Knight Cardiovascular Institute, Oregon Health & Science University, Portland, OR 97239, USA.
Department of Anesthesiology & Perioperative Medicine, Oregon Health & Science University, Portland, OR 97239, USA.
Biochim Biophys Acta Proteins Proteom. 2021 Sep;1869(9):140683. doi: 10.1016/j.bbapap.2021.140683. Epub 2021 Jun 11.
Myocardial infarction and subsequent therapeutic interventions activate numerous intracellular cascades in every constituent cell type of the heart. Endothelial cells produce several protective compounds in response to therapeutic ultrasound, under both normoxic and ischemic conditions. How endothelial cells sense ultrasound and convert it to a beneficial biological response is not known. We adopted a global, unbiased phosphoproteomics approach aimed at understanding how endothelial cells respond to ultrasound. Here, we use primary cardiac endothelial cells to explore the cellular signaling events underlying the response to ischemia-like cellular injury and ultrasound exposure in vitro. Enriched phosphopeptides were analyzed with a high mass accuracy liquid chromatrography (LC) - tandem mass spectrometry (MS/MS) proteomic platform, yielding multiple alterations in both total protein levels and phosphorylation events in response to ischemic injury and ultrasound. Application of pathway algorithms reveals numerous protein networks recruited in response to ultrasound including those regulating RNA splicing, cell-cell interactions and cytoskeletal organization. Our dataset also permits the informatic prediction of potential kinases responsible for the modifications detected. Taken together, our findings begin to reveal the endothelial proteomic response to ultrasound and suggest potential targets for future studies of the protective effects of ultrasound in the ischemic heart.
心肌梗死及随后的治疗干预会激活心脏中每一种细胞成分的许多细胞内级联反应。在正常氧和缺血条件下,内皮细胞会产生多种保护化合物来应对治疗性超声。然而,内皮细胞如何感知超声并将其转化为有益的生物学反应尚不清楚。我们采用了一种全局的、无偏的磷酸化蛋白质组学方法,旨在了解内皮细胞如何对超声做出反应。在这里,我们使用原代心脏内皮细胞来探索体外模拟缺血性细胞损伤和超声暴露时细胞信号事件。用高质量精度液相色谱(LC)-串联质谱(MS/MS)蛋白质组学平台分析富集的磷酸肽,结果显示,在缺血损伤和超声作用下,总蛋白水平和磷酸化事件都发生了多种改变。应用途径算法揭示了许多对超声有反应的蛋白质网络,包括那些调节 RNA 剪接、细胞-细胞相互作用和细胞骨架组织的网络。我们的数据集还允许对潜在的激酶进行信息预测,这些激酶可能负责检测到的修饰。总之,我们的研究结果开始揭示内皮细胞对超声的蛋白质组反应,并为未来研究超声在缺血心脏中的保护作用提供了潜在的靶点。