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Featured researches published by Maureen Legendre.


Molecular and Cellular Biology | 2006

The DEK Nuclear Autoantigen Is a Secreted Chemotactic Factor

Nirit Mor-Vaknin; Antonello Punturieri; Kajal Sitwala; Neil E. Faulkner; Maureen Legendre; Michael S. Khodadoust; Ferdinand Kappes; Jeffrey H. Ruth; Alisa E. Koch; David J. Glass; Lilli Petruzzelli; Barbara S. Adams; David M. Markovitz

ABSTRACT The nuclear DNA-binding protein DEK is an autoantigen that has been implicated in the regulation of transcription, chromatin architecture, and mRNA processing. We demonstrate here that DEK is actively secreted by macrophages and is also found in synovial fluid samples from patients with juvenile arthritis. Secretion of DEK is modulated by casein kinase 2, stimulated by interleukin-8, and inhibited by dexamethasone and cyclosporine A, consistent with a role as a proinflammatory molecule. DEK is secreted in both a free form and in exosomes, vesicular structures in which transcription-modulating factors such as DEK have not previously been found. Furthermore, DEK functions as a chemotactic factor, attracting neutrophils, CD8+ T lymphocytes, and natural killer cells. Therefore, the DEK autoantigen, previously described as a strictly nuclear protein, is secreted and can act as an extracellular chemoattractant, suggesting a direct role for DEK in inflammation.


Arthritis & Rheumatism | 2011

DEK in the synovium of patients with juvenile idiopathic arthritis: characterization of DEK antibodies and posttranslational modification of the DEK autoantigen.

Nirit Mor-Vaknin; Ferdinand Kappes; Amalie E. Dick; Maureen Legendre; Catalina Damoc; Seagal Teitz-Tennenbaum; Roland P.S. Kwok; Elisa Ferrando-May; Barbara S. Adams; David M. Markovitz

OBJECTIVE DEK is a nuclear phosphoprotein and autoantigen in a subset of children with juvenile idiopathic arthritis (JIA). Autoantibodies to DEK are also found in a broad spectrum of disorders associated with abnormal immune activation. We previously demonstrated that DEK is secreted by macrophages, is released by apoptotic T cells, and attracts leukocytes. Since DEK has been identified in the synovial fluid (SF) of patients with JIA, this study was undertaken to investigate how DEK protein and/or autoantibodies may contribute to the pathogenesis of JIA. METHODS DEK autoantibodies, immune complexes (ICs), and synovial macrophages were purified from the SF of patients with JIA. DEK autoantibodies and ICs were purified by affinity-column chromatography and analyzed by 2-dimensional gel electrophoresis, immunoblotting, and enzyme-linked immunosorbent assay. DEK in supernatants and exosomes was purified by serial centrifugation and immunoprecipitation with magnetic beads, and posttranslational modifications of DEK were identified by nano-liquid chromatography tandem mass spectrometry (nano-LC-MS/MS). RESULTS DEK autoantibodies and protein were found in the SF of patients with JIA. Secretion of DEK by synovial macrophages was observed both in a free form and via exosomes. DEK autoantibodies (IgG2) may activate the complement cascade, primarily recognize the C-terminal portion of DEK protein, and exhibit higher affinity for acetylated DEK. Consistent with these observations, DEK underwent acetylation on an unprecedented number of lysine residues, as demonstrated by nano-LC-MS/MS. CONCLUSION These results indicate that DEK can contribute directly to joint inflammation in JIA by generating ICs through high-affinity interaction between DEK and DEK autoantibodies, a process enhanced by acetylation of DEK in the inflamed joint.


Scientific Reports | 2013

Murine Colitis is Mediated by Vimentin

Nirit Mor-Vaknin; Maureen Legendre; Yue Yu; Carlos H. Serezani; Sanjay K. Garg; Anna Jatzek; Michael D. Swanson; Marta J. Gonzalez-Hernandez; Seagal Teitz-Tennenbaum; Antonello Punturieri; N. Cary Engleberg; Ruma Banerjee; Marc Peters-Golden; John Y. Kao; David M. Markovitz

Vimentin, an abundant intermediate filament protein, presumably has an important role in stabilizing intracellular architecture, but its function is otherwise poorly understood. In a vimentin knockout (Vim KO) mouse model, we note that Vim KO mice challenged with intraperitoneal Escherichia coli control bacterial infection better than do wild-type (WT) mice. In vitro, Vim KO phagocytes show significantly increased capacity to mediate bacterial killing by abundant production of reactive oxygen species (ROS) and nitric oxides, likely due to interactions with the p47phox active subunit of NADPH oxidase. In acute colitis induced by dextran sodium sulfate (DSS), Vim KO mice develop significantly less gut inflammation than do WT mice. Further, Vim KO mice have markedly decreased bacterial extravasation in the setting of DSS-induced acute colitis, consistent with decreased intestinal disease. Our results suggest that vimentin impedes bacterial killing and production of ROS, thereby contributing to the pathogenesis of acute colitis.


Proceedings of the National Academy of Sciences of the United States of America | 2013

Intercellular trafficking of the nuclear oncoprotein DEK

Anjan K. Saha; Ferdinand Kappes; Amruta Mundade; Anja Deutzmann; David M. Rosmarin; Maureen Legendre; Nicolas Chatain; Zeina Al-Obaidi; Barbara S. Adams; Hidde L. Ploegh; Elisa Ferrando-May; Nirit Mor-Vaknin; David M. Markovitz

DEK is a biochemically distinct, conserved nonhistone protein that is vital to global heterochromatin integrity. In addition, DEK can be secreted and function as a chemotactic, proinflammatory factor. Here we show that exogenous DEK can penetrate cells, translocate to the nucleus, and there carry out its endogenous nuclear functions. Strikingly, adjacent cells can take up DEK secreted from synovial macrophages. DEK internalization is a heparan sulfate-dependent process, and cellular uptake of DEK into DEK knockdown cells corrects global heterochromatin depletion and DNA repair deficits, the phenotypic aberrations characteristic of these cells. These findings thus unify the extracellular and intracellular activities of DEK, and suggest that this paracrine loop involving DEK plays a role in chromatin biology.


Nature Communications | 2017

DEK-targeting DNA aptamers as therapeutics for inflammatory arthritis

Nirit Mor-Vaknin; Anjan K. Saha; Maureen Legendre; Carmelo Carmona-Rivera; M. Asif Amin; Marta J. Gonzales-Hernandez; Julie M. Jorns; Smriti Mohan; Srilakshmi Yalavarthi; Dave A. Pai; Kristine Angevine; Shelley J. Almburg; Jason S. Knight; Barbara S. Adams; Alisa E. Koch; David A. Fox; David R. Engelke; Mariana J. Kaplan; David M. Markovitz

Novel therapeutics are required for improving the management of chronic inflammatory diseases. Aptamers are single-stranded RNA or DNA molecules that have recently shown utility in a clinical setting, as they can specifically neutralize biomedically relevant proteins, particularly cell surface and extracellular proteins. The nuclear chromatin protein DEK is a secreted chemoattractant that is abundant in the synovia of patients with juvenile idiopathic arthritis (JIA). Here, we show that DEK is crucial to the development of arthritis in mouse models, thus making it an appropriate target for aptamer-based therapy. Genetic depletion of DEK or treatment with DEK-targeted aptamers significantly reduces joint inflammation in vivo and greatly impairs the ability of neutrophils to form neutrophil extracellular traps (NETs). DEK is detected in spontaneously forming NETs from JIA patient synovial neutrophils, and DEK-targeted aptamers reduce NET formation. DEK is thus key to joint inflammation, and anti-DEK aptamers hold promise for the treatment of JIA and other types of arthritis.


Stem Cells | 2013

Concise Review: Role of DEK in Stem/Progenitor Cell Biology

Hal E. Broxmeyer; Nirit Mor-Vaknin; Ferdinand Kappes; Maureen Legendre; Anjan K. Saha; Xuan Ou; Heather A. O'Leary; Maegan L. Capitano; Scott Cooper; David M. Markovitz

Understanding the factors that regulate hematopoiesis opens up the possibility of modifying these factors and their actions for clinical benefit. DEK, a non‐histone nuclear phosphoprotein initially identified as a putative proto‐oncogene, has recently been linked to regulate hematopoiesis. DEK has myelosuppressive activity in vitro on proliferation of human and mouse hematopoietic progenitor cells and enhancing activity on engraftment of long‐term marrow repopulating mouse stem cells, has been linked in coordinate regulation with the transcription factor C/EBPα, for differentiation of myeloid cells, and apparently targets a long‐term repopulating hematopoietic stem cell for leukemic transformation. This review covers the uniqueness of DEK, what is known about how it now functions as a nuclear protein and also as a secreted molecule that can act in paracrine fashion, and how it may be regulated in part by dipeptidylpeptidase 4, an enzyme known to truncate and modify a number of proteins involved in activities on hematopoietic cells. Examples are provided of possible future areas of investigation needed to better understand how DEK may be regulated and function as a regulator of hematopoiesis, information possibly translatable to other normal and diseased immature cell systems. STEM Cells 2013;31:1447–1453


Stem Cells | 2013

A Role for DEK in Stem/Progenitor Cell Biology

Hal E. Broxmeyer; Nirit Mor-Vaknin; Ferdinand Kappes; Maureen Legendre; Anjan K. Saha; Xuan Ou; Heather O’Leary; Maegan L. Capitano; Scott Cooper; David M. Markovitz

Understanding the factors that regulate hematopoiesis opens up the possibility of modifying these factors and their actions for clinical benefit. DEK, a non‐histone nuclear phosphoprotein initially identified as a putative proto‐oncogene, has recently been linked to regulate hematopoiesis. DEK has myelosuppressive activity in vitro on proliferation of human and mouse hematopoietic progenitor cells and enhancing activity on engraftment of long‐term marrow repopulating mouse stem cells, has been linked in coordinate regulation with the transcription factor C/EBPα, for differentiation of myeloid cells, and apparently targets a long‐term repopulating hematopoietic stem cell for leukemic transformation. This review covers the uniqueness of DEK, what is known about how it now functions as a nuclear protein and also as a secreted molecule that can act in paracrine fashion, and how it may be regulated in part by dipeptidylpeptidase 4, an enzyme known to truncate and modify a number of proteins involved in activities on hematopoietic cells. Examples are provided of possible future areas of investigation needed to better understand how DEK may be regulated and function as a regulator of hematopoiesis, information possibly translatable to other normal and diseased immature cell systems. STEM Cells 2013;31:1447–1453


Arthritis & Rheumatism | 2018

High Levels of DEK Autoantibodies in Sera of Patients With Polyarticular Juvenile Idiopathic Arthritis and With Early Disease Flares Following Cessation of Anti-Tumor Necrosis Factor Therapy

Nirit Mor-Vaknin; Miguel Rivas; Maureen Legendre; Smriti Mohan; Ye Yuanfan; Theresa Mau; Anne Johnson; Bin Huang; Lili Zhao; Yukiko Kimura; Steven J. Spalding; Paula W. Morris; Beth S. Gottlieb; Karen Onel; Judyann C. Olson; Barbara Edelheit; Michael Shishov; Lawrence K. Jung; Elaine Cassidy; Sampath Prahalad; Murray H. Passo; Timothy Beukelman; Jay Mehta; Edward H. Giannini; Barbara S. Adams; Daniel J. Lovell; David M. Markovitz

The nuclear oncoprotein DEK is an autoantigen associated with juvenile idiopathic arthritis (JIA), especially the oligoarticular subtype. DEK is a secreted chemotactic factor. Abundant levels of DEK and DEK autoantibodies are found in inflamed synovium in JIA. We undertook this study to further characterize the nature of DEK autoantibodies in screening serum samples from 2 different cohorts that consisted mostly of patients with JIA.


Pediatric Rheumatology | 2014

High levels of DEK autoantibodies may predict early flare following cessation of anti-TNF therapy in juvenile idiopathic arthritis

Nirit Mor-Vaknin; Miguel Rivas; Maureen Legendre; Y Yuanfang; Anne Johnson; Bin Huang; Yuki Kimura; Lili Zhao; Steve Spalding; Paula W. Morris; Beth S. Gottlieb; Karen Onel; Judyann C. Olson; Barbara Edelheit; Michael Shishov; Larry Jung; Elaine Cassidy; Sampath Prahalad; Murray H. Passo; Timothy Beukelman; Jay Mehta; Kara Schmidt; Ed Giannini; Daniel J. Lovell; David M. Markovitz

The nuclear oncoprotein DEK is a biochemically distinct, pro-inflammatory protein that is a chemoattractant for neutrophils and T-cells. High levels of DEK autoantibodies have been found in several autoimmune diseases including juvenile idiopathic arthritis (JIA), but their role in disease pathogenesis is unclear.


Arthritis & Rheumatism | 2014

A44: High Levels of DEK Autoantibodies May Predict Early Flare Following Cessation of Anti-TNF Therapy

Nirit Mor-Vaknin; Miguel Rivas; Maureen Legendre; Cynthia Yuanfan Ye; Anne Johnson; Bin Huang; Lili Zhao; Yuki Kimura; Steven J. Spalding; Paula W. Morris; Beth S. Gottlieb; Karen Onel; Judyann C. Olson; Barbara Edelheit; Michael Shishov; Lawrence K. Jung; Elaine Cassidy; Sampath Prahalad; Murray H. Passo; Timothy Beukelman; Jay Mehta; Kara M. Schmidt; Edward H. Giannini; Daniel J. Lovell; David M. Markovitz

The nuclear oncoprotein DEK is a biochemically distinct protein, modulating heterochromatin integrity, chemoattractant of neutrophils and T‐cells and vital for the formation of neutrophil extracellular traps (NETs). NETs are important for resolution of inflammation suggesting that DEK contributes to the development of autoimmune diseases. High levels of DEK autoantibodies have been found in several autoimmune diseases including juvenile idiopathic arthritis (JIA) but their role in disease pathogenesis is not clear. Since DEK and DEK autoantibodies can contribute to the development of immune complexes and NET formation we suggest that DEK antibody levels can predict flare with the discontinuation of anti‐TNF therapy.

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