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Updated: Aug 24, 2026

On-Chip Endothelial Inflammatory Phenotyping
Published on: July 21, 2012
Interleukin-6-induced JAK2/STAT3 signaling pathway in endothelial cells is suppressed by hemodynamic flow
Chih-Wen Ni1, Hsyue-Jen Hsieh, Yuen-Jen Chao
1Cardiovascular Division, Institute of Biomedical Sciences, Academia Sinica, Taipei, Taiwan 11529.
Insights
Steady blood flow (shear stress) inhibits inflammation-driven endothelial cell proliferation by suppressing the JAK2/STAT3 pathway. This reveals how shear stress protects blood vessels from cytokine damage.
Area of Science:
- Cardiovascular Biology
- Endothelial Cell Signaling
- Inflammation Research
Background:
- Endothelial cells (ECs) respond to shear stress, crucial for vascular health.
- Cytokines like IL-6 increase during inflammation, affecting ECs.
- Understanding EC responses to combined shear stress and IL-6 is vital.
Purpose of the Study:
- To investigate the impact of steady shear stress on IL-6-induced EC responses.
- To elucidate the molecular mechanisms underlying shear stress's effect on IL-6 signaling.
Main Methods:
- ECs were treated with IL-6 and subjected to steady shear stress.
- Analyzed STAT3 and JAK2 activation via phosphorylation.
- Utilized MEK1 and endothelial nitric oxide synthase inhibitors.
- Assessed STAT3 nuclear transmigration, DNA binding, and cell cycle progression.
Main Results:
- Shear stress suppressed IL-6-induced JAK2 and STAT3 phosphorylation.
- This suppression was mediated by nitric oxide, not ERK1/2.
- Shear stress reduced STAT3 nuclear translocation, DNA binding, and EC proliferation.
- IL-6-induced EC cell cycle progression was significantly inhibited by shear stress.
Conclusions:
- Shear stress inhibits IL-6-induced EC proliferation by suppressing the JAK2/STAT3 pathway.
- This mechanism highlights the vasoprotective role of steady blood flow.
- Findings offer new insights into endothelial responses to inflammatory stimuli.
Abstract:
Endothelial cells (ECs) are constantly exposed to shear stress, the action of which triggers signaling pathways and cellular responses. During inflammation, cytokines such as IL-6 increase in plasma. In this study, we examined the effects of steady flow on IL-6-induced endothelial responses. ECs exposed to IL-6 exhibited STAT3 activation via phosphorylation of Tyr705. However, when ECs were subjected to shear stress, shear force-dependent suppression of IL-6-induced STAT3 phosphorylation was observed. IL-6 treatment increased the phosphorylation of JAK2, an upstream activator of STAT3. Consistently, shear stress significantly reduced IL-6-induced JAK2 activation. Pretreatment of ECs with an inhibitor of MEK1 did not alter this suppression by shear stress, indicating that extracellular signal-regulated kinase (ERK1/2) was not involved. However, pretreatment of ECs with an endothelial nitric oxide synthase inhibitor (nitro-l-arginine methyl ester) attenuated this inhibitory effect of shear stress on STAT3 phosphorylation. Shear stress-treated ECs displayed decreased nuclear transmigration of STAT3 and reduced STAT3 binding to DNA. Intriguingly, ECs exposed to IL-6 entered the cell cycle, as evidenced by increasing G(2)/M phase, and shear stress to these ECs significantly reduced IL-6-induced cell cycle progression. STAT3-mediated IL-6-induced cell cycle was confirmed by the inhibition of the cell cycle in ECs infected with adenovirus carrying the inactive mutant of STAT3. Our study clearly shows that shear stress exerts its inhibitory regulation by suppressing the IL-6-induced JAK2/STAT3 signaling pathway and thus inhibits IL-6-induced EC proliferation. This shear force-dependent inhibition of IL-6-induced JAK2/STAT3 activation provides new insights into the vasoprotective effects of steady flow on ECs against cytokine-induced responses.
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