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Dixon, K. J.

Publications and source records attributed to Dixon, K. J..

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Enhanced IL-15-mediated NK cell activation and proliferation by an ADAM17 function-blocking antibody involves CD16A, CD137, and accessory cells

BackgroundNK cells are being extensively studied as a cell therapy for cancer. Their effector functions are induced by the recognition of ligands on tumor cells and by various cytokines. IL-15 is broadly used to stimulate endogenous and adoptively transferred NK cells in cancer patients. These stimuli activate the membrane protease ADAM17, which then cleaves assorted receptors on the surface of NK cells as a negative feedback loop to limit their activation and function. We have shown that ADAM17 inhibition can enhance IL-15-mediated NK cell proliferation in vitro and in vivo. In this study, we investigated the underlying mechanism of this process. MethodsPBMCs or enriched NK cells from human peripheral blood, either unlabeled or labeled with a cell proliferation dye, were cultured for up to 7 days in the presence of rhIL-15 +/- an ADAM17 function-blocking antibody. Different versions of the antibody were generated; Medi-1 (IgG1), Medi-4 (IgG4), Medi-PGLALA, Medi-F(ab')2, and TAB16 (anti-ADAM17 and anti-CD16 bispecific) to modulate CD16A engagement on NK cells. Flow cytometry was used to assess NK cell proliferation and phenotypic markers, immunoblotting to examine CD16A signaling, and IncuCyte-based live cell imaging to measure NK cell anti-tumor activity. ResultsThe ADAM17 function-blocking mAb Medi-1 markedly increased initial NK cell activation by IL-15. Using different engineered versions of the antibody revealed that the activating Fc{gamma} receptor CD16A, a well-described ADAM17 substrate, was critical for enhancing IL-15 stimulation. Hence, Medi-1 bound to ADAM17 on NK cells can be engaged by CD16A and block its shedding, inducing and prolonging its signaling. This process did not promote evident NK cell fratricide, phagocytosis, or dysfunction. Synergistic activity by Medi-1 and IL-15 enhanced the upregulation of CD137 on CD16A+ NK cells and augmented their proliferation in the presence of PBMC accessory cells. ConclusionsOur data reveal for the first time that CD16A and CD137 underpin Medi-1 enhancement of IL-15-driven NK cell activation and proliferation, respectively. The use of Medi-1 represents a novel strategy to enhance IL-15-driven NK cell proliferation, and it may be of therapeutic importance by increasing the anti-tumor activity of NK cells in cancer patients. What is already known on this topicNK cell therapies are being broadly investigated to treat cancer. NK cell stimulation by IL-15 prolongs their survival in cancer patients. Various stimuli including IL-15 activate ADAM17 in NK cells, a membrane protease that regulates the cell surface density of various receptors as a negative feedback mechanism. What this study addsTreating NK cells with the ADAM17 function-blocking mAb Medi-1 markedly enhanced their activation and proliferation. Our study reveals that the Fc and Fab regions of Medi-1 function synergistically with IL-15 in NK cell activation. Medi-1 treatment augments the upregulation of CD137 by NK cells, which enhances their proliferation in the presence of PBMC accessory cells. How this study might affect research, practice, or policyOur study is of translational importance as Medi-1 treatment in combination with IL-15 could potentially augment the proliferation and function of endogenous or adoptively transferred NK cells in cancer patients. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=177 HEIGHT=200 SRC="FIGDIR/small/593347v1_ufig1.gif" ALT="Figure 1"> View larger version (32K): org.highwire.dtl.DTLVardef@1bf8a19org.highwire.dtl.DTLVardef@39315org.highwire.dtl.DTLVardef@ad5925org.highwire.dtl.DTLVardef@b798cb_HPS_FORMAT_FIGEXP M_FIG C_FIG

immunology↗

SELECTIVE INHIBITION OF SOLUBLE TNF ATTENUATES HIPPOCAMPAL NEUROINFLAMMATION AND PSD-95 EXPRESSION TO IMPROVE NEUROLOGICAL FUNCTIONS IN A RAT MODEL OF GULF WAR ILLNESS

BACKGROUNDSystemic inflammation is a major contributor to poor brain pathology across many disease conditions. Specifically, the upregulation of the pro-inflammatory cytokine TNF in the hippocampus activates its receptor TNFR1, reducing AMPA receptor trafficking to impair LTP and associated behavioral outcomes. Studies using animal models of GWI have shown both a chronic upregulation of TNF and impaired neurological function. Therefore, this study aimed to investigate whether selectively inhibiting only the soluble form of TNF (solTNF) that preferentially activates TNFR1 can reverse neuroinflammation to improve neuroplasticity and neurological function. METHODSGWI was induced in rats by treating with DFP (or vehicle) for 5 consecutive days. Six months later, the rats were treated with XPro1595 (or vehicle) for 2 weeks to selectively inhibit solTNF, after which they were subjected to a battery of behavioral tests (cognition, anxiety-related, depressive-like behavior, and neuropathic pain). MRI brain scans were performed, and the animals were euthanized for brain pathological analysis. RESULTSThe hippocampus of the GWI rats had significantly increased neuroinflammatory levels, resulting in edema and reduced AMPA receptor trafficking to the post-synaptic membrane that collectively promoted impairments in memory, anxiety, depressive-like behavior, and neuropathic pain. However, treating the rats with XPro1595 in the chronic environment attenuated the neuroinflammatory response, that reduced edema and impaired AMPA receptor trafficking, allowing for improvements in all areas of neurological function. CONCLUSIONOverall findings suggest that selectively inhibiting solTNF using XPro1595 reduces neuroinflammation, synaptic plasticity, and overall function when administered in the chronic setting of a rat model of GWI. This data supports the use of XPro1595 in Veterans with GWI.

neuroscience↗