Gene expression using microarrays in transplant recipients at risk of EBV lymphoproliferation after organ transplantation: Preliminary proof‐of‐concept
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J. Beyene | P. Hu | D. Hébert | A. Dipchand | V. Ng | D. Grant | M. Zielenska | S. Read | U. Allen | S. Weitzman | M. Solomon | M. Barton | A. Fecteau | B. Ngan | N. Khodai-Booran
[1] W. Dunsmuir,et al. Gene expression correlates of postinfective fatigue syndrome after infectious mononucleosis. , 2007, The Journal of infectious diseases.
[2] K. Kawa,et al. Selective Induction of Th2-Attracting Chemokines CCL17 and CCL22 in Human B Cells by Latent Membrane Protein 1 of Epstein-Barr Virus , 2004, Journal of Virology.
[3] Jae K. Lee,et al. Local-pooled-error test for identifying differentially expressed genes with a small number of replicated microarrays , 2003, Bioinform..
[4] M. Eck,et al. The SAP and SLAM families in immune responses and X-linked lymphoproliferative disease , 2003, Nature Reviews Immunology.
[5] Elisabetta Manduchi,et al. Fidelity and enhanced sensitivity of differential transcription profiles following linear amplification of nanogram amounts of endothelial mRNA. , 2003, Physiological genomics.
[6] S. Latour,et al. Molecular and immunological basis of X‐linked lymphoproliferative disease , 2003, Immunological reviews.
[7] T. Speed,et al. Summaries of Affymetrix GeneChip probe level data. , 2003, Nucleic acids research.
[8] J. Warrington,et al. Accurate and reproducible gene expression profiles from laser capture microdissection, transcript amplification, and high density oligonucleotide microarray analysis. , 2003, The Journal of molecular diagnostics : JMD.
[9] Gösta Winberg,et al. NotI passporting to identify species composition of complex microbial systems. , 2003, Nucleic acids research.
[10] S K Libutti,et al. Advantages of mRNA amplification for microarray analysis. , 2002, BioTechniques.
[11] K. Takada,et al. Human B Cells Immortalized with Epstein-Barr Virus Upregulate CCR6 and CCR10 and Downregulate CXCR4 and CXCR5 , 2002, Journal of Virology.
[12] T. Derfuss,et al. Signaling lymphocytic activation molecule (SLAM) regulates T cellular cytotoxicity , 2001, European journal of immunology.
[13] D. Hébert,et al. Utility of semiquantitative polymerase chain reaction for Epstein-Barr virus to measure virus load in pediatric organ transplant recipients with and without posttransplant lymphoproliferative disease. , 2001, Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.
[14] J. Preiksaitis,et al. Diagnosis and management of posttransplant lymphoproliferative disorder in solid-organ transplant recipients. , 2001, Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.
[15] T. Braciale,et al. Type 2 Cytokines Predominate in the Human CD4+T-Lymphocyte Response to Epstein-Barr Virus Nuclear Antigen 1 , 2000, Journal of Virology.
[16] G. Mazariegos,et al. Serial measurement of Epstein-Barr viral load in peripheral blood in pediatric liver transplant recipients during treatment for posttransplant lymphoproliferative disease. , 1998, Transplantation.
[17] D. Botstein,et al. Cluster analysis and display of genome-wide expression patterns. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[18] M. Ho. Risk factors and pathogenesis of posttransplant lymphoproliferative disorders. , 1995, Transplantation proceedings.
[19] J. H. Pope,et al. Transformation of foetal human leukocytes in vitro by filtrates of a human leukaemic cell line containing herpes‐like virus , 1968 .
[20] V. Diehl,et al. Herpes-Type Virus and Chromosome Marker in Normal Leukocytes after Growth with Irradiated Burkitt Cells , 1967, Science.
[21] L. Szekely,et al. SH2D1A and SLAM protein expression in human lymphocytes and derived cell lines. , 2000, International journal of cancer.
[22] Y. Benjamini,et al. Controlling the false discovery rate: a practical and powerful approach to multiple testing , 1995 .