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Dive into the research topics where Douglas G. Osborne is active.

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Featured researches published by Douglas G. Osborne.


Molecular Biology of the Cell | 2015

COMMD1 is linked to the WASH complex and regulates endosomal trafficking of the copper transporter ATP7A

Christine A. Phillips-Krawczak; Amika Singla; Petro Starokadomskyy; Zhihui Deng; Douglas G. Osborne; Haiying Li; Christopher J. Dick; Timothy S. Gomez; Megan Koenecke; Jin San Zhang; Haiming Dai; Luis Sifuentes-Dominguez; Linda N. Geng; Scott H. Kaufmann; Marco Y. Hein; Mathew Wallis; Julie McGaughran; Jozef Gecz; Bart van de Sluis; Daniel D. Billadeau; Ezra Burstein

The COMMD1 protein, implicated in copper homeostasis, is found to regulate endosomal sorting of the copper transporter ATP7A through a novel protein complex containing CCDC22, CCDC93, and C16orf62, which link COMMD1 to the WASH complex.


Nature Communications | 2016

Structural and mechanistic insights into regulation of the retromer coat by TBC1d5

Da Jia; Jin San Zhang; Fang Li; Jing Wang; Zhihui Deng; Mark A. White; Douglas G. Osborne; Christine A. Phillips-Krawczak; Timothy S. Gomez; Haiying Li; Amika Singla; Ezra Burstein; Daniel D. Billadeau; Michael K. Rosen

Retromer is a membrane coat complex that is recruited to endosomes by the small GTPase Rab7 and sorting nexin 3. The timing of this interaction and consequent endosomal dynamics are thought to be regulated by the guanine nucleotide cycle of Rab7. Here we demonstrate that TBC1d5, a GTPase-activating protein (GAP) for Rab7, is a high-affinity ligand of the retromer cargo selective complex VPS26/VPS29/VPS35. The crystal structure of the TBC1d5 GAP domain bound to VPS29 and complementary biochemical and cellular data show that a loop from TBC1d5 binds to a conserved hydrophobic pocket on VPS29 opposite the VPS29–VPS35 interface. Additional data suggest that a distinct loop of the GAP domain may contact VPS35. Loss of TBC1d5 causes defective retromer-dependent trafficking of receptors. Our findings illustrate how retromer recruits a GAP, which is likely to be involved in the timing of Rab7 inactivation leading to membrane uncoating, with important consequences for receptor trafficking.


Journal of Immunology | 2015

SNX17 Affects T Cell Activation by Regulating TCR and Integrin Recycling

Douglas G. Osborne; Joshua T. Piotrowski; Christopher J. Dick; Jin San Zhang; Daniel D. Billadeau

A key component in T cell activation is the endosomal recycling of receptors to the cell surface, thereby allowing continual integration of signaling and Ag recognition. One protein potentially involved in TCR transport is sorting nexin 17 (SNX17). SNX proteins have been found to bind proteins involved in T cell activation, but specifically the role of SNX17 in receptor recycling and T cell activation is unknown. Using immunofluorescence, we find that SNX17 colocalizes with TCR and localizes to the immune synapse in T– conjugates. Significantly, knockdown of the SNX17 resulted in fewer T–APC conjugates, lower CD69, TCR, and LFA-1 surface expression, as well as lower overall TCR recycling compared with control T cells. Lastly, we identified the 4.1/ezrin/radixin/moesin domain of SNX17 as being responsible in the binding and trafficking of TCR and LFA-1 to the cell surface. These data suggest that SNX17 plays a role in the maintenance of normal surface levels of activating receptors and integrins to permit optimum T cell activation at the immune synapse.


Journal of Immunology | 2010

Anergic CD4+ T cells form mature immunological synapses with enhanced accumulation of c-Cbl and Cbl-b

Melissa Doherty; Douglas G. Osborne; Diana L. Browning; David C. Parker; Scott A. Wetzel

CD4+ T cell recognition of MHC:peptide complexes in the context of a costimulatory signal results in the large-scale redistribution of molecules at the T cell–APC interface to form the immunological synapse. The immunological synapse is the location of sustained TCR signaling and delivery of a subset of effector functions. T cells activated in the absence of costimulation are rendered anergic and are hyporesponsive when presented with Ag in the presence of optimal costimulation. Several previous studies have looked at aspects of immunological synapses formed by anergic T cells, but it remains unclear whether there are differences in the formation or composition of anergic immunological synapses. In this study, we anergized primary murine CD4+ T cells by incubation of costimulation-deficient, transfected fibroblast APCs. Using a combination of TCR, MHC:peptide, and ICAM-1 staining, we found that anergic T cells make mature immunological synapses with characteristic central and peripheral supramolecular activation cluster domains that were indistinguishable from control synapses. There were small increases in total phosphotyrosine at the anergic synapse along with significant decreases in phosphorylated ERK 1/2 accumulation. Most striking, there was specific accumulation of c-Cbl and Cbl-b to the anergic synapses. Cbl-b, previously shown to be essential in anergy induction, was found in both the central and the peripheral supramolecular activation clusters of the anergic synapse. This Cbl-b (and c-Cbl) accumulation at the anergic synapse may play an important role in anergy maintenance, induction, or both.


Journal of Cell Science | 2015

Nuclear FAM21 participates in NF-κB-dependent gene regulation in pancreatic cancer cells

Zhi Hui Deng; Timothy S. Gomez; Douglas G. Osborne; Christine A. Phillips-Krawczak; Jin San Zhang; Daniel D. Billadeau

ABSTRACT The pentameric WASH complex is best known for its role in regulating receptor trafficking from retromer-rich endosomal subdomains. FAM21 functions to stabilize the WASH complex through its N-terminal head domain and localizes it to endosomes by directly binding the retromer through its extended C-terminal tail. Herein, we used affinity purification combined with mass spectrometry to identify additional FAM21-interacting proteins. Surprisingly, multiple components of the nuclear factor &kgr;B (NF-&kgr;B) pathway were identified, including the p50 and p65 (RelA) NF-&kgr;B subunits. We show that FAM21 interacts with these components and regulates NF-&kgr;B-dependent gene transcription at the level of p65 chromatin binding. We further demonstrate that FAM21 contains a functional monopartite nuclear localization signal sequence (NLS) as well as a CRM1/exportin1-dependent nuclear export signal (NES), both of which work jointly with the N-terminal head domain and C-terminal retromer recruitment domain to regulate FAM21 cytosolic and nuclear subcellular localization. Finally, our findings indicate that FAM21 depletion sensitizes pancreatic cancer cells to gemcitabine and 5-fluorouracil. Thus, FAM21 not only functions as an integral component of the cytoplasmic WASH complex, but also modulates NF-&kgr;B gene transcription in the nucleus.


PLOS ONE | 2014

Dendritic Cells Utilize the Evolutionarily Conserved WASH and Retromer Complexes to Promote MHCII Recycling and Helper T Cell Priming

Daniel B. Graham; Douglas G. Osborne; Joshua T. Piotrowski; Timothy S. Gomez; Grzegorz B. Gmyrek; Holly M. Akilesh; Adish Dani; Daniel D. Billadeau; Wojciech Swat

Immature dendritic cells (DCs) maintain a highly dynamic pool of recycling MHCII that promotes sampling of environmental antigens for presentation to T helper cells. However, the molecular basis of MHCII recycling and the cellular machinery that orchestrates MHCII trafficking are incompletely understood. Using a mouse model we show that WASH, an actin regulatory protein that facilitates retromer function, is essential for MHCII recycling and efficient priming of T helper cells. We further demonstrate that WASH deficiency results in impaired MHCII surface levels, recycling, and an accumulation of polyubiquitinated MHCII complexes, which are subsequently slated for premature lysosomal degradation. Consequently, conditional deletion of the Wash gene in DCs impairs priming of both conventional and autoimmune T helper cells in vivo and attenuates disease progression in a model of experimental autoimmune encephalitis (EAE). Thus, we identify a novel mechanism in which DCs employ the evolutionarily conserved WASH and retromer complex for MHCII recycling in order to regulate T helper cell priming.


Blood | 2017

TCR-CXCR4 signaling stabilizes cytokine mRNA transcripts via a PREX1-Rac1 pathway: implications for CTCL

Kimberly N. Kremer; Brittney A. Dinkel; Rosalie M. Sterner; Douglas G. Osborne; Dragan Jevremovic; Karen E. Hedin

As with many immunopathologically driven diseases, the malignant T cells of cutaneous T-cell lymphomas (CTCLs), such as Sézary syndrome, display aberrant cytokine secretion patterns that contribute to pathology and disease progression. Targeting this disordered release of cytokines is complicated by the changing cytokine milieu that drives the phenotypic changes of CTCLs. Here, we characterize a novel signaling pathway that can be targeted to inhibit the secretion of cytokines by modulating either CXCR4 or CXCR4-mediated signaling. We demonstrate that upon ligation of the T-cell antigen receptor (TCR), the TCR associates with and transactivates CXCR4 via phosphorylation of S339-CXCR4 in order to activate a PREX1-Rac1-signaling pathway that stabilizes interleukin-2(IL-2), IL-4, and IL-10 messenger RNA (mRNA) transcripts. Pharmacologic inhibition of either TCR-CXCR4 complex formation or PREX1-Rac1 signaling in primary human T cells decreased mRNA stability and inhibited secretion of IL-2, IL-4, and IL-10. Applying this knowledge to Sézary syndrome, we demonstrate that targeting various aspects of this signaling pathway blocks both TCR-dependent and TCR-independent cytokine secretion from a Sézary syndrome-derived cell line and patient isolates. Together, these results identify multiple aspects of a novel TCR-CXCR4-signaling pathway that could be targeted to inhibit the aberrant cytokine secretion that drives the immunopathogenesis of Sézary syndrome and other immunopathological diseases.


Methods in Cell Biology | 2015

Monitoring receptor trafficking following retromer and WASH deregulation.

Douglas G. Osborne; Christine A. Phillips-Krawczak; Daniel D. Billadeau

Cell surface receptors that have been internalized and enter the endocytic pathway have multiple fates including entrance into the multivesicular body pathway on their way to lysosomal degradation, recycling back to the cell surface, or retrograde trafficking out of the endolysosomal system back to the Golgi apparatus. Two ubiquitously expressed protein complexes, WASH and the endosomal coat complex retromer, function together to play a central role in directing the fate of receptors into the latter two pathways. In this chapter, we describe fluorescent- and flow cytometry-based methods for analyzing the recycling and retrograde trafficking of two receptors, α5β1 and CI-M6PR, whose intracellular fates are regulated by WASH and retromer activity. The guidelines presented in this chapter can be applied to the analysis of any cell surface or intracellular membrane protein to determine the impact of WASH or retromer deregulation on its intracellular trafficking route.


Journal of Immunology | 2016

Molecular mechanisms required for TCR-mediated formation of TCR-CXCR4 heterodimers

Brittney A. Dinkel; Kimberly N. Kremer; Douglas G. Osborne; Brendan K. Reed; Adam G. Schrum; Karen E. Hedin


Molecular Biology of the Cell | 2014

Identification of a Novel Complex Required for WASH-dependent Receptor Trafficking

Christine A. Phillips-Krawczak; Amika Singla; Petro Starokadomskyy; Zhihui Deng; Douglas G. Osborne; Haiying Li; Christopher J. Dick; Timothy S. Gomez; M. Koenecke; Jin San Zhang; H. Dai; Luis Sifuentes-Dominguez; Linda N. Geng; S. Kaufmann; Marco Y. Hein; Mathew Wallis; Julie McGaughran; Jozef Gecz; B. van de Sluis; Daniel D. Billadeau; Ezra Burstein

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Amika Singla

University of Illinois at Chicago

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Ezra Burstein

University of Texas Southwestern Medical Center

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Haiying Li

University of Texas Southwestern Medical Center

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