redline. Macrophages in the basal plate of pre-eclamptic placentae. , 2001, Placenta.
[59] A. Sharkey,et al. The effect of pregnancy on the uterine NK cell KIR repertoire , 2011, European journal of immunology.
[60] J. Chi,et al. The frequency, clinical significance, and pathological features of chronic chorioamnionitis: a lesion associated with spontaneous preterm birth , 2010, Modern Pathology.
[61] R. Geffers,et al. Macrophages at the Fetal–Maternal Interface Express Markers of Alternative Activation and Are Induced by M-CSF and IL-10 , 2011, The Journal of Immunology.
[62] T. Mosmann,et al. Synthesis of T helper 2-type cytokines at the maternal-fetal interface. , 1993, Journal of immunology.
[63] Y. Sasaki,et al. Predominance of Th2‐promoting dendritic cells in early human pregnancy decidua , 2003, Journal of leukocyte biology.
[64] J. Strominger,et al. Two Unique Human Decidual Macrophage Populations , 2011, The Journal of Immunology.
[65] A. Kotini,et al. Human decidual cells activity in women with spontaneous abortions of probable CMV aetiology during the first trimester of gestation. An immunohistochemical study with CMV-associated antigen. , 2004, Acta medica.
[66] P. Pileri,et al. Antigen-independent activation of naive and memory resting T cells by a cytokine combination , 1994, The Journal of experimental medicine.
[67] J. Brosens,et al. Decidualization of the Human Endometrium: Mechanisms, Functions, and Clinical Perspectives , 2007, Seminars in reproductive medicine.
[68] Jeff E. Mold,et al. Immunological tolerance during fetal development: from mouse to man. , 2012, Advances in immunology.
[69] J. Dietl,et al. Antigen‐presenting Cells in Pregnant and Non‐pregnant Human Myometrium , 2010, American journal of reproductive immunology.
[70] T. Konno,et al. Natural killer cells direct hemochorial placentation by regulating hypoxia-inducible factor dependent trophoblast lineage decisions , 2011, Proceedings of the National Academy of Sciences.
[71] Jeff Reese,et al. Molecular cues to implantation. , 2004, Endocrine reviews.
[72] J. Pollard,et al. Expression of colony-stimulating factor-1 in the human uterus and placenta. , 1992, The Journal of clinical endocrinology and metabolism.
[73] P. Park,et al. Human Decidual Natural Killer Cells Are a Unique NK Cell Subset with Immunomodulatory Potential , 2003, The Journal of experimental medicine.
[74] S. Lye,et al. Vascular-leukocyte interactions: mechanisms of human decidual spiral artery remodeling in vitro. , 2010, The American journal of pathology.
[75] S. Hiby,et al. Human Decidual Natural Killer Cells Express the Receptor for and Respond to the Cytokine Interleukin 151 , 2000, Biology of reproduction.
[76] G. Mor,et al. REVIEW ARTICLE: Inflammation and Implantation , 2009, American journal of reproductive immunology.
[77] R. Apps,et al. Paternal MHC expression on mouse trophoblast affects uterine vascularization and fetal growth , 2011, Proceedings of the National Academy of Sciences.
[78] J. M. Brandon,et al. Macrophage distribution in decidual tissue from early implantation to the periparturient period in mice as defined by the macrophage differentiation antigens F4/80, macrosialin and the type 3 complement receptor. , 1995, Journal of reproduction and fertility.
[79] J. Theriot,et al. Listeria monocytogenes Traffics from Maternal Organs to the Placenta and Back , 2006, PLoS pathogens.
[80] J. Pollard,et al. Colony-Stimulating Factor-1-Dependent Macrophage Functions Regulate the Maternal Decidua Immune Responses against Listeria monocytogenes Infections during Early Gestation in Mice , 2008, Infection and Immunity.
[81] J. Bulmer,et al. Quantitative analysis of T lymphocyte subsets in pregnant and nonpregnant human endometrium. , 1996, Biology of reproduction.
[82] L. Giudice,et al. Cytotrophoblast induction of arterial apoptosis and lymphangiogenesis in an in vivo model of human placentation. , 2006, The Journal of clinical investigation.
[83] Des C. Jones,et al. Ex vivo functional responses to HLA-G differ between blood and decidual NK cells. , 2011, Molecular human reproduction.
[84] R. Geffers,et al. Gene Expression Profiling of Human Decidual Macrophages: Evidence for Immunosuppressive Phenotype , 2008, PloS one.
[85] M. Petroff,et al. The hidden maternal-fetal interface: events involving the lymphoid organs in maternal-fetal tolerance. , 2010, The International journal of developmental biology.
[86] R. Ward,et al. Activated Primary and Memory CD8 T Cells Migrate to Nonlymphoid Tissues Regardless of Site of Activation or Tissue of Origin1 , 2004, The Journal of Immunology.
[87] A. Bakardjiev,et al. Placental Syncytiotrophoblast Constitutes a Major Barrier to Vertical Transmission of Listeria monocytogenes , 2010, PLoS pathogens.
[88] R. Levine,et al. Pathogenesis of preeclampsia. , 2010, Annual review of pathology.
[89] S. Fushiki,et al. IL-15 Expression at Human Endometrium and Decidua , 2000, Biology of reproduction.
[90] G. Krikun,et al. Toll‐Like Receptor 4 Expression in Decidual Cells and Interstitial Trophoblasts Across Human Pregnancy , 2012, American journal of reproductive immunology.
[91] R. Doms,et al. Placental expression of DC‐SIGN may mediate intrauterine vertical transmission of HIV , 2001, The Journal of pathology.
[92] Chau‐Ching Liu,et al. The Involvement of Interleukin (IL)-15 in Regulating the Differentiation of Granulated Metrial Gland Cells in Mouse Pregnant Uterus , 1996, The Journal of experimental medicine.
[93] J. Aplin,et al. Evidence for immune cell involvement in decidual spiral arteriole remodeling in early human pregnancy. , 2009, The American journal of pathology.
[94] M. Piccinni,et al. Defective production of both leukemia inhibitory factor and type 2 T-helper cytokines by decidual T cells in unexplained recurrent abortions , 1998, Nature Medicine.
[95] D. Roelen,et al. Evidence for a Selective Migration of Fetus-Specific CD4+CD25bright Regulatory T Cells from the Peripheral Blood to the Decidua in Human Pregnancy , 2008, The Journal of Immunology.
[96] C. Maccalman,et al. Decidual NK Cells Alter In Vitro First Trimester Extravillous Cytotrophoblast Migration: A Role for IFN-γ1 , 2006, The Journal of Immunology.
[97] R. Modlin,et al. "Dermal dendritic cells" comprise two distinct populations: CD1+ dendritic cells and CD209+ macrophages. , 2008, The Journal of investigative dermatology.
[98] J. Thaxton,et al. REVIEW ARTICLE: Interleukin‐10: A Multi‐Faceted Agent of Pregnancy , 2010, American journal of reproductive immunology.
[99] A. Moffett,et al. Human uterine leukocytes and pregnancy. , 2004, Tissue antigens.
[100] L. Gardner,et al. The role of trophoblast in the physiological change in decidual spiral arteries. , 1999, Human reproduction.
[101] J. D. Di Santo,et al. Interferon γ Contributes to Initiation of Uterine Vascular Modification, Decidual Integrity, and Uterine Natural Killer Cell Maturation during Normal Murine Pregnancy , 2000, The Journal of experimental medicine.
[102] D. Raulet. Missing self recognition and self tolerance of natural killer (NK) cells. , 2006, Seminars in immunology.
[103] A. Moffett,et al. Dendritic Cells in the Human Decidua1 , 2003, Biology of reproduction.
[104] A. Bakardjiev,et al. Pathogens and the placental fortress. , 2012, Current opinion in microbiology.
[105] O. Erez,et al. Distribution of CD14+ and CD68+ macrophages in the placental bed and basal plate of women with preeclampsia and preterm labor. , 2007, Placenta.
[106] A. Moffett,et al. Immunology of placentation in eutherian mammals , 2006, Nature Reviews Immunology.
[107] E. Haddad,et al. Decidual Infiltration and Activation of Macrophages Leads to Early Embryo Loss , 1997, American journal of reproductive immunology.
[108] Y. W. Loke,et al. Secretion of colony stimulating factor-1 by human first trimester placental and decidual cell populations and the effect of this cytokine on trophoblast thymidine uptake in vitro , 1995 .
[109] C. Snyder. Buffered memory: a hypothesis for the maintenance of functional, virus-specific CD8+ T cells during cytomegalovirus infection , 2011, Immunologic research.
[110] R. Khanna,et al. Human cytomegalovirus: clinical aspects, immune regulation, and emerging treatments. , 2004, The Lancet. Infectious diseases.
[111] Y. Sasaki,et al. Proportion of peripheral blood and decidual CD4+ CD25bright regulatory T cells in pre‐eclampsia , 2007, Clinical and experimental immunology.
[112] F. Claas,et al. Differential distribution and phenotype of decidual macrophages in preeclamptic versus control pregnancies. , 2011, The American journal of pathology.
[113] D. Roelen,et al. Expression of NK cell receptors on decidual T cells in human pregnancy. , 2009, Journal of reproductive immunology.
[114] Graeme N. Smith,et al. Natural killer cell-triggered vascular transformation: maternal care before birth? , 2011, Cellular and Molecular Immunology.
[115] J. Padbury,et al. Evidence for Participation of Uterine Natural Killer Cells in the Mechanisms Responsible for Spontaneous Preterm Labor and Delivery , 2010 .
[116] A. Erlebacher. Immune surveillance of the maternal/fetal interface: controversies and implications , 2010, Trends in Endocrinology & Metabolism.
[117] R. Redline,et al. Specific defects in the anti-listerial immune response in discrete regions of the murine uterus and placenta account for susceptibility to infection. , 1988, Journal of immunology.
[118] J. Nelson,et al. The otherness of self: microchimerism in health and disease. , 2012, Trends in immunology.
[119] O. Chazara,et al. Maternal KIR and fetal HLA‐C: a fine balance , 2011, Journal of leukocyte biology.
[120] T. Geijtenbeek,et al. Unique appearance of proliferating antigen-presenting cells expressing DC-SIGN (CD209) in the decidua of early human pregnancy. , 2003, The American journal of pathology.
[121] J. Bulmer,et al. Granulated lymphocytes in human endometrium: histochemical and immunohistochemical studies. , 1991, Human reproduction.
[122] T. Khong,et al. Inadequate maternal vascular response to placentation in pregnancies complicated by pre‐eclampsia and by small‐for‐gestational age infants , 1986 .
[123] M. Adams,et al. Alterations in maternal and fetal heart functions accompany failed spiral arterial remodeling in pregnant mice. , 2011, American journal of obstetrics and gynecology.
[124] R. Romero,et al. The preterm parturition syndrome , 2006, BJOG : an international journal of obstetrics and gynaecology.
[125] G. Mor,et al. REVIEW ARTICLE: Toll‐Like Receptors at the Maternal–Fetal Interface in Normal Pregnancy and Pregnancy Disorders , 2010, American journal of reproductive immunology.
[126] J. Theriot,et al. Correction: Listeria monocytogenes Traffics from Maternal Organs to the Placenta and Back , 2006, PLoS Pathogens.
[127] K. Tsuneyama,et al. A role for IL-17 in induction of an inflammation at the fetomaternal interface in preterm labour. , 2010, Journal of reproductive immunology.
[128] Y. Sasaki,et al. Decidual and peripheral blood CD4+CD25+ regulatory T cells in early pregnancy subjects and spontaneous abortion cases. , 2004, Molecular human reproduction.
[129] H. Volk,et al. Human Chorionic Gonadotropin Attracts Regulatory T Cells into the Fetal-Maternal Interface during Early Human Pregnancy1 , 2009, The Journal of Immunology.
[130] L. Gardner,et al. Expression of the colony stimulating factor-1 receptor (c-fms product) by cells at the human uteroplacental interface. , 1993, Laboratory investigation; a journal of technical methods and pathology.
[131] D. Weissman,et al. Constitutive and induced expression of DC‐SIGN on dendritic cell and macrophage subpopulations in situ and in vitro , 2002, Journal of leukocyte biology.
[132] G. Krikun,et al. Regulation of monocyte chemoattractant protein-1 expression by tumor necrosis factor-alpha and interleukin-1beta in first trimester human decidual cells: implications for preeclampsia. , 2006, The American journal of pathology.
[133] M. Collins,et al. Dendritic cell entrapment within the pregnant uterus inhibits immune surveillance of the maternal/fetal interface in mice. , 2009, The Journal of clinical investigation.
[134] S. Renaud,et al. The Role of Macrophages in Utero-placental Interactions During Normal and Pathological Pregnancy , 2008, Immunological investigations.
[135] K. Red-Horse,et al. Trophoblast differentiation during embryo implantation and formation of the maternal-fetal interface. , 2004, The Journal of clinical investigation.
[136] M. Carrington,et al. Combinations of Maternal KIR and Fetal HLA-C Genes Influence the Risk of Preeclampsia and Reproductive Success , 2004, The Journal of experimental medicine.
[137] M. Merchant,et al. Evidence of specialized leukocyte‐vascular homing interactions at the maternal / fetal interface , 1999, European journal of immunology.
[138] A. G. Betz,et al. Gimme shelter: the immune system during pregnancy , 2011, Immunological reviews.
[139] K. Benirschke,et al. Pathology of the Human Placenta , 1992, Springer New York.
[140] S. Goerdt,et al. Macrophages of Human First Trimester Decidua Express Markers Associated to Alternative Activation , 2004, American journal of reproductive immunology.
[141] Noam Stern-Ginossar,et al. Endometrial NK Cells Are Special Immature Cells That Await Pregnancy1 , 2008, The Journal of Immunology.
[142] W. Wiktor-Jedrzejczak,et al. A pregnancy defect in the osteopetrotic (op/op) mouse demonstrates the requirement for CSF-1 in female fertility. , 1991, Developmental biology.
[143] E. Tagliani,et al. Dendritic cell function at the maternal–fetal interface , 2011, Expert review of clinical immunology.
[144] S. Fisher,et al. The placenta: transcriptional, epigenetic, and physiological integration during development. , 2010, The Journal of clinical investigation.
[145] W. Rath,et al. Dendritic cells are equally distributed in intrauterine and tubal ectopic pregnancies. , 2011, Fertility and sterility.
[146] Judith E. Cartwright,et al. Extravillous trophoblast and decidual natural killer cells: a remodelling partnership. , 2012, Human reproduction update.
[147] R. Romero,et al. Exodus-1 (CCL20): evidence for the participation of this chemokine in spontaneous labor at term, preterm labor, and intrauterine infection. , 2008, Journal of perinatal medicine.
[148] D. Roelen,et al. Differential distribution of CD4(+)CD25(bright) and CD8(+)CD28(-) T-cells in decidua and maternal blood during human pregnancy. , 2006, Placenta.
[149] D. Artis,et al. Border patrol: regulation of immunity, inflammation and tissue homeostasis at barrier surfaces by IL-22 , 2011, Nature Immunology.
[150] T. Suda,et al. Angiogenic Role of LYVE-1–Positive Macrophages in Adipose Tissue , 2007, Circulation research.
[151] D. Roelen,et al. Fetal-maternal HLA-C mismatch is associated with decidual T cell activation and induction of functional T regulatory cells. , 2009, Journal of reproductive immunology.