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Dive into the research topics where Emily E. Rosowski is active.

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Featured researches published by Emily E. Rosowski.


Journal of Experimental Medicine | 2011

Strain-specific activation of the NF-κB pathway by GRA15, a novel Toxoplasma gondii dense granule protein

Emily E. Rosowski; Diana Lu; Lindsay Julien; Lauren Rodda; Rogier A. Gaiser; Kirk D. C. Jensen; Jeroen Saeij

The Toxoplasma gondii granule protein GRA15 activates the NF-κB pathway.


PLOS ONE | 2011

Determinants of GBP Recruitment to Toxoplasma gondii Vacuoles and the Parasitic Factors That Control It

Sebastian Virreira Winter; Wendy Niedelman; Kirk D. C. Jensen; Emily E. Rosowski; Lindsay Julien; Eric Spooner; Kacey L. Caradonna; Barbara A. Burleigh; Jeroen Saeij; Hidde L. Ploegh; Eva Maria Frickel

IFN-γ is a major cytokine that mediates resistance against the intracellular parasite Toxoplasma gondii. The p65 guanylate-binding proteins (GBPs) are strongly induced by IFN-γ. We studied the behavior of murine GBP1 (mGBP1) upon infection with T. gondii in vitro and confirmed that IFN-γ-dependent re-localization of mGBP1 to the parasitophorous vacuole (PV) correlates with the virulence type of the parasite. We identified three parasitic factors, ROP16, ROP18, and GRA15 that determine strain-specific accumulation of mGBP1 on the PV. These highly polymorphic proteins are held responsible for a large part of the strain-specific differences in virulence. Therefore, our data suggest that virulence of T. gondii in animals may rely in part on recognition by GBPs. However, phagosomes or vacuoles containing Trypanosoma cruzi did not recruit mGBP1. Co-immunoprecipitation revealed mGBP2, mGBP4, and mGBP5 as binding partners of mGBP1. Indeed, mGBP2 and mGBP5 co-localize with mGBP1 in T. gondii-infected cells. T. gondii thus elicits a cell-autonomous immune response in mice with GBPs involved. Three parasitic virulence factors and unknown IFN-γ-dependent host factors regulate this complex process. Depending on the virulence of the strains involved, numerous GBPs are brought to the PV as part of a large, multimeric structure to combat T. gondii.


Cell Host & Microbe | 2015

The Toxoplasma Dense Granule Proteins GRA17 and GRA23 Mediate the Movement of Small Molecules between the Host and the Parasitophorous Vacuole

Daniel A. Gold; Aaron D. Kaplan; Agnieszka Lis; Glenna C.L. Bett; Emily E. Rosowski; Kimberly M. Cirelli; Alexandre Bougdour; Saima M. Sidik; Josh R. Beck; Sebastian Lourido; Pascal F. Egea; Peter J. Bradley; Mohamed-Ali Hakimi; Randall L. Rasmusson; Jeroen Saeij

Toxoplasma gondii is a protozoan pathogen in the phylum Apicomplexa that resides within an intracellular parasitophorous vacuole (PV) that is selectively permeable to small molecules through unidentified mechanisms. We have identified GRA17 as a Toxoplasma-secreted protein that localizes to the parasitophorous vacuole membrane (PVM) and mediates passive transport of small molecules across the PVM. GRA17 is related to the putative Plasmodium translocon protein EXP2 and conserved across PV-residing Apicomplexa. The PVs of GRA17-deficient parasites have aberrant morphology, reduced permeability to small molecules, and structural instability. GRA17-deficient parasites proliferate slowly and are avirulent in mice. These GRA17-deficient phenotypes are rescued by complementation with Plasmodium EXP2. GRA17 functions synergistically with a related protein, GRA23. Exogenous expression of GRA17 or GRA23 alters the membrane conductance properties of Xenopus oocytes in a manner consistent with a large non-selective pore. Thus, GRA17 and GRA23 provide a molecular basis for PVM permeability and nutrient access.


PLOS Pathogens | 2013

Transcriptional Analysis of Murine Macrophages Infected with Different Toxoplasma Strains Identifies Novel Regulation of Host Signaling Pathways

Mariane B. Melo; Quynh P. Nguyen; Cynthia Azeredo Cordeiro; Musa A. Hassan; Ninghan Yang; Renee McKell; Emily E. Rosowski; Lindsay Julien; Vincent Butty; Marie-Laure Dardé; Daniel Ajzenberg; Katherine A. Fitzgerald; Lucy H. Young; Jeroen Saeij

Most isolates of Toxoplasma from Europe and North America fall into one of three genetically distinct clonal lineages, the type I, II and III lineages. However, in South America these strains are rarely isolated and instead a great variety of other strains are found. T. gondii strains differ widely in a number of phenotypes in mice, such as virulence, persistence, oral infectivity, migratory capacity, induction of cytokine expression and modulation of host gene expression. The outcome of toxoplasmosis in patients is also variable and we hypothesize that, besides host and environmental factors, the genotype of the parasite strain plays a major role. The molecular basis for these differences in pathogenesis, especially in strains other than the clonal lineages, remains largely unexplored. Macrophages play an essential role in the early immune response against T. gondii and are also the cell type preferentially infected in vivo. To determine if non-canonical Toxoplasma strains have unique interactions with the host cell, we infected murine macrophages with 29 different Toxoplasma strains, representing global diversity, and used RNA-sequencing to determine host and parasite transcriptomes. We identified large differences between strains in the expression level of known parasite effectors and large chromosomal structural variation in some strains. We also identified novel strain-specifically regulated host pathways, including the regulation of the type I interferon response by some atypical strains. IFNβ production by infected cells was associated with parasite killing, independent of interferon gamma activation, and dependent on endosomal Toll-like receptors in macrophages and the cytoplasmic receptor retinoic acid-inducible gene 1 (RIG-I) in fibroblasts.


PLOS ONE | 2012

Toxoplasma gondii clonal strains all inhibit STAT1 transcriptional activity but polymorphic effectors differentially modulate IFNγ induced gene expression and STAT1 phosphorylation.

Emily E. Rosowski; Jeroen Saeij

Host defense against the parasite Toxoplasma gondii requires the cytokine interferon-gamma (IFNγ). However, Toxoplasma inhibits the host cell transcriptional response to IFNγ, which is thought to allow the parasite to establish a chronic infection. It is not known whether all strains of Toxoplasma block IFNγ-responsive transcription equally and whether this inhibition occurs solely through the modulation of STAT1 activity or whether other transcription factors are involved. We find that strains from three North American/European clonal lineages of Toxoplasma, types I, II, and III, can differentially modulate specific aspects of IFNγ signaling through the polymorphic effector proteins ROP16 and GRA15. STAT1 tyrosine phosphorylation is activated in the absence of IFNγ by the Toxoplasma kinase ROP16, but this ROP16-activated STAT1 is not transcriptionally active. Many genes induced by STAT1 can also be controlled by other transcription factors and therefore using these genes as specific readouts to determine Toxoplasma inhibition of STAT1 activity might be inappropriate. Indeed, GRA15 and ROP16 modulate the expression of subsets of IFNγ responsive genes through activation of the NF-κB/IRF1 and STAT3/6 transcription factors, respectively. However, using a stable STAT1-specific reporter cell line we show that strains from the type I, II, and III clonal lineages equally inhibit STAT1 transcriptional activity. Furthermore, all three of the clonal lineages significantly inhibit global IFNγ induced gene expression.


Infection and Immunity | 2014

Toxoplasma gondii Inhibits Gamma Interferon (IFN-γ)- and IFN-β-Induced Host Cell STAT1 Transcriptional Activity by Increasing the Association of STAT1 with DNA

Emily E. Rosowski; Quynh P. Nguyen; Ana Camejo; Eric Spooner; Jeroen Saeij

ABSTRACT The gamma interferon (IFN-γ) response, mediated by the STAT1 transcription factor, is crucial for host defense against the intracellular pathogen Toxoplasma gondii, but prior infection with Toxoplasma can inhibit this response. Recently, it was reported that the Toxoplasma type II NTE strain prevents the recruitment of chromatin remodeling complexes containing Brahma-related gene 1 (BRG-1) to promoters of IFN-γ-induced secondary response genes such as Ciita and major histocompatibility complex class II genes in murine macrophages, thereby inhibiting their expression. We report here that a type I strain of Toxoplasma inhibits the expression of primary IFN-γ response genes such as IRF1 through a distinct mechanism not dependent on the activity of histone deacetylases. Instead, infection with a type I, II, or III strain of Toxoplasma inhibits the dissociation of STAT1 from DNA, preventing its recycling and further rounds of STAT1-mediated transcriptional activation. This leads to increased IFN-γ-induced binding of STAT1 at the IRF1 promoter in host cells and increased global IFN-γ-induced association of STAT1 with chromatin. Toxoplasma type I infection also inhibits IFN-β-induced interferon-stimulated gene factor 3-mediated gene expression, and this inhibition is also linked to increased association of STAT1 with chromatin. The secretion of proteins into the host cell by a type I strain of Toxoplasma without complete parasite invasion is not sufficient to block STAT1-mediated expression, suggesting that the effector protein responsible for this inhibition is not derived from the rhoptries.


Journal of Biological Chemistry | 2013

Structure of the Toxoplasma gondii ROP18 Kinase Domain Reveals a Second Ligand Binding Pocket Required for Acute Virulence

Daniel Lim; Daniel A. Gold; Lindsay Julien; Emily E. Rosowski; Wendy Niedelman; Michael B. Yaffe; Jeroen Saeij

Background: ROP18 is a Toxoplasma secreted Ser/Thr protein kinase important for acute virulence. Results: The crystal structure of the unphosphorylated ROP18 kinase domain was determined in complex with an ATP analog. Conclusion: The structure is inconsistent with a previously proposed model of autoinhibition and identifies an additional ligand binding site important for virulence. Significance: Structure-function studies of ROP18 will aid development of novel drugs against toxoplasmosis. At least a third of the human population is infected with the intracellular parasite Toxoplasma gondii, which contributes significantly to the disease burden in immunocompromised and neutropenic hosts and causes serious congenital complications when vertically transmitted to the fetus. Genetic analyses have identified the Toxoplasma ROP18 Ser/Thr protein kinase as a major factor mediating acute virulence in mice. ROP18 is secreted into the host cell during the invasion process, and its catalytic activity is required for the acute virulence phenotype. However, its precise molecular function and regulation are not fully understood. We have determined the crystal structure of the ROP18 kinase domain, which is inconsistent with a previously proposed autoinhibitory mechanism of regulation. Furthermore, a sucrose molecule bound to our structure identifies an additional ligand-binding pocket outside of the active site cleft. Mutational analysis confirms an important role for this pocket in virulence.


PLoS | 2012

The Rhoptry Proteins ROP18 and ROP5 Mediate Toxoplasma gondii Evasion of the Murine, But Not the Human, Interferon-Gamma Response

Wendy Niedelman; Daniel A. Gold; Emily E. Rosowski; Joris K. Sprokholt; Daniel Cham-Chin Lim; Ailan Farid Arenas; Mariane B. Melo; Eric Spooner; Michael B. Yaffe; Jeroen Saeij


Rockefeller | 2011

Strain-specific activation of the NF-kappa B pathway by GRA15, a novel Toxoplasma gondii dense granule protein

Emily E. Rosowski; Diana Lu; Lindsay Julien; Lauren Rodda; Rogier A. Gaiser; Kirk D. C. Jensen; Jeroen Saeij

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Jeroen Saeij

Massachusetts Institute of Technology

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Lindsay Julien

Massachusetts Institute of Technology

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Daniel A. Gold

Massachusetts Institute of Technology

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Eric Spooner

Massachusetts Institute of Technology

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Kirk D. C. Jensen

Massachusetts Institute of Technology

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Wendy Niedelman

Massachusetts Institute of Technology

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Diana Lu

Massachusetts Institute of Technology

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Lauren Rodda

Massachusetts Institute of Technology

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Mariane B. Melo

Massachusetts Institute of Technology

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Michael B. Yaffe

Massachusetts Institute of Technology

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