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Role of TGF-beta1 and JNK signaling in capillary tube patterning
Kiflai Bein1, Elizabeth T Odell-Fiddler, Mary Drinane
1Dartmouth-Hitchcock Medical Center, 1 Medical Center Drive, Borwell Research Bldg., 550W, Lebanon, NH 03756, USA. Kiflai.Bein@Dartmouth.Edu
Abstract:
The transforming growth factor (TGF) family of secretory polypeptides comprises signaling proteins involved in numerous physiological processes, including vascular development and vessel wall integrity. Both pro- and anti-angiogenic effects of TGF-beta1 have also been documented. To study the intracellular mechanisms involved in capillary tube morphogenesis, endothelial cell aggregates were cultured in a fibrin matrix. It was found that the pattern of capillary tubes formed in a fibrin matrix was altered in response to TGF-beta1 treatment such that the capillary-like structures displayed a bipolarized pattern. In contrast, in untreated control and fibroblast growth factor-2-treated cells, the pattern of capillary tubes formed was random. TGF-beta1 also downregulated urokinase-type plasminogen activator (uPA) activity while upregulating PA inhibitor (PAI)-1 and thrombospondin (TSP)1 gene expression. To investigate the signaling cascade mediating the phenotypic changes observed, pharmacological inhibitors of p38 MAPK, Sp1 transcription factor, c-Jun NH(2)-terminal kinase (JNK), and the cytokine TNF-alpha were used. The p38 MAPK inhibitor SB203580 reversed the TGF-beta1-dependent inhibition of uPA activity but not its morphogenetic effect. In contrast, the DNA intercalator WP631 and TNF-alpha counteracted the TGF-beta1-induced morphogenetic effect while the JNK inhibitor SP600125 effectively inhibited capillary tube formation. These results indicate that the TGF-beta1-induced capillary tube pattern is independent of the p38 MAPK-activated PAI-1 and TSP1 expression, but the mechanism involves Sp1-dependent transcriptional regulation. The results also raise the possibility that the JNK pathway, which controls convergent extension in Xenopus, may be involved in vessel wall patterning in mammalian systems.
Insights
Transforming growth factor-beta1 alters capillary tube formation by influencing endothelial cells. This study reveals the involvement of the JNK pathway and Sp1 transcription factor in TGF-beta1
Area of Science:
- Cell Biology
- Molecular Biology
- Vascular Biology
Background:
- Transforming growth factor-beta1 (TGF-beta1) is a signaling protein regulating physiological processes like vascular development.
- TGF-beta1 exhibits both pro-angiogenic and anti-angiogenic effects.
- Understanding intracellular mechanisms of capillary tube morphogenesis is crucial for vascular biology.
Purpose of the Study:
- To investigate the intracellular mechanisms of capillary tube morphogenesis induced by TGF-beta1.
- To determine the role of specific signaling pathways (p38 MAPK, JNK, Sp1) in TGF-beta1-mediated endothelial cell behavior.
- To elucidate the signaling cascade mediating TGF-beta1's effects on capillary tube patterning.
Main Methods:
- Endothelial cell aggregates cultured in a fibrin matrix.
- Treatment with TGF-beta1 and fibroblast growth factor-2.
- Analysis of capillary tube patterns (random vs. bipolarized).
- Measurement of urokinase-type plasminogen activator (uPA) activity, PA inhibitor (PAI)-1, and thrombospondin (TSP)1 gene expression.
- Pharmacological inhibition of p38 MAPK, Sp1, JNK, and TNF-alpha.
Main Results:
- TGF-beta1 treatment induced a bipolarized capillary tube pattern, unlike the random pattern in controls.
- TGF-beta1 downregulated uPA activity and upregulated PAI-1 and TSP1 gene expression.
- p38 MAPK inhibition affected uPA activity but not morphogenesis; JNK inhibition blocked capillary formation.
- Sp1-dependent transcriptional regulation and potentially the JNK pathway mediate TGF-beta1's morphogenetic effects.
Conclusions:
- TGF-beta1-induced capillary tube patterning is independent of p38 MAPK-activated PAI-1 and TSP1 expression.
- The mechanism involves Sp1-dependent transcriptional regulation.
- The JNK pathway may play a role in mammalian vessel wall patterning, similar to its role in Xenopus convergent extension.
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