Experiment-based Computational Model Predicts that IL-6 Trans-Signaling Plays a Dominant Role in IL-6 mediated signaling in Endothelial Cells
Экспериментально-обоснованная вычислительная модель предсказывает доминирующую роль транc-сигналинга IL-6 в опосредованной IL-6 сигнальной передаче в эндотелиальных клетках
2023-02-03
SCID: 54.1/6mhb2rzu
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IL-6 classic signalingIL-6 trans-signalingpAkt (PI3K/Akt)pERK (MAPK/ERK)pSTAT3
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Abstract (AI)
Inflammatory cytokine mediated responses are important in the development of many diseases that are associated with angiogenesis. Targeting angiogenesis as a prominent strategy has shown limited effects in many contexts such as peripheral arterial disease (PAD) and cancer. One potential reason for the unsuccessful outcome is the mutual dependent role between inflammation and angiogenesis. Inflammation-based therapies primarily target inflammatory cytokines such as interleukin-6 (IL-6) in T cells, macrophages, cancer cells, muscle cells, and there is a limited understanding of how these cytokines act on endothelial cells. Thus, we focus on one of the major inflammatory cytokines, IL-6, mediated intracellular signaling in endothelial cells by developing a detailed computational model. Our model quantitatively characterized the effects of IL-6 classic and trans-signaling in activating the signal transducer and activator of transcription 3 (STAT3), phosphatidylinositol 3-kinase/protein kinase B (PI3K/Akt), and mitogen-activated protein kinase (MAPK) signaling to phosphorylate STAT3, extracellular regulated kinase (ERK) and Akt, respectively. We applied the trained and validated experiment-based computational model to characterize the dynamics of phosphorylated STAT3 (pSTAT3), Akt (pAkt), and extracellular regulated kinase (pERK) in response to IL-6 classic and/or trans-signaling. The model predicts that IL-6 classic and trans-signaling induced responses are IL-6 and soluble IL-6 receptor (sIL-6R) dose-dependent. Also, IL-6 trans-signaling induces stronger downstream signaling and plays a dominant role in the overall effects from IL-6. In addition, both IL-6 and sIL-6R levels regulate signaling strength. Moreover, our model identifies the influential species and kinetic parameters that specifically modulate the pSTAT3, pAkt, and pERK responses, which represent potential targets for inflammatory cytokine mediated signaling and angiogenesis-based therapies. Overall, the model predicts the effects of IL-6 classic and/or trans-signaling stimulation quantitatively and provides a framework for analyzing and integrating experimental data. More broadly, this model can be utilized to identify targets that influence inflammatory cytokine mediated signaling in endothelial cells and to study the effects of angiogenesis- and inflammation-based therapies.
Key Findings
1
A detailed experiment-based computational model was developed to quantify IL-6 classic and trans-signaling effects on endothelial cell STAT3, PI3K/Akt, and MAPK pathways.
2
IL-6 trans-signaling induces stronger downstream signaling than classic signaling and plays a dominant role in overall IL-6–mediated effects in endothelial cells.
3
The model identifies specific influential molecular species and kinetic parameters that modulate pSTAT3, pAkt, and pERK, suggesting potential therapeutic targets for inflammation- and angiogenesis-related therapies.
4
The model predicts that IL-6 and soluble IL-6 receptor (sIL-6R) dose-dependently regulate phosphorylated STAT3 (pSTAT3), Akt (pAkt), and ERK (pERK) dynamics.
5
The validated model provides a quantitative framework for integrating experimental data and studying effects of angiogenesis- and inflammation-based therapies on endothelial signaling.
Research Object
IL-6 (classic and trans-) mediated intracellular signaling network in endothelial cells
Research Subject
Dynamics and relative contributions of IL-6 classic versus trans-signaling in activating STAT3, PI3K/Akt and MAPK pathways (pSTAT3, pAkt, pERK), dose-dependence on IL-6 and sIL-6R, and identification of influential species and kinetic parameters modulating these responses
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2023-02-03
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