Effect of UV Radiation on the Neonatal Skin Immune System— Implications for Melanoma †
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[1] H. Muller,et al. Proteomics identifies enhanced expression of stefin A in neonatal murine skin compared with adults: functional implications , 2007, The British journal of dermatology.
[2] F. Noonan,et al. Deficient inflammatory response to UV radiation in neonatal mice , 2007, Journal of leukocyte biology.
[3] Benjamin D. Simons,et al. A single type of progenitor cell maintains normal epidermis , 2007, Nature.
[4] B. Adkins,et al. Murine Neonatal CD4+ Cells Are Poised for Rapid Th2 Effector-Like Function1 , 2007, The Journal of Immunology.
[5] Elaine Fuchs,et al. Scratching the surface of skin development , 2007, Nature.
[6] R. Marais,et al. Melanoma biology and new targeted therapy , 2007, Nature.
[7] D. Fisher,et al. Melanocyte biology and skin pigmentation , 2007, Nature.
[8] M. Komine,et al. The direct action of 1α,25(OH)2-vitamin D3 on purified mouse Langerhans cells , 2007 .
[9] J. Penninger,et al. Epidermal RANKL controls regulatory T-cell numbers via activation of dendritic cells , 2006, Nature Medicine.
[10] Thomas Rülicke,et al. Peroxiredoxin 6 is a potent cytoprotective enzyme in the epidermis. , 2006, The American journal of pathology.
[11] G. Woods,et al. Neonatal exposure to UV‐B radiation leads to a large reduction in Langerhans cell density, but by maturity, there is an enhanced ability of dendritic cells to stimulate T cells , 2006, Immunology and cell biology.
[12] M. Barbacid,et al. Spontaneous and UV radiation-induced multiple metastatic melanomas in Cdk4R24C/R24C/TPras mice. , 2006, Cancer research.
[13] Dae-Yeul Yu,et al. T lymphocytes and dendritic cells are activated by the deletion of peroxiredoxin II (Prx II) gene. , 2006, Immunology letters.
[14] F. Noonan,et al. Neonatal susceptibility to UV induced cutaneous malignant melanoma in a mouse model , 2006, Photochemical & photobiological sciences : Official journal of the European Photochemistry Association and the European Society for Photobiology.
[15] K. Cooper,et al. Ultraviolet immunosuppression: mechanisms and consequences. , 2006, Dermatologic clinics.
[16] G. Kay,et al. Neonatal ultraviolet radiation exposure is critical for malignant melanoma induction in pigmented Tpras transgenic mice. , 2005, The Journal of investigative dermatology.
[17] B. Lehmann. The Vitamin D3 Pathway in Human Skin and its Role for Regulation of Biological Processes , 2005, Photochemistry and photobiology.
[18] R. Mason,et al. Skin cancer prevention: A possible role of 1,25dihydroxyvitamin D3 and its analogs , 2005, The Journal of Steroid Biochemistry and Molecular Biology.
[19] C. Stern. Neural induction: old problem, new findings, yet more questions , 2005, Development.
[20] B. Adkins. Neonatal T cell function. , 2005, Journal of pediatric gastroenterology and nutrition.
[21] H. Muller,et al. The skin immune system and the challenge of tumour immunosurveillance. , 2005, European journal of dermatology : EJD.
[22] S. Meindl,et al. Vitamin D receptor ablation alters skin architecture and homeostasis of dendritic epidermal T cells , 2005, The British journal of dermatology.
[23] D. Whiteman,et al. Melanoma and sunburn , 1994, Cancer Causes & Control.
[24] H. Muller,et al. Poverty of inflammation in neonatal skin , 2005 .
[25] N. Copeland,et al. Melanocytes and the microphthalmia transcription factor network. , 2004, Annual review of genetics.
[26] Glenn Merlino,et al. Ultraviolet B but not Ultraviolet A Radiation Initiates Melanoma , 2004, Cancer Research.
[27] L. Anderson. Introduction and overview. Perinatal carcinogenesis: growing a node for epidemiology, risk management, and animal studies. , 2004, Toxicology and applied pharmacology.
[28] C. Leclerc,et al. Neonatal adaptive immunity comes of age , 2004, Nature Reviews Immunology.
[29] R. Mason,et al. 1,25-Dihydroxyvitamin D and three low-calcemic analogs decrease UV-induced DNA damage via the rapid response pathway , 2004, Journal of Steroid Biochemistry and Molecular Biology.
[30] G. Imokawa. Autocrine and paracrine regulation of melanocytes in human skin and in pigmentary disorders. , 2004, Pigment cell research.
[31] A. Elbe-Bürger,et al. Ontogeny of Langerin/CD207 expression in the epidermis of mice. , 2004, The Journal of investigative dermatology.
[32] X.-Y. Lu,et al. Metallothionein‐null mice exhibit reduced tolerance to ultraviolet B injury in vivo , 2004, Clinical and experimental dermatology.
[33] M. Kripke,et al. Photoimmunology of experimental melanoma , 1991, Cancer and Metastasis Reviews.
[34] D. Whiteman,et al. Childhood sun exposure as a risk factor for melanoma: a systematic review of epidemiologic studies , 2004, Cancer Causes & Control.
[35] G. Woods,et al. DEC‐205lo Langerinlo neonatal Langerhans' cells preferentially utilize a wortmannin‐sensitive, fluid‐phase pathway to internalize exogenous antigen , 2003, Immunology.
[36] K. Forsman-Semb,et al. Mice with Targeted Mutation of Peroxiredoxin 6 Develop Normally but Are Susceptible to Oxidative Stress* , 2003, Journal of Biological Chemistry.
[37] N. Hayward,et al. Melanocytic nevi, solar keratoses, and divergent pathways to cutaneous melanoma. , 2003, Journal of the National Cancer Institute.
[38] J. Reichrath,et al. Ultraviolet light (UV)‐induced immunosuppression: Is vitamin D the missing link? , 2003, Journal of cellular biochemistry.
[39] H. Muller,et al. Impaired CD40‐signalling in Langerhans’ cells from murine neonatal draining lymph nodes: implications for neonatally induced cutaneous tolerance , 2003, Clinical and experimental immunology.
[40] M. Meurer,et al. Demonstration of UVB-induced synthesis of 1α,25-dihydroxyvitamin D3 (calcitriol) in human skin by microdialysis , 2003, Archives of Dermatological Research.
[41] D. Whiteman,et al. Induction of metallothionein in human skin by routine exposure to sunlight: evidence for a systemic response and enhanced induction at certain body sites. , 2003, The Journal of investigative dermatology.
[42] L. Chin,et al. Components of the Rb pathway are critical targets of UV mutagenesis in a murine melanoma model , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[43] R. DePinho,et al. Ink4a/arf deficiency promotes ultraviolet radiation-induced melanomagenesis. , 2002, Cancer research.
[44] V. Siskind,et al. Longitudinal study of melanocytic nevi in adolescents. , 2002, Journal of the American Academy of Dermatology.
[45] M. S. Fisher,et al. Systemic alteration induced in mice by ultraviolet light irradiation and its relationship to ultraviolet carcinogenesis. 1977. , 1977, Bulletin of the World Health Organization.
[46] H. Muller,et al. Ultraviolet light induced injury: Immunological and inflammatory effects , 2001, Immunology and cell biology.
[47] P. Duray,et al. Neonatal sunburn and melanoma in mice , 2001, Nature.
[48] A. B. Lyons,et al. Acquisition of immune function during the development of the Langerhans cell network in neonatal mice , 2001, Immunology.
[49] K. Jan,et al. Nitric oxide is involved in arsenite inhibition of pyrimidine dimer excision. , 2001, Carcinogenesis.
[50] M. Meurer,et al. UVB-induced Conversion of 7-Dehydrocholesterol to 1α,25-Dihydroxyvitamin D3 (Calcitriol) in the Human Keratinocyte Line HaCaT¶ , 2000, Photochemistry and photobiology.
[51] D. Wilkinson,et al. Molecular control of neural crest formation, migration and differentiation. , 2000, Current opinion in cell biology.
[52] M. Rist,et al. Carcinogen‐modified dendritic cells induce immunosuppression by incomplete T‐cell activation resulting from impaired antigen uptake and reduced CD86 expression , 2000, Immunology.
[53] J. Bos. Skin immune system (SIS) , 2000 .
[54] S. Nishikawa,et al. Regulation of E- and P-cadherin expression correlated with melanocyte migration and diversification. , 1999, Developmental biology.
[55] S. Rosso,et al. Parallel risk assessment of melanoma and basal cell carcinoma: skin characteristics and sun exposure , 1998, Melanoma research.
[56] L. Chin,et al. Malignant melanoma: modern black plague and genetic black box. , 1998, Genes & development.
[57] R. Thieroff-Ekerdt,et al. Inhibitory effect of 1α,25-dihydroxyvitamin D3 on allogeneic lymphocyte stimulation and Langerhans cell maturation , 1998, Archives of Dermatological Research.
[58] M. Kripke,et al. Origin and characteristics of ultraviolet-B radiation-induced suppressor T lymphocytes. , 1998, Journal of immunology.
[59] L. Chin,et al. The INK4a/ARF tumor suppressor: one gene--two products--two pathways. , 1998, Trends in biochemical sciences.
[60] J. Bos. Skin Immune System : Cutaneous Immunology and Clinical Immunodermatology, Third Edition , 2004 .
[61] B. Stockinger. Neonatal tolerance mysteries solved. , 1996, Immunology today.
[62] P. Matzinger,et al. Neonatal Tolerance Revisited: Turning on Newborn T Cells with Dendritic Cells , 1996, Science.
[63] P. Lehmann,et al. Induction of TH1 and TH2 Immunity in Neonatal Mice , 1996, Science.
[64] M. Sarzotti,et al. Induction of Protective CTL Responses in Newborn Mice by a Murine Retrovirus , 1996, Science.
[65] F. Zindy,et al. Alternative reading frames of the INK4a tumor suppressor gene encode two unrelated proteins capable of inducing cell cycle arrest , 1995, Cell.
[66] C. Bucana,et al. Ultraviolet irradiation of murine skin alters cluster formation between lymph node dendritic cells and specific T lymphocytes. , 1994, Cellular immunology.
[67] D. Gabrilovich,et al. Retrovirus-induced immunosuppression via blocking of dendritic cell migration and down-regulation of adhesion molecules. , 1994, Immunology.
[68] S. Korsmeyer,et al. Bcl-2-deficient mice demonstrate fulminant lymphoid apoptosis, polycystic kidneys, and hypopigmented hair , 1993, Cell.
[69] A. Green,et al. Mortality from melanoma in migrants to Australia: variation by age at arrival and duration of stay. , 1992, American journal of epidemiology.
[70] C. Garbe. [The sun and malignant melanoma]. , 1992, Der Hautarzt; Zeitschrift fur Dermatologie, Venerologie, und verwandte Gebiete.
[71] K. Danno,et al. The effects of non-interval PUVA treatment on Langerhans cells and contact hypersensitivity. , 1992, Journal of dermatological science.
[72] M. Kripke. Effects of UV radiation on tumor immunity. , 1990, Journal of the National Cancer Institute.
[73] W. Willett,et al. Nonfamilial cutaneous melanoma incidence in women associated with sun exposure before 20 years of age. , 1989, Pediatrics.
[74] H. Muller,et al. Antigen presented in the local lymph node by cells from dimethylbenzanthracene-treated murine epidermis activates suppressor cells. , 1988, Cellular immunology.
[75] M. Roberts,et al. BLOCKING OF ACQUISITION AND PRESENTATION OF ANTIGEN BY DENDRITIC CELLS WITH CYCLOSPORINE , 1988, Transplantation.
[76] E. Gluckman,et al. AUTOIMMUNITY AFTER ALLOGENEIC BONE MARROW TRANSPLANTATION A STUDY OF 53 LONG‐TERM‐SURVIVING PATIENTS , 1988, Transplantation.
[77] C. Tohyama,et al. Regulation of metallothionein gene expression by 1 alpha,25-dihydroxyvitamin D3 in cultured cells and in mice. , 1987, Proceedings of the National Academy of Sciences of the United States of America.
[78] S. Knight,et al. Localization of antigen on lymph node dendritic cells after exposure to the contact sensitizer fluorescein isothiocyanate. Functional and morphological studies , 1987, The Journal of experimental medicine.
[79] H. Muller,et al. Sensitization through carcinogen-induced Langerhans cell-deficient skin activates specific long-lived suppressor cells for both cellular and humoral immunity. , 1987, Cellular immunology.
[80] S. Knight,et al. Dendritic cells and the initiation of contact sensitivity to fluorescein isothiocyanate. , 1986, Immunology.
[81] M. Kripke,et al. Studies on the role of antigen-presenting cells in the systemic suppression of contact hypersensitivity by UVB radiation. , 1986, Journal of immunology.
[82] J. Bos,et al. The skin immune system Its cellular constituents and their interactions. , 1986, Immunology today.
[83] M. Holick,et al. Aging decreases the capacity of human skin to produce vitamin D3. , 1985, The Journal of clinical investigation.
[84] B. Armstrong,et al. Cutaneous malignant melanoma and indicators of total accumulated exposure to the sun: an analysis separating histogenetic types. , 1984, Journal of the National Cancer Institute.
[85] M. S. Fisher,et al. Suppressor T lymphocytes control the development of primary skin cancers in ultraviolet-irradiated mice. , 1982, Science.
[86] R. Daynes,et al. Modification of immunological potential by ultraviolet radiation. II. Generation of suppressor cells in short-term UV-irradiated mice. , 1977, Transplantation.
[87] R. Daynes,et al. Evidence for the generation of suppressor cells by ultraviolet radiation. , 1977, Cellular immunology.
[88] M. S. Fisher,et al. Systemic alteration induced in mice by ultraviolet light irradiation and its relationship to ultraviolet carcinogenesis. , 1977, Proceedings of the National Academy of Sciences of the United States of America.
[89] M. S. Fisher,et al. Immunologic parameters of ultraviolet carcinogenesis. , 1976, Journal of the National Cancer Institute.
[90] S. Brodie,et al. Membrane flow during pinocytosis. A stereologic analysis , 1976, The Journal of cell biology.