4.7 Article

Tissue-regenerative potential of the secretome of γ-irradiated peripheral blood mononuclear cells is mediated via TNFRSF1B-induced necroptosis

Journal

CELL DEATH & DISEASE
Volume 10, Issue -, Pages -

Publisher

NATURE PUBLISHING GROUP
DOI: 10.1038/s41419-019-1974-6

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Funding

  1. Austrian Research Promotion Agency (FFG) Grant APOSEC [852748]
  2. Wiener Wirtschaftsagentur APOSEC to clinic [2343727]
  3. Vienna Business Agency
  4. Aposcience AG

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Peripheral blood mononuclear cells (PBMCs) have been shown to produce and release a plethora of pro-angiogenetic factors in response to gamma-irradiation, partially accounting for their tissue-regenerative capacity. Here, we investigated whether a certain cell subtype of PBMCs is responsible for this effect, and whether the type of cell death affects the pro-angiogenic potential of bioactive molecules released by gamma-irradiated PBMCs. PBMCs and PBMC subpopulations, including CD4(+) and CD8(+) T cells, B cells, monocytes, and natural killer cells, were isolated and subjected to high-dose gamma-irradiation. Transcriptome analysis revealed subpopulation-specific responses to gamma-irradiation with distinct activation of pro-angiogenic pathways, cytokine production, and death receptor signalling. Analysis of the proteins released showed that interactions of the subsets are important for the generation of a pro-angiogenic secretome. This result was confirmed at the functional level by the finding that the secretome of gamma-irradiated PBMCs displayed higher pro-angiogenic activity in an aortic ring assay. Scanning electron microscopy and image stream analysis of gamma-irradiated PBMCs revealed distinct morphological changes, indicative for apoptotic and necroptotic cell death. While inhibition of apoptosis had no effect on the pro-angiogenic activity of the secretome, inhibiting necroptosis in stressed PBMCs abolished blood vessel sprouting. Mechanistically, we identified tumor necrosis factor (TNF) receptor superfamily member 1B as the main driver of necroptosis in response to gamma-irradiation in PBMCs, which was most likely mediated via membrane-bound TNF-alpha. In conclusion, our study demonstrates that the pro-angiogenic activity of the secretome of gamma-irradiated PBMCs requires interplay of different PBMC subpopulations. Furthermore, we show that TNF-dependent necroptosis is an indispensable molecular process for conferring tissue-regenerative activity and for the pro-angiogenic potential of the PBMC secretome. These findings contribute to a better understanding of secretome-based therapies in regenerative medicine.

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