Bone marrow-independent adventitial macrophage progenitor cells contribute to angiogenesis
Florian Kleefeldt1, Berin Upcin1, Heike Bömmel1
1Institute of Anatomy and Cell Biology, University of Wuerzburg, Koellikerstraße 6, 97070, Wuerzburg, Germany.
Abstract:
Pathological angiogenesis promotes tumor growth, metastasis, and atherosclerotic plaque rupture. Macrophages are key players in these processes. However, whether these macrophages differentiate from bone marrow-derived monocytes or from local vascular wall-resident stem and progenitor cells (VW-SCs) is an unresolved issue of angiogenesis. To answer this question, we analyzed vascular sprouting and alterations in aortic cell populations in mouse aortic ring assays (ARA). ARA culture leads to the generation of large numbers of macrophages, especially within the aortic adventitia. Using immunohistochemical fate-mapping and genetic in vivo-labeling approaches we show that 60% of these macrophages differentiate from bone marrow-independent Ly6c+/Sca-1+ adventitial progenitor cells. Analysis of the NCX-/- mouse model that genetically lacks embryonic circulation and yolk sac perfusion indicates that at least some of those progenitor cells arise yolk sac-independent. Macrophages represent the main source of VEGF in ARA that vice versa promotes the generation of additional macrophages thereby creating a pro-angiogenetic feedforward loop. Additionally, macrophage-derived VEGF activates CD34+ progenitor cells within the adventitial vasculogenic zone to differentiate into CD31+ endothelial cells. Consequently, depletion of macrophages and VEGFR2 antagonism drastically reduce vascular sprouting activity in ARA. In summary, we show that angiogenic activation induces differentiation of macrophages from bone marrow-derived as well as from bone marrow-independent VW-SCs. The latter ones are at least partially yolk sac-independent, too. Those VW-SC-derived macrophages critically contribute to angiogenesis, making them an attractive target to interfere with pathological angiogenesis in cancer and atherosclerosis as well as with regenerative angiogenesis in ischemic cardiovascular disorders.
Insights
Macrophages in blood vessel growth originate from both bone marrow and local vascular stem cells. These local cells, crucial for angiogenesis, offer new therapeutic targets for cancer and cardiovascular diseases.
Area of Science:
- Vascular biology and regenerative medicine
- Cellular differentiation and tissue regeneration
Background:
- Pathological angiogenesis drives tumor growth, metastasis, and atherosclerosis.
- Macrophages are central to angiogenesis, but their origin in this process is debated.
- Understanding macrophage origins is key to targeting pathological angiogenesis.
Purpose of the Study:
- To determine the origin of macrophages involved in angiogenesis.
- To investigate the role of vascular wall-resident stem and progenitor cells (VW-SCs) in macrophage generation during angiogenesis.
- To elucidate the contribution of VW-SC-derived macrophages to angiogenic processes.
Main Methods:
- Mouse aortic ring assays (ARA) to study vascular sprouting and cell populations.
- Immunohistochemical fate-mapping and in vivo genetic labeling to trace cell origins.
- Analysis of NCX-/- mouse models lacking embryonic circulation.
- Assessment of vascular sprouting activity following macrophage depletion and VEGFR2 antagonism.
Main Results:
- ARA cultures generate numerous macrophages, primarily from adventitial progenitor cells.
- 60% of these macrophages originate from bone marrow-independent Ly6c+/Sca-1+ adventitial progenitor cells.
- Some progenitor cells are yolk sac-independent, indicating an early embryonic origin.
- Macrophages produce VEGF, creating a pro-angiogenic feedforward loop and activating CD34+ progenitors to form endothelial cells.
- Macrophage depletion and VEGFR2 inhibition significantly reduce vascular sprouting.
Conclusions:
- Angiogenic activation induces macrophage differentiation from both bone marrow-derived and local VW-SCs.
- VW-SC-derived macrophages, at least partially yolk sac-independent, are critical for angiogenesis.
- These VW-SC-derived macrophages represent a promising therapeutic target for pathological and regenerative angiogenesis in cancer and cardiovascular diseases.
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