Pathological role of the calcium‐sensing receptor in sepsis‐induced hypotensive shock: Therapeutic possibilities and unanswered questions

败血症 休克(循环) 血管舒张 内皮功能障碍 一氧化氮 钙敏感受体 炎症 医学 感染性休克 药理学 免疫学 内分泌学 内科学 钙代谢
作者
Ankita Sood,Gaaminepreet Singh,Thakur Gurjeet Singh,Kirti Gupta
出处
期刊:Drug Development Research [Wiley]
卷期号:83 (6): 1241-1245 被引量:19
标识
DOI:10.1002/ddr.21959
摘要

Abstract Sepsis is a life‐threatening disease involving multiorgan dysfunction, prompted by an unregulated host response to infection. Shock is a complication of sepsis in which the circulatory and cellular metabolism anomalies are significant enough to raise the risk of death. Calcium dyshomeostasis occurs during sepsis condition due to imbalance between calcium uptake and excessive release induced by inflammatory cytokines. This calcium imbalance can cause activation of calcium‐sensing receptors (CaSRs) located on the surface of T cells and thereby promote release of reactive oxygen species (ROS). The elevated ROS and inflammatory cytokines during sepsis condition have been reported to directly damage the endothelial cells, disrupt the barrier functions that might result in leakage of fluids, and inflammatory cells in tissues Moreover, several evidence have revealed that the calcium mediated activation of CaSR could produce systemic vasodilatory response by stimulating the nitric oxide production and opening of calcium‐activated potassium channels, while infusion of its antagonist elevated the blood pressure. These evidence indicate that activation of CaSR during sepsis conditions results in release of ROS and inflammatory cytokines, which could produce an endothelial barrier damage, cardiomyocyte apoptosis. These pathological events could produce loss of fluid in tissues and cardiac dysfunction. Further the direct vasodilatory effects of CaSR activation might add to the shock‐like condition. Thus, we hereby propose that inhibition of CaSR could suppress the release of ROS, inflammatory mediators, and thereby prevent the endothelial damage, cardiac dysfunction, and maintain systemic vascular tone.
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