Systems biology of HBOC-induced vasoconstriction
1Department of Molecular Pharmacology, Physiology & Biotechnology, Brown University, Providence, RI 02912, USA. Chi-Ming_Hai@brown.edu
Insights
A multi-target approach using systems biology is proposed to counteract vasoconstriction caused by hemoglobin-based oxygen carriers (HBOCs). This strategy targets multiple pathways to improve efficacy and reduce adverse effects.
Area of Science:
- Vascular biology
- Systems biology
- Pharmacology
Background:
- Hemoglobin-based oxygen carriers (HBOCs) can induce vasoconstriction, a significant adverse effect.
- Previous attempts using single drugs to mitigate HBOC-induced vasoconstriction have shown limited success.
Purpose of the Study:
- To propose a systems biology approach for developing a multi-target drug regimen to counteract HBOC-induced vasoconstriction.
- To explore targeting multiple sites within the vascular system's signaling cascades to enhance therapeutic efficacy.
Main Methods:
- Investigating HBOC's effects on nitric oxide (NO) scavenging and reactive oxygen species generation.
- Analyzing NO-cGMP signaling pathways in vascular smooth muscle cells.
- Examining the role of phenotypic heterogeneity in vascular systems.
- Utilizing mathematical modeling and experimental studies for iterative target identification.
Main Results:
- HBOCs disrupt NO-cGMP signaling and protein phosphorylation cascades, leading to vasoconstriction.
- A multi-target approach can potentially alter signal amplification gain, limiting disruptive effects.
- Submaximal drug doses may achieve high overall efficacy through multi-target intervention.
Conclusions:
- A systems biology approach integrating experimental and modeling studies is crucial for developing effective multi-target HBOC regimens.
- Understanding vascular system heterogeneity is key to identifying optimal targets and doses.
- Targeting multiple steps in signaling pathways offers a promising strategy to manage HBOC-induced vasoconstriction.
Abstract:
Vasoconstriction is a major adverse effect of HBOCs. The use of a single drug for attenuating HBOC-induced vasoconstriction has been tried with limited success. Since HBOC causes disruptions at multiple levels of organization in the vascular system, a systems approach is helpful to explore avenues to counteract the effects of HBOC at multiple levels by targeting multiple sites in the system. A multi-target approach is especially appropriate for HBOC-induced vasoconstriction, because HBOC disrupts the cascade of amplification by NO-cGMP signaling and protein phosphorylation, ultimately resulting in vasoconstriction. Targeting multiple steps in the cascade may alter the overall gain of amplification, thereby limiting the propagation of disruptive effects through the cascade. As a result, targeting multiple sites may accomplish a relatively high overall efficacy at submaximal drug doses. Identifying targets and doses for developing a multi-target combination HBOC regimen for oxygen therapeutics requires a detailed understanding of the systems biology and phenotypic heterogeneity of the vascular system at multiple layers of organization, which can be accomplished by successive iterations between experimental studies and mathematical modeling at multiple levels of vascular systems and organ systems. Towards this goal, this article addresses the following topics: a) NO-scavenging by HBOC, b) HBOC autoxidation-induced reactive oxygen species generation and endothelial barrier dysfunction, c) NO- cGMP signaling in vascular smooth muscle cells, d) NO and cGMP-dependent regulation of contractile filaments in vascular smooth muscle cells, e) phenotypic heterogeneity of vascular systems, f) systems biology as an approach to developing a multi-target HBOC regimen.
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