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Published on: September 14, 2021
Activation of vascular smooth muscle cells by TNF and PDGF: overlapping and complementary signal transduction
Karsten Peppel1, Lisheng Zhang, Eric S Orman
1Department of Medicine (Cardiology), Duke University Medical Center, Box 3187, Durham, NC 27710, USA. karsten.peppel@duke.edu
Objective:
Because tumor necrosis factor-alpha (TNF) has been implicated in the pathogenesis of vein graft neointimal hyperplasia, we sought to determine mechanisms by which TNF could induce proliferative and migratory responses in smooth muscle cells (SMCs).
Methods And Results:
In rabbit jugulocarotid interposition vein grafts, SMCs expressed TNF as early as four days postoperatively. In rabbit aortic SMCs, TNF and platelet-derived growth factor (PDGF) elicited comparable migration (1.7-fold/basal), and their effects were partially additive. In contrast, while TNF failed to promote SMC [(3)H]thymidine incorporation alone, it doubled the [(3)H]thymidine incorporation observed with PDGF alone. To gain mechanistic insight into these phenomena, we found that TNF and PDGF each activated p38(mapk) equivalently in SMCs, but that PDGF was two to three times more efficacious than TNF in activating SMC extracellular signal-regulated kinases (ERK) 1 and 2 and phosphoinositide 3-kinase. However, only TNF activated NF kappa B. SMC [(3)H]thymidine incorporation that depended on TNF, but not PDGF, was abolished by overexpression of a dominant-negative I kappa B alpha mutant. Inhibition of ERK activation by U0126 reduced SMC migration stimulated only by PDGF (by 35%, P<0.05), but not by TNF. Inhibition of phosphoinositide 3-kinase by LY294002, however, significantly reduced both TNF- and PDGF-stimulated chemotaxis (by 38-54%, P<0.05). In contrast, both U0126 and LY294002 abolished SMC [(3)H]thymidine incorporation induced by either TNF, PDGF, or both agonists.
Conclusions:
In primary rabbit SMCs, TNF promotes migration and mitogenesis through signaling mechanisms that are both distinct from and overlapping with those employed by PDGF. TNF-induced SMC mitogenesis requires complementary co-stimulation with other growth factors.
Insights
Tumor necrosis factor-alpha (TNF) drives smooth muscle cell (SMC) migration and proliferation, distinct from platelet-derived growth factor (PDGF). TNF-induced SMC proliferation requires co-stimulation with other growth factors.
Area of Science:
- Vascular biology
- Cell signaling
- Immunology
Background:
- Neointimal hyperplasia in vein grafts contributes to graft failure.
- Tumor necrosis factor-alpha (TNF) is implicated in the pathogenesis of neointimal hyperplasia.
- Smooth muscle cell (SMC) proliferation and migration are key events in neointimal hyperplasia.
Purpose of the Study:
- To elucidate the mechanisms by which TNF induces proliferative and migratory responses in SMCs.
- To compare the signaling pathways activated by TNF and platelet-derived growth factor (PDGF) in SMCs.
Main Methods:
- Rabbit jugulocarotid interposition vein grafts were used to assess TNF expression in vivo.
- Rabbit aortic SMCs were treated with TNF and/or PDGF.
- Cell migration and proliferation ([(3)H]thymidine incorporation) were measured.
- Activation of signaling pathways (p38 MAPK, ERK1/2, PI3K, NF-κB) was assessed.
- Dominant-negative IκBα and specific inhibitors (U0126, LY294002) were used to probe signaling pathways.
Main Results:
- SMCs expressed TNF in vein grafts postoperatively.
- TNF and PDGF induced comparable SMC migration, with partially additive effects.
- TNF alone did not induce SMC proliferation but potentiated PDGF-induced proliferation.
- TNF and PDGF activated p38 MAPK similarly; PDGF was more potent for ERK and PI3K activation.
- TNF uniquely activated NF-κB, which was essential for TNF-induced proliferation.
- PI3K inhibition reduced migration stimulated by both TNF and PDGF.
- ERK inhibition reduced PDGF-stimulated migration but not TNF-stimulated migration.
Conclusions:
- TNF promotes SMC migration and mitogenesis via distinct and overlapping pathways compared to PDGF.
- TNF-induced SMC proliferation necessitates co-stimulation with other growth factors.
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