Access the full text.
Sign up today, get DeepDyve free for 14 days.
B. Richardson, J. Strahler, T. Pivirotto, J. Quddus, G. Bayliss, Laura Gross, K. O'rourke, D. Powers, Samir Hanash, Marcia Johnson (1992)
Phenotypic and functional similarities between 5-azacytidine-treated T cells and a T cell subset in patients with active systemic lupus erythematosus.Arthritis and rheumatism, 35 6
J. Nyce, L. Liu, P. Jones (1986)
Variable effects of DNA-synthesis inhibitors upon DNA methylation in mammalian cells.Nucleic acids research, 14 10
Jeffrey Yoder, Neilesh Soman, G. Verdine, T. Bestor (1997)
DNA (cytosine-5)-methyltransferases in mouse cells and tissues. Studies with a mechanism-based probe.Journal of molecular biology, 270 3
Zhiyong Zhang, C. Deng, Q. Lu, B. Richardson (2002)
Age-dependent DNA methylation changes in the ITGAL (CD11a) promoterMechanisms of Ageing and Development, 123
Jing Li, C. Papadopoulos, Jimmy Xu (1999)
Nanoelectronics: Growing Y-junction carbon nanotubesNature, 402
J. Attwood, R. Yung, B. Richardson (2002)
DNA methylation and the regulation of gene transcriptionCellular and Molecular Life Sciences CMLS, 59
J. Quddus, Kent Johnson, J. Gavalchin, E. Amento, C. Chrisp, R. Yung, B. Richardson (1993)
Treating activated CD4+ T cells with either of two distinct DNA methyltransferase inhibitors, 5-azacytidine or procainamide, is sufficient to cause a lupus-like disease in syngeneic mice.The Journal of clinical investigation, 92 1
H. Ng, Bird Adrian (1999)
DNA methylation and chromatin modification.Current opinion in genetics & development, 9 2
J. Yang, C. Deng, N. Hemati, S. Hanash, B. Richardson (1997)
Effect of mitogenic stimulation and DNA methylation on human T cell DNA methyltransferase expression and activity.Journal of immunology, 159 3
E. Tan, A. Cohen, J. Fries, A. Masi, D. McShane, N. Rothfield, J. Schaller, N. Talal, R. Winchester (1982)
The 1982 revised criteria for the classification of systemic lupus erythematosus.Arthritis and rheumatism, 25 11
M. Okano, Shaoping Xie, E. Li (1998)
Cloning and characterization of a family of novel mammalian DNA (cytosine-5) methyltransferasesNature Genetics, 19
M. Nakao (2001)
Epigenetics: interaction of DNA methylation and chromatin.Gene, 278 1-2
C. Deng, M. Kaplan, Jun Yang, Donna Ray, Zhiyong Zhang, W. McCune, Samir Hanash, B. Richardson (2001)
Decreased Ras-mitogen-activated protein kinase signaling may cause DNA hypomethylation in T lymphocytes from lupus patients.Arthritis and rheumatism, 44 2
Peter Jones, Shirley Taylor, Vincent Wilson (1983)
Inhibition of DNA methylation by 5-azacytidine.Recent results in cancer research. Fortschritte der Krebsforschung. Progres dans les recherches sur le cancer, 84
B. Richardson, L. Scheinbart, J. Strahler, Laura Gross, S. Hanash, Marcia Johnson (1990)
Evidence for impaired T cell DNA methylation in systemic lupus erythematosus and rheumatoid arthritis.Arthritis and rheumatism, 33 11
R. Yung, J. Quddus, C. Chrisp, Kent Johnson, B. Richardson (1995)
Mechanism of drug-induced lupus. I. Cloned Th2 cells modified with DNA methylation inhibitors in vitro cause autoimmunity in vivo.Journal of immunology, 154 6
Y. Luo, Y. Li, Y. Su, H. Yin, N. Hu, S. Wang, Q. Lu (2008)
Abnormal DNA methylation in T cells from patients with subacute cutaneous lupus erythematosusBritish Journal of Dermatology, 159
S. Knight, A. Flannery, M. Hirst, L. Campbell, Z. Christodoulou, S. Phelps, J. Pointon, H. Middleton-Price, A. Barnicoat, M. Pembrey, J. Holland, B. Oostra, M. Bobrow, K. Davies (1993)
Trinucleotide repeat amplification and hypermethylation of a CpG island in FRAXE mental retardationCell, 74
C. Deng, Jun Yang, J. Scott, S. Hanash, B. Richardson (1998)
Role of the ras-MAPK Signaling Pathway in the DNA Methyltransferase Response to DNA Hypomethylation, 379
Guo-Liang Xu, T. Bestor, D. Bourc’his, C. Hsieh, N. Tommerup, M. Bugge, M. Hultén, Xiaoyan Qu, J. Russo, E. Viégas-Péquignot (1999)
Chromosome instability and immunodeficiency syndrome caused by mutations in a DNA methyltransferase geneNature, 402
T. Sado, M. Okano, E. Li, H. Sasaki (2004)
De novo DNA methylation is dispensable for the initiation and propagation of X chromosome inactivation, 131
R. Yung, Sandra Chang, N. Hemati, Kent Johnson, B. Richardson (1997)
Mechanisms of drug-induced lupus. IV. Comparison of procainamide and hydralazine with analogs in vitro and in vivo.Arthritis and rheumatism, 40 8
J. Christman, G. Sheikhnejad, M. Dizik, S. Abileah, E. Wainfan (1993)
Reversibility of changes in nucleic acid methylation and gene expression induced in rat liver by severe dietary methyl deficiency.Carcinogenesis, 14 4
C. Bombardier, D. Gladman, M. Urowitz, Dominique Caron, Chih Chang, A. Austin, A. Bell, D. Bloch, Paul Corey, J. Decker, J. Esdaile, J. Fries, E. Ginzler, C. Goldsmith, M. Hochberg, John Jones, Nicole Riche, M. Liang, M. Lockshin, L. Muenz, D. Sackett, P. Schur (1992)
Derivation of the SLEDAI. A disease activity index for lupus patients. The Committee on Prognosis Studies in SLE.Arthritis and rheumatism, 35 6
W. Lei, Y. Luo, K. Yan, S. Zhao, Y. Li, X. Qiu, Y. Zhou, H. Long, M. Zhao, Y. Liang, Y. Su, Q. Lu (2009)
Abnormal DNA methylation in CD4+ T cells from patients with systemic lupus erythematosus, systemic sclerosis, and dermatomyositisScandinavian Journal of Rheumatology, 38
M. Kaplan, Q. Lu, Ailing Wu, J. Attwood, B. Richardson (2004)
Demethylation of Promoter Regulatory Elements Contributes to Perforin Overexpression in CD4+ Lupus T Cells1The Journal of Immunology, 172
B. Richardson, D. Powers, Forrest Hooper, R. Yung, K. O'rourke (1994)
Lymphocyte function-associated antigen 1 overexpression and T cell autoreactivity.Arthritis and rheumatism, 37 9
R. Yung, D. Powers, Kent Johnson, E. Amento, Dianne Carr, T. Laing, Jun Yang, Sandra Chang, N. Hemati, B. Richardson (1996)
Mechanisms of drug-induced lupus. II. T cells overexpressing lymphocyte function-associated antigen 1 become autoreactive and cause a lupuslike disease in syngeneic mice.The Journal of clinical investigation, 97 12
D. Klinman, J. Mushinski, M. Honda, Y. Ishigatsubo, J. Mountz, E. Raveche, A. Steinberg (1986)
Oncogene expression in autoimmune and normal peripheral blood mononuclear cellsThe Journal of Experimental Medicine, 163
B. Richardson (2002)
Role of DNA methylation in the regulation of cell function: autoimmunity, aging and cancer.The Journal of nutrition, 132 8 Suppl
C. Deng, Q. Lu, Zhiyong Zhang, Tharaknath Rao, J. Attwood, R. Yung, B. Richardson (2003)
Hydralazine may induce autoimmunity by inhibiting extracellular signal-regulated kinase pathway signaling.Arthritis and rheumatism, 48 3
G. Tsokos, G. Tsokos, G. Kammer (2000)
Molecular aberrations in human systemic lupus erythematosus.Molecular medicine today, 6 11
L. Scheinbart, Marcia Johnson, Laura Gross, S. Edelstein, B. Richardson (1991)
Procainamide inhibits DNA methyltransferase in a human T cell line.The Journal of rheumatology, 18 4
Bruce Richardson, Raymond Yung (1999)
Role of DNA methylation in the regulation of cell function.The Journal of laboratory and clinical medicine, 134 4
L. Chuang, Hang-In Ian, Tong-Wey Koh, H. Ng, Guoliang Xu, Benjamin Li (1997)
Human DNA-(cytosine-5) methyltransferase-PCNA complex as a target for p21WAF1.Science, 277 5334
C. Fuke, M. Shimabukuro, A. Petronis, J. Sugimoto, T. Oda, K. Miura, Tetsuji Miyazaki, C. Ogura, Y. Okazaki, Y. Jinno (2004)
Age Related Changes in 5‐methylcytosine Content in Human Peripheral Leukocytes and Placentas: an HPLC‐based StudyAnnals of Human Genetics, 68
A. Sawalha, M. Jeffries (2007)
Defective DNA methylation and CD70 overexpression in CD4+ T cells in MRL/lpr lupus‐prone miceEuropean Journal of Immunology, 37
R. Januchowski, M. Wudarski, H. Chwalińska-Sadowska, P. Jagodziński (2007)
Prevalence of ZAP-70, LAT, SLP-76, and DNA methyltransferase 1 expression in CD4+ T cells of patients with systemic lupus erythematosusClinical Rheumatology, 27
H. Ogasawara, M. Okada, H. Kaneko, T. Hishikawa, I. Sekigawa, Hiroshi Hashimoto (2003)
Possible role of DNA hypomethylation in the induction of SLE: relationship to the transcription of human endogenous retroviruses.Clinical and experimental rheumatology, 21 6
M. Surani (1998)
Imprinting and the Initiation of Gene Silencing in the Germ LineCell, 93
A. Sawalha, B. Richardson (2005)
DNA Methylation in the Pathogenesis of Systemic Lupus ErythematosusCurrent Pharmacogenomics, 3
Xiaowei Wang, B. Seed (2003)
A PCR primer bank for quantitative gene expression analysis.Nucleic acids research, 31 24
Q. Lu, Donna Ray, D. Gutsch, B. Richardson (2002)
Effect of DNA methylation and chromatin structure on ITGAL expression.Blood, 99 12
M. Habib, F. Fares, Claire Bourgeois, C. Bella, J. Bernardino, F. Hernandez-Blazquez, A. Capoa, Alain Niveleau (1999)
DNA global hypomethylation in EBV-transformed interphase nuclei.Experimental cell research, 249 1
A. Agoston, P. Argani, S. Yegnasubramanian, A. Marzo, M. Ansari-Lari, J. Hicks, N. Davidson, W. Nelson (2005)
Increased Protein Stability Causes DNA Methyltransferase 1 Dysregulation in Breast Cancer*Journal of Biological Chemistry, 280
S. Friedman (1981)
The inhibition of DNA(cytosine-5)methylases by 5-azacytidine. The effect of azacytosine-containing DNA.Molecular pharmacology, 19 2
(2003)
Epigenomic stress response. Knockdown of DNA methyltransferase 1 triggers an intra-S-phase arrest of DNA replication and induction of stress response genes
A. Slack, N. Cervoni, M. Pinard, M. Szyf (1999)
Feedback regulation of DNA methyltransferase gene expression by methylation.European journal of biochemistry, 264 1
P. Vertino, R. Yen, Jin Gao, S. Baylin (1996)
De novo methylation of CpG island sequences in human fibroblasts overexpressing DNA (cytosine-5-)-methyltransferaseMolecular and Cellular Biology, 16
T. Bestor (1992)
Activation of mammalian DNA methyltransferase by cleavage of a Zn binding regulatory domain.The EMBO Journal, 11
K. Robertson (2001)
DNA methylation, methyltransferases, and cancerOncogene, 20
Objectives To analyze associations between the patterns of global DNA hypomethylation and expression of DNA methyltransferase (DNMT1, DNMT3A, and DNMT3B) in patients with systemic lupus erythematosus (SLE) and to obtain a deeper understanding of the role that epigenetic mechanism may have on SLE. Methods The global DNA methylation profile in T cells from 34 patients with SLE and 23 healthy controls was assessed by the specific monoclonal antibodies to 5‐methylcytosine and was analyzed quantitatively by flow cytometry. Real‐time reverse transcription–polymerase chain reaction was applied to analyze DNMTs (DNMT1, DNMT3A, and DNMT3B) mRNA levels in T cells from patients and controls. Results Patients with SLE had significantly global DNA hypomethylation than that in controls (P = 0.004), and the global DNA methylation was inverse correlated with the SLE Disease Activity Index (P < 0.0005). Patients with SLE had significantly lower levels of DNMT1 mRNA than that in controls (P < 0.0005), and there was no correlation between the level of DNMT1 mRNA and SLE Disease Activity Index, neither the correlation between the levels of DNMT1 mRNA and global DNA methylation. There was no statistical difference in levels of DNMT3A mRNA between the patients with SLE and normal controls. The levels of DNMT3B mRNA were very low, and there was no difference in patients with SLE and normal controls. Conclusions Global DNA hypomethylation plays an important role in the pathogenesis of SLE. Lower expression of DNMT1 mRNA may play a role in the pathogenesis of SLE, which is not the exclusive regulation factor of global DNA methylation of SLE. The mechanism of global DNA hypomethylation in patients with SLE was complicated. Enzymes that participate in DNA methylation and demethylation events should be studied further.
International Journal of Dermatology – Wiley
Published: Jun 1, 2011
Read and print from thousands of top scholarly journals.
Already have an account? Log in
Bookmark this article. You can see your Bookmarks on your DeepDyve Library.
To save an article, log in first, or sign up for a DeepDyve account if you don’t already have one.
Copy and paste the desired citation format or use the link below to download a file formatted for EndNote
Access the full text.
Sign up today, get DeepDyve free for 14 days.
All DeepDyve websites use cookies to improve your online experience. They were placed on your computer when you launched this website. You can change your cookie settings through your browser.