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使用 Yoda-1 在体外模拟层流:简化药物测试的工具。

Using Yoda-1 to mimic laminar flow in vitro: A tool to simplify drug testing.

机构信息

Department of Pharmacology, University of Cambridge, Cambridge, UK.

Department of Pharmacology, University of Cambridge, Cambridge, UK.

出版信息

Biochem Pharmacol. 2019 Oct;168:473-480. doi: 10.1016/j.bcp.2019.08.013. Epub 2019 Aug 19.

Abstract

The endothelium is an attractive drug target and an important site of adverse drug reactions. Endothelial dysfunction is strongly associated with inflammation and contributes to drug-induced cardiovascular toxicity. Endothelial cells in the circulation are exposed to haemodynamic forces including shear stress. Including shear stress may improve future endothelial cell drug discovery or toxicity screening. Piezo-1 is required for endothelial cells to respond to shear stress. In this study, we investigated whether a small molecule activator of Piezo-1, Yoda-1, can mimic the effect of laminar flow-induced shear stress on endothelial cell inflammation, and endothelial cytotoxicity in response to the chemotherapy agent, doxorubicin. First, we tested whether Yoda-1 could mimic the effects of shear stress of expression of the endothelial adhesion molecules, ICAM-1 and VCAM-1. Human umbilical vein endothelial cells (HUVEC) were cultured in static conditions (with or without Yoda-1) or under laminar flow-induced shear stress (5 dyn/cm). Yoda-1 and laminar flow had similar anti-inflammatory effects, reducing the ability of TNF-α to induce ICAM-1 and VCAM-1 expression. We then tested whether Yoda-1 could mimic the effect of shear stress on doxorubicin-induced cytotoxicity. Both laminar flow and Yoda-1 treatment of static cultures increased the cytotoxicity of doxorubicin. These findings show that Piezo-1 activation with Yoda-1 in static culture leads to an endothelial cell phenotype that mimics endothelial cells under laminar flow. Pharmacological activation of Piezo-1 may be a useful approach to mimic constant shear stress in static cultures, which may improve endothelial drug discovery and toxicity testing.

摘要

内皮细胞是一种有吸引力的药物靶点,也是药物不良反应的重要部位。内皮功能障碍与炎症密切相关,并导致药物引起的心血管毒性。循环中的内皮细胞暴露于血流动力学力,包括切应力。包括切应力在内可能会改善未来内皮细胞药物发现或毒性筛选。Piezo-1 是内皮细胞对切应力作出反应所必需的。在这项研究中,我们研究了 Piezo-1 的小分子激活剂 Yoda-1 是否可以模拟层流诱导的切应力对内皮细胞炎症的影响,以及对化疗药物阿霉素的内皮细胞细胞毒性。首先,我们测试了 Yoda-1 是否可以模拟切应力对内皮细胞黏附分子 ICAM-1 和 VCAM-1 表达的影响。将人脐静脉内皮细胞(HUVEC)在静态条件下(有或没有 Yoda-1)或在层流诱导的切应力下(5 dyn/cm)培养。Yoda-1 和层流具有相似的抗炎作用,降低了 TNF-α诱导 ICAM-1 和 VCAM-1 表达的能力。然后,我们测试了 Yoda-1 是否可以模拟切应力对阿霉素诱导的细胞毒性的影响。层流和 Yoda-1 处理静态培养物均增加了阿霉素的细胞毒性。这些发现表明,在静态培养物中用 Yoda-1 激活 Piezo-1 可导致内皮细胞表型类似于层流下的内皮细胞。用 Yoda-1 激活 Piezo-1 可能是一种有用的方法,可在静态培养物中模拟恒定切应力,从而改善内皮细胞药物发现和毒性测试。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3e57/6852096/c43f5aadaff5/ga1.jpg

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