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Dive into the research topics where Andrea J. Barczak is active.

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Featured researches published by Andrea J. Barczak.


Proceedings of the National Academy of Sciences of the United States of America | 2009

The protein disulfide isomerase AGR2 is essential for production of intestinal mucus

Sung-Woo Park; Guohua Zhen; Catherine Verhaeghe; Yasuhiro Nakagami; Louis T. Nguyenvu; Andrea J. Barczak; Nigel Killeen; David J. Erle

Protein disulfide isomerases (PDIs) aid protein folding and assembly by catalyzing formation and shuffling of cysteine disulfide bonds in the endoplasmic reticulum (ER). Many members of the PDI family are expressed in mammals, but the roles of specific PDIs in vivo are poorly understood. A recent homology-based search for additional PDI family members identified anterior gradient homolog 2 (AGR2), a protein originally presumed to be secreted by intestinal epithelial cells. Here, we show that AGR2 is present within the ER of intestinal secretory epithelial cells and is essential for in vivo production of the intestinal mucin MUC2, a large, cysteine-rich glycoprotein that forms the protective mucus gel lining the intestine. A cysteine residue within the AGR2 thioredoxin-like domain forms mixed disulfide bonds with MUC2, indicating a direct role for AGR2 in mucin processing. Mice lacking AGR2 were viable but were highly susceptible to colitis, indicating a critical role for AGR2 in protection from disease. We conclude that AGR2 is a unique member of the PDI family, with a specialized and nonredundant role in intestinal mucus production.


American Journal of Respiratory and Critical Care Medicine | 2012

Airway Epithelial miRNA Expression Is Altered in Asthma

Owen D. Solberg; Edwin Justin Ostrin; Michael I. Love; Jeffrey C. Peng; Nirav R. Bhakta; Lydia Hou; Christine P. Nguyen; Margaret Solon; Cindy Nguyen; Andrea J. Barczak; Lorna Zlock; Denitza P. Blagev; Walter E. Finkbeiner; K. Mark Ansel; Joseph R. Arron; David J. Erle; Prescott G. Woodruff

RATIONALE Changes in airway epithelial cell differentiation, driven in part by IL-13, are important in asthma. Micro-RNAs (miRNAs) regulate cell differentiation in many systems and could contribute to epithelial abnormalities in asthma. OBJECTIVES To determine whether airway epithelial miRNA expression is altered in asthma and identify IL-13-regulated miRNAs. METHODS We used miRNA microarrays to analyze bronchial epithelial brushings from 16 steroid-naive subjects with asthma before and after inhaled corticosteroids, 19 steroid-using subjects with asthma, and 12 healthy control subjects, and the effects of IL-13 and corticosteroids on cultured bronchial epithelial cells. We used quantitative polymerase chain reaction to confirm selected microarray results. MEASUREMENTS AND MAIN RESULTS Most (12 of 16) steroid-naive subjects with asthma had a markedly abnormal pattern of bronchial epithelial miRNA expression by microarray analysis. Compared with control subjects, 217 miRNAs were differentially expressed in steroid-naive subjects with asthma and 200 in steroid-using subjects with asthma (false discovery rate < 0.05). Treatment with inhaled corticosteroids had modest effects on miRNA expression in steroid-naive asthma, inducing a statistically significant (false discovery rate < 0.05) change for only nine miRNAs. qPCR analysis confirmed differential expression of 22 miRNAs that were highly differentially expressed by microarrays. IL-13 stimulation recapitulated changes in many differentially expressed miRNAs, including four members of the miR-34/449 family, and these changes in miR-34/449 family members were resistant to corticosteroids. CONCLUSIONS Dramatic alterations of airway epithelial cell miRNA levels are a common feature of asthma. These alterations are only modestly corrected by inhaled corticosteroids. IL-13 effects may account for some of these alterations, including repression of miR-34/449 family members that have established roles in airway epithelial cell differentiation. Clinical trial registered with www.clinicaltrials.gov (NCT 00595153).


Proceedings of the National Academy of Sciences of the United States of America | 2011

The mammalian target of rapamycin regulates cholesterol biosynthetic gene expression and exhibits a rapamycin-resistant transcriptional profile

Beatrice Wang; Gregory S. Ducker; Andrea J. Barczak; Rebecca Barbeau; David J. Erle; Kevan M. Shokat

The mammalian target of rapamycin (mTOR) is a central regulator of cell growth and proliferation in response to growth factor and nutrient signaling. Consequently, this kinase is implicated in metabolic diseases including cancer and diabetes, so there is great interest in understanding the complete spectrum of mTOR-regulated networks. mTOR exists in two functionally distinct complexes, mTORC1 and mTORC2, and whereas the natural product rapamycin inhibits only a subset of mTORC1 functions, recently developed ATP-competitive mTOR inhibitors have revealed new roles for both complexes. A number of studies have highlighted mTORC1 as a regulator of lipid homeostasis. We show that the ATP-competitive inhibitor PP242, but not rapamycin, significantly down-regulates cholesterol biosynthesis genes in a 4E-BP1–dependent manner in NIH 3T3 cells, whereas S6 kinase 1 is the dominant regulator in hepatocellular carcinoma cells. To identify other rapamycin-resistant transcriptional outputs of mTOR, we compared the expression profiles of NIH 3T3 cells treated with rapamycin versus PP242. PP242 caused 1,666 genes to be differentially expressed whereas rapamycin affected only 88 genes. Our analysis provides a genomewide view of the transcriptional outputs of mTOR signaling that are insensitive to rapamycin.


Nano Letters | 2010

Whole Genome Expression Analysis Reveals Differential Effects of TiO2 Nanotubes on Vascular Cells

Lily Peng; Andrea J. Barczak; Rebecca Barbeau; Yuanyuan Xiao; Thomas J. LaTempa; Craig A. Grimes; Tejal A. Desai

The response of primary human endothelial (ECs) and vascular smooth muscle cells (VSMCs) to TiO2 nanotube arrays is studied through gene expression analysis. Microarrays revealed that nanotubes enhanced EC proliferation and motility, decreased VSMC proliferation, and decreased expression of molecules involved in inflammation and coagulation in both cell types. Networks generated from significantly affected genes suggest that cells may be sensing nanotopographical cues via pathways previously implicated in sensing shear stress.


Genome Medicine | 2014

Asthmatics with exacerbation during acute respiratory illness exhibit unique transcriptional signatures within the nasal mucosa

Peter McErlean; Sergejs Berdnikovs; Silvio Favoreto; Junqing Shen; Assel Biyasheva; Rebecca Barbeau; Chris J. Eisley; Andrea J. Barczak; Theresa Ward; Robert P. Schleimer; David J. Erle; Homer A. Boushey; Pedro C. Avila

BackgroundAcute respiratory illness is the leading cause of asthma exacerbations yet the mechanisms underlying this association remain unclear. To address the deficiencies in our understanding of the molecular events characterizing acute respiratory illness-induced asthma exacerbations, we undertook a transcriptional profiling study of the nasal mucosa over the course of acute respiratory illness amongst individuals with a history of asthma, allergic rhinitis and no underlying respiratory disease.MethodsTranscriptional profiling experiments were performed using the Agilent Whole Human Genome 4X44K array platform. Time point-based microarray and principal component analyses were conducted to identify and distinguish acute respiratory illness-associated transcriptional profiles over the course of our study. Gene enrichment analysis was conducted to identify biological processes over-represented within each acute respiratory illness-associated profile, and gene expression was subsequently confirmed by quantitative polymerase chain reaction.ResultsWe found that acute respiratory illness is characterized by dynamic, time-specific transcriptional profiles whose magnitudes of expression are influenced by underlying respiratory disease and the mucosal repair signature evoked during acute respiratory illness. Most strikingly, we report that people with asthma who experience acute respiratory illness-induced exacerbations are characterized by a reduced but prolonged inflammatory immune response, inadequate activation of mucosal repair, and the expression of a newly described exacerbation-specific transcriptional signature.ConclusionFindings from our study represent a significant contribution towards clarifying the complex molecular interactions that typify acute respiratory illness-induced asthma exacerbations.


Journal of Immunology | 2009

Thymic OX40 Expression Discriminates Cells Undergoing Strong Responses to Selection Ligands

Mark Klinger; Joong Kyu Kim; Stephen A. Chmura; Andrea J. Barczak; David J. Erle; Nigel Killeen

OX40 is a member of the TNF receptor family expressed on activated and regulatory T (Treg) cells. Using an Ox40-cre allele for lineage marking, we found that a subpopulation of naive T cells had also previously expressed OX40 in the thymus. Ox40-cre was induced in a small fraction of thymocytes that were OX40+, some of which were CD25high Treg cell precursors. Thymic OX40 expression distinguished cells experiencing a strong signaling response to positive selection. Naive T cells that had previously expressed OX40 demonstrated a partially activated phenotype that was distinct from that of most naive T cells. The results are consistent with the selection of Treg cells and a minor subpopulation of naive T cells being dependent on strong signaling responses to thymic self ligands.


Molecular and Cellular Biology | 2013

The glucocorticoid receptor and KLF15 regulate gene expression dynamics and integrate signals through feed-forward circuitry

Sarah K. Sasse; Christina M. Mailloux; Andrea J. Barczak; Qian Wang; Mohammed O. Altonsy; Mukesh K. Jain; Saptarsi M. Haldar; Anthony N. Gerber

ABSTRACT The glucocorticoid receptor (GR) regulates adaptive transcriptional programs that alter metabolism in response to stress. Network properties that allow GR to tune gene expression to match specific physiologic demands are poorly understood. We analyzed the transcriptional consequences of GR activation in murine lungs deficient for KLF15, a transcriptional regulator of amino acid metabolism that is induced by glucocorticoids and fasting. Approximately 7% of glucocorticoid-regulated genes had altered expression in Klf15-knockdown (Klf15−/−) mice. KLF15 formed coherent and incoherent feed-forward circuits with GR that correlated with the expression dynamics of the glucocorticoid response. Coherent feed-forward gene regulation by GR and KLF15 was characterized by combinatorial activation of linked GR-KLF15 regulatory elements by both factors and increased GR occupancy, while expression of KLF15 reduced GR occupancy at the incoherent target, MT2A. Serum deprivation, which increased KLF15 expression in a GR-independent manner in vitro, enhanced glucocorticoid-mediated induction of feed-forward targets of GR and KLF15, such as the loci for the amino acid-metabolizing enzymes proline dehydrogenase and alpha-aminoadipic semialdehyde synthase. Our results establish feed-forward architecture as an organizational principle for the GR network and provide a novel mechanism through which GR integrates signals and regulates expression dynamics.


Cardiovascular Research | 2013

Molecular basis of selective atrial fibrosis due to overexpression of transforming growth factor-β1

Dolkun Rahmutula; Gregory M. Marcus; Emily E. Wilson; Chunhua Ding; Yuanyuan Xiao; Agnes C. Paquet; Rebecca Barbeau; Andrea J. Barczak; David J. Erle; Jeffrey E. Olgin

AIMS Animal studies show that transforming growth factor-β1 (TGF-β1) is an important mediator of atrial fibrosis and atrial fibrillation (AF). This study investigated the role of TGF-β1 in human AF and the mechanism of atrial-selective fibrosis. METHODS AND RESULTS Atrial specimens from 17 open heart surgery patients and left atrial and ventricular specimens from 17 explanted hearts were collected to assess the relationship between TGF-β1, AF, and differential atrial vs. ventricular TGF-β1 levels. A transgenic mouse model overexpressing active TGF-β1 was used to study the mechanisms underlying the resultant atrial-selective fibrosis. Higher right atrial total TGF-β1 levels (2.58 ± 0.16-fold, P < 0.0001) and active TGF-β1 (3.7 ± 0.7-fold, P = 0.013) were observed in those that developed post-operative AF. Although no ventricular differences were observed, 11 explanted heart failure hearts exhibited higher atrial TGF-β1 levels than 6 non-failing hearts (2.30 ± 0.87 fold higher, P < 0.001). In the transgenic mouse, TGF-β1 receptor-1 kinase blockade resulted in decreased atrial expression of fibrosis-related genes. By RNA microarray analyses in that model, 80 genes in the atria and only 2 genes in the ventricle were differentially expressed. Although these mice atria, but not the ventricles, exhibited increased expression of fibrosis-related genes and phosphorylation of Smad2, there were no differences in TGF-β1 receptor levels or Smads in the atria compared with the ventricles. CONCLUSIONS TGF-β1 mediates selective atrial fibrosis in AF that occurs via TGF-β Receptor 1/2 and the classical Smad pathway. The differential atrial vs. ventricular fibrotic response occurs at the level of TGF-β1 receptor binding or phosphorylation.


Science Translational Medicine | 2014

Selective Targeting of TGF-β Activation to Treat Fibroinflammatory Airway Disease

Shunsuke Minagawa; Jianlong Lou; Robert Seed; Anthony Cormier; Shenping Wu; Yifan Cheng; Lynne A. Murray; Ping Tsui; Jane Connor; Ronald Herbst; Cedric Govaerts; Tyren Barker; Stephanie Cambier; Haruhiko Yanagisawa; Amanda Goodsell; Mitsuo Hashimoto; Oliver J. Brand; Ran Cheng; Royce Ma; Kate J. McKnelly; W. Wen; Arthur Hill; David M. Jablons; Paul J. Wolters; Hideya Kitamura; Jun Araya; Andrea J. Barczak; David J. Erle; Louis F. Reichardt; James D. Marks

Therapeutic targeting of an extended-closed conformation of the integrin αvβ8 inhibits TGF-β activation and ameliorates symptoms of experimental airway disease in mice. Breathing Freely Narrowing of the airways through accumulation of scar tissue and inflammation results from chronic injury in common diseases such as chronic obstructive pulmonary disease (COPD) and severe chronic asthma. Such airway narrowing causes the obstruction responsible for the breathlessness that these patients experience, and there are no available treatments that ameliorate fibroinflammatory airway narrowing. In a new study, Minagawa et al. engineered a monoclonal antibody that locks in a specific inactive conformation of a protein named integrin αvβ8. This protein is a crucial receptor required for activation of transforming growth factor–β, a central mediator of pathological inflammation and fibrosis. This antibody, when administered to mice engineered to express only human and not mouse αvβ8, reduced airway inflammation and fibrosis in response to a variety of injurious agents including cigarette smoke and allergens that are involved in the pathogenesis of COPD. Airway remodeling, caused by inflammation and fibrosis, is a major component of chronic obstructive pulmonary disease (COPD) and currently has no effective treatment. Transforming growth factor–β (TGF-β) has been widely implicated in the pathogenesis of airway remodeling in COPD. TGF-β is expressed in a latent form that requires activation. The integrin αvβ8 (encoded by the itgb8 gene) is a receptor for latent TGF-β and is essential for its activation. Expression of integrin αvβ8 is increased in airway fibroblasts in COPD and thus is an attractive therapeutic target for the treatment of airway remodeling in COPD. We demonstrate that an engineered optimized antibody to human αvβ8 (B5) inhibited TGF-β activation in transgenic mice expressing only human and not mouse ITGB8. The B5 engineered antibody blocked fibroinflammatory responses induced by tobacco smoke, cytokines, and allergens by inhibiting TGF-β activation. To clarify the mechanism of action of B5, we used hydrodynamic, mutational, and electron microscopic methods to demonstrate that αvβ8 predominantly adopts a constitutively active, extended-closed headpiece conformation. Epitope mapping and functional characterization of B5 revealed an allosteric mechanism of action due to locking-in of a low-affinity αvβ8 conformation. Collectively, these data demonstrate a new model for integrin function and present a strategy to selectively target the TGF-β pathway to treat fibroinflammatory airway diseases.


PLOS ONE | 2015

Identification of MiR-205 As a MicroRNA That Is Highly Expressed in Medullary Thymic Epithelial Cells

Imran S. Khan; Chong Y. Park; Anastasia Mavropoulos; Nikki Shariat; Joshua L. Pollack; Andrea J. Barczak; David J. Erle; Michael T. McManus; Mark S. Anderson; Lukas T. Jeker

Thymic epithelial cells (TECs) support T cell development in the thymus. Cortical thymic epithelial cells (cTECs) facilitate positive selection of developing thymocytes whereas medullary thymic epithelial cells (mTECs) facilitate the deletion of self-reactive thymocytes in order to prevent autoimmunity. The mTEC compartment is highly dynamic with continuous maturation and turnover, but the genetic regulation of these processes remains poorly understood. MicroRNAs (miRNAs) are important regulators of TEC genetic programs since miRNA-deficient TECs are severely defective. However, the individual miRNAs important for TEC maintenance and function and their mechanisms of action remain unknown. Here, we demonstrate that miR-205 is highly and preferentially expressed in mTECs during both thymic ontogeny and in the postnatal thymus. This distinct expression is suggestive of functional importance for TEC biology. Genetic ablation of miR-205 in TECs, however, neither revealed a role for miR-205 in TEC function during homeostatic conditions nor during recovery from thymic stress conditions. Thus, despite its distinct expression, miR-205 on its own is largely dispensable for mTEC biology.

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David J. Erle

University of California

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Yuanyuan Xiao

University of California

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Pm Godoy

University of California

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Alton Etheridge

Pacific Northwest Diabetes Research Institute

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Amanda Courtright

Translational Genomics Research Institute

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David Baxter

University of California

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David J. Galas

Pacific Northwest Diabetes Research Institute

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