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Updated: Jan 21, 2026

Murine Model of Intestinal Ischemia-reperfusion Injury
Published on: May 11, 2016
Characterization of the Angiogenic Potential of Human Regulatory Macrophages (Mreg) after Ischemia/Reperfusion Injury
Lars Hummitzsch1, Karina Zitta1, Rene Rusch2
1Department of Anesthesiology and Intensive Care Medicine, University Hospital of Schleswig-Holstein, Kiel, Germany.
Abstract:
Ischemia/reperfusion- (I/R-) induced organ damage represents one of the main causes of death worldwide, and new strategies to reduce I/R injury are urgently needed. We have shown that programmable cells of monocytic origin (PCMO) respond to I/R with the release of angiogenic mediators and that transplantation of PCMO results in increased neovascularization. Human regulatory macrophages (Mreg), which are also of monocytic origin, have been successfully employed in clinical transplantation studies due to their immunomodulatory properties. Here, we investigated whether Mreg also possess angiogenic potential in vitro and could represent a treatment option for I/R-associated illnesses. Mreg were differentiated using peripheral blood monocytes from different donors (N = 14) by incubation with M-CSF and human AB serum and stimulation with INF-gamma. Mreg cultures were subjected to 3 h of hypoxia and 24 h of reoxygenation (resembling I/R) or the respective nonischemic control. Cellular resilience, expression of pluripotency markers, secretion of angiogenic proteins, and influence on endothelial tube formation as a surrogate marker for angiogenesis were investigated. Mreg showed resilience against I/R that did not lead to increased cell damage. Mreg express DHRS9 as well as IDO and display a moderate to low expression pattern of several pluripotency genes (e.g., NANOG, OCT-4, and SOX2). I/R resulted in an upregulation of IDO (p < 0.001) while C-MYC and KLF4 were downregulated (p < 0.001 and p < 0.05). Proteome profiling revealed the secretion of numerous angiogenic proteins by Mreg of which several were strongly upregulated by I/R (e.g., MIP-1alpha, 19.9-fold; GM-CSF, 19.2-fold; PTX3, 5.8-fold; IL-1β, 5.2-fold; and MCP-1, 4.7-fold). The angiogenic potential of supernatants from Mreg subjected to I/R remains inconclusive. While Mreg supernatants from 3 donors induced tube formation, 2 supernatants were not effective. We suggest that Mreg may prove beneficial as a cell therapy-based treatment option for I/R-associated illnesses. However, donor characteristics seem to crucially influence the effectiveness of Mreg treatment.
Insights
Human regulatory macrophages (Mreg) show resilience to ischemia/reperfusion (I/R) injury and release angiogenic factors. While Mreg show potential for treating I/R-associated illnesses, donor variability impacts treatment effectiveness.
Area of Science:
- Immunology
- Regenerative Medicine
- Cell Biology
Background:
- Ischemia/reperfusion (I/R) injury is a major cause of organ damage and mortality worldwide, necessitating novel therapeutic strategies.
- Programmable cells of monocytic origin (PCMO) demonstrate angiogenic potential and promote neovascularization following I/R.
- Human regulatory macrophages (Mreg), derived from monocytes, possess immunomodulatory properties and have been used in clinical transplantation.
Purpose of the Study:
- To investigate the angiogenic potential of Mreg in vitro.
- To assess Mreg's resilience and response to I/R conditions.
- To evaluate Mreg as a potential cell therapy for I/R-associated conditions.
Main Methods:
- Mreg were differentiated from peripheral blood monocytes (N=14) using M-CSF, human AB serum, and INF-gamma stimulation.
- Mreg cultures were subjected to simulated I/R (3h hypoxia, 24h reoxygenation).
- Assessed were cellular resilience, pluripotency marker expression, angiogenic protein secretion, and endothelial tube formation assays.
Main Results:
- Mreg exhibited resilience to I/R without increased cell damage.
- I/R upregulated indoleamine 2,3-dioxygenase (IDO) and downregulated C-MYC and KLF4 expression in Mreg.
- Proteome profiling revealed secretion of numerous angiogenic proteins, with several upregulated by I/R, including MIP-1alpha and GM-CSF.
Conclusions:
- Mreg demonstrate resilience and angiogenic factor secretion under I/R conditions.
- Mreg may offer a cell therapy approach for I/R-associated diseases.
- Donor-dependent variations in Mreg effectiveness require further investigation for clinical application.
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