Vectorology - GEG Tech top picks
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In Vivo Interleukin-13-Primed Macrophages Contribute to Reduced Alloantigen-Specific T Cell Activation and Prolong Immunological Survival of Allogeneic Mesenchymal Stem Cell Implants 

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In an attempt to modulate mesenchymal stem cells (MSCs) allograft rejection in vivo, the authors transduced MSCs with an interleukin-13 (IL13)-expressing lentiviral vector. Their data clearly indicate that prolonged survival of IL13-expressing allogeneic MSC grafts in muscle tissue coincided with the induction of an alternatively activated macrophage phenotype in vivo and a reduced number of alloantigen-reactive IFNγ- and/or IL2-producing CD8+ T cells compared to nonmodified allografts. Similarly, intracerebral IL13-expressing MSC allografts also exhibited prolonged survival and induction of an alternatively activated macrophage phenotype, although a peripheral T cell component was absent. In summary, this study demonstrates that both innate and adaptive immune responses are effectively modulated in vivo by locally secreted IL13, ultimately resulting in prolonged MSC allograft survival in both muscle and brain tissue.

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Cell Death and Differentiation - Inflammasome-dependent IL-1[beta] release depends upon membrane permeabilisation

Cell Death and Differentiation - Inflammasome-dependent IL-1[beta] release depends upon membrane permeabilisation | Vectorology - GEG Tech top picks | Scoop.it
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Here the authors used a lentiviral vector which expresses pro-IL-1β as a C-terminal fluorescent Venus protein fusion to transform immortalised mouse bone marrow-derived macrophages (BMDMs) and investigate  the mechanisms of IL-1β release from macrophags. They have discovered that the secretion of IL-1β after inflammasome activation requires membrane permeabilisation, and occurs in parallel with the death of the secreting cell. Thus, in macrophages the release of IL-1β in response to inflammasome activation appears to be a secretory process independent of nonspecific leakage of proteins during cell death. The mechanism of membrane permeabilisation leading to IL-1βrelease is distinct from the unconventional secretory mechanism employed by its structural homologues fibroblast growth factor 2 (FGF2) or IL-1α, a process that involves the formation of membrane pores but does not result in cell death. These discoveries reveal key processes at the initiation of an inflammatory response and deliver new insights into the mechanisms of protein release.

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