12-Oxo-phytodienoic acid, a plant-derived oxylipin, attenuates lipopolysaccharide-induced inflammation in microglia.

Jasmonates are plant lipid-derived oxylipins that act as key signaling compounds in plant immunity, germination, and development. Although some physiological activities of natural jasmonates in mammalian cells have been investigated, their anti-inflammatory actions in mammalian cells remain unclear. Here, we investigated whether jasmonates protect mouse microglial MG5 cells against lipopolysaccharide (LPS)-induced inflammation. Among the jasmonates tested, only 12-oxo-phytodienoic acid (OPDA) suppressed LPS-induced expression of the typical inflammatory cytokines interleukin-6 and tumor necrosis factor α. In addition, only OPDA reduced LPS-induced nitric oxide production through a decrease in the level of inducible nitric oxide synthase. Further mechanistic studies showed that OPDA suppressed neuroinflammation by inhibiting nuclear factor κB and p38 mitogen-activated protein kinase signaling in LPS-activated MG5 cells. In addition, OPDA induced expression of suppressor of cytokine signaling-1, a negative regulator of inflammation, in MG5 cells. Finally, we found that the nuclear factor erythroid 2-related factor 2 signaling cascade induced by OPDA is not involved in the anti-inflammatory effects of OPDA. These results demonstrate that OPDA inhibited LPS-induced cell inflammation in mouse microglial cells via multiple pathways, including suppression of nuclear factor κB, inhibition of p38, and activation of SOCS-1 signaling.
Copyright © 2016. Published by Elsevier Inc.

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First-in-class CD39 checkpoint inhibitor presented at the AACR meeting

On April 19, 2016 Innate Pharma and OREGA Biotech today presented preclinical data on IPH52, a new CD39 checkpoint inhibitor program, at the American Association for Cancer Research (AACR) (Free AACR Whitepaper) Annual Meeting 2016 in New Orleans, Louisiana, USA (Press release, Innate Pharma, APR 19, 2016, View Source [SID:1234511088]).

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Poster #3222 presents IPH52, Innate’s humanized anti-CD39 blocking antibody. This novel antibody exhibits high affinity and specificity for CD39 and potently inhibits ATPase activity in in vitro assays and ex vivo models with patient biopsies. In a murine tumor model, treatment with anti-CD39 antibody results in a significant decrease in tumor volume, and improved survival.

Poster #3218 presents for the first time the impact of CD39 disruption on the efficacy of other cancer therapeutics by comparing their effects in wildtype versus CD39 knock-out mice. The results revealed that CD39 deficiency sensitized to anti-PD1 treatment in animals that failed to respond to anti-PD-1 treatment. The antitumor efficacy of CD39 disruption is further improved when combined with an immunogenic chemotherapy. In animals bearing PD-1 insensitive tumors, combination of immunogenic chemotherapy, anti-PD1 antibody and CD39 disruption led to complete tumor eradication and long term protection (specific anti-tumor immunity) in most animals. The efficacy of an ADCC-inducing cytotoxic antibody was also improved in CD39 knock-out mice compared to wildtype.

Nicolai Wagtmann, CSO of Innate Pharma, said: "Taken together, the data presented by Innate and our partner OREGA Biotech form a very promising body of evidence supporting the development of this new, first-in-class checkpoint inhibitor antibody. The results presented today raise exciting perspectives for the development of IPH52, both as single-agent and in combination with other checkpoint inhibitors, and we are eager to now take this first-in-class candidate forward into the preclinical development phases".

Jeremy Bastid, COO of OREGA Biotech, further commented: "CD39 mediates immunosuppression through a different mechanism than other immune checkpoints and may broadly impede the efficacy of cancer therapies. The exciting data released today using both antibody blockade and genetic CD39 deficiency shed light on the capacity of CD39 disruption to drive antitumor immune responses, either alone or in combination with PD-1 checkpoint blockers, ADCC antibodies and immunogenic chemotherapy, suggesting broad development potential".

A novel nickel complex works as a proteasomal deubiquitinase inhibitor for cancer therapy.

Based on the central role of the ubiquitin-proteasome system (UPS) in the degradation of cellular proteins, proteasome inhibition has been considered an attractive approach for anticancer therapy. Deubiquitinases (DUBs) remove ubiquitin conjugates from diverse substrates; therefore, they are essential regulators of the UPS. DUB inhibitors, especially the inhibitors of proteasomal DUBs are becoming a research hotspot in targeted cancer therapy. Previous studies have shown that metal complexes, such as copper and zinc complexes, can induce cancer cell apoptosis through inhibiting UPS function. Moreover, we have found that copper pyrithione inhibits both 19S proteasome-associated DUBs and 20S proteasome activity with a mechanism distinct from that of the classical 20S proteasome inhibitor bortezomib. In the present study, we reveal that (i) nickel pyrithione complex (NiPT) potently inhibits the UPS via targeting the 19S proteasome-associated DUBs (UCHL5 and USP14), without effecting on the 20S proteasome; (ii) NiPT selectively induces proteasome inhibition and apoptosis in cultured tumor cells and cancer cells from acute myeloid leukemia human patients; and (iii) NiPT inhibits proteasome function and tumor growth in nude mice. This study, for the first time, uncovers a nickel complex as an effective inhibitor of the 19S proteasomal DUBs and suggests a potentially new strategy for cancer treatment.Oncogene advance online publication, 18 April 2016; doi:10.1038/onc.2016.114.

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Clinical data from IIT using Medigene’s dendritic cell (DC) vaccines in prostate cancer presented at AACR conference

On April 19 2016 Medigene AG (MDG1, Frankfurt, Prime Standard), a clinical stage immune-oncology company focusing on the development of T cell immuno-therapies for the treatment of cancer, reported that clinical data of a dendritic cell (DC) vaccine trial for the treatment of prostate cancer were presented at the American Association for Cancer Research (AACR) (Free AACR Whitepaper) Annual Meeting in New Orleans, LA, USA (Press release, MediGene, APR 19, 2016, View Source [SID:1234511089]).

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The clinical data were collected, utilising Medigene’s DC vaccine technology in part, in an ongoing clinical phase I/II study on dendritic cell (DC) vaccines for the treatment of prostate cancer at the Department of Cellular Therapy at the Oslo University Hospital, Norway, under the responsibility of Prof. Gunnar Kvalheim. The poster presented was entitled "Clinical results of a Phase I/II trial of adjuvant therapeutic vaccination in high risk resected prostate cancer patients using autologous dendritic cells loaded with mRNA from primary prostate cancer tissue, hTERT and survivin".

More than 50% of high risk prostate cancer patients will develop an early biochemical relapse, with no curative therapy presently available. Therefore, Prof. Gunnar Kvalheim and his team have chosen this patient population for their ongoing Phase I/II dendritic cell (DC) vaccine study. Dendritic cells from each of the 20 enrolled patients were differentiated from enriched monocytes and matured with one of two different maturation cocktails. The DCs were then transfected with mRNA from primary prostate cancer tissue, hTERT and Survivin and then frozen and stored until use. Based on encouraging clinical results with a new type of DCs in patients with different types of tumours treated in a compassionate use[1] programme, the DC vaccine protocol was changed to the use of new generation DCs. The last five of 20 treated patients received DCs that were matured with a new TLR7/8-agonist maturation cocktail developed by Medigene. Three of 15 patients given DC vaccines derived with the old (standard) maturation cocktail have experienced a biochemical relapse (raised levels of prostate-specific antigen, PSA) during the vaccination period of 3 years. None of the patients given the new type of DC vaccines has so far experienced a rise in PSA levels.

Prof. Gunnar Kvalheim, Head of Department of Cellular Therapy, Oslo University Hospital concluded on the results: "To our knowledge this is the first adjuvant DC vaccine study in high risk prostate cancer and we conclude that the study is feasible, safe and utmost promising."

Prof. Dolores J. Schendel, CEO/CSO of Medigene AG added: "We feel very encouraged by these preliminary data. The advanced method of making DC vaccines is identical with the method Medigene is also using in its own ongoing DC vaccine study in acute myeloid leukaemia."

More detailed information on the presented data can be found under the following link: View Source;sKey=ac456e79-efd5-416e-a7de-67382c67723a&cKey=2ab5cd11-b3d8-40a8-8087-b0c57f2e8034&mKey=1d10d749-4b6a-4ab3-bcd4-f80fb1922267

The Oslo University Hospital has an agreement with Medigene for use of Medigene`s new generation DC vaccines for their ongoing academic clinical studies.

About Medigene’s DC vaccines: The platform for the development of antigen-tailored DC vaccines is the most advanced platform of the highly innovative and complementary immunotherapy platforms of Medigene Immunotherapies. Currently, Medigene evaluates its DC vaccines in a company-sponsored phase I/II clinical trial in acute myeloid leukaemia (AML). Further studies utilising Medigene’s DC vaccine technology include two ongoing clinical investigator-initiated trials (IITs): a clinical phase I/II trial for treating acute myeloid leukaemia (AML) at Ludwig Maximilians University Hospital Grosshadern, Munich, and a clinical phase II trial of a treatment for prostate cancer at Oslo University Hospital. Moreover, compassionate use patients are treated with DC vaccines at the Department of Cellular Therapy at Oslo University Hospital.

Dendritic cells (DCs) are the most potent antigen presenting cells of our immune system. Their task is to take up, process and present antigens on their cell surface, which enables them to activate antigen-specific T cells for maturation and proliferation. This way T cells can recognise and eliminate antigen-bearing tumour cells. Dendritic cells can also induce natural killer cells (NK cells) to attack tumour cells. The team of Medigene Immunotherapies GmbH’s scientists has developed new, fast and efficient methods for generating dendritic cells ex-vivo, which have relevant characteristics to activate both T cells and NK cells. The DC vaccines are developed from autologous (patient-derived) precursor cells, isolated from the patient’s blood, and can be loaded with tumour-specific antigens to treat different types of cancer. Medigene’s DC vaccines are in development for the treatment of minimal residual disease or use in combination therapies.

Pipeline- RG7876

RG7876 is a fully human (IgG2) agonistic antibody against CD40 (Company Pipeline, Hoffmann-La Roche , APR 19, 2016, View Source [SID:1234512462]). The antibody induces T cell-driven tumor killing by activation of CD40 on antigen-presenting cells which in turn prime T cells to attack the tumor. The antibody is being developed in combination with other immunotherapies and is currently being tested in combination with atezolizumab (anti-PD-L1, RG7446).

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