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Plasma degradome affected by variable storage of human blood

机译:受人类血液变量储存影响的血浆可降解

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Background: The successful application of - omics technologies in the discovery of novel biomarkers and targets of therapeutic interventions is facilitated by large collections of well curated clinical samples stored in bio banks. Mining the plasma proteome holds promise to improve our understanding of disease mechanisms and may represent a source of biomarkers. However, a major confounding factor for defining disease-specific proteomic signatures in plasma is the variation in handling and processing of clinical samples leading to protein degradation. To address this, we defined a plasma proteolytic signature (degradome) reflecting pre-analytical variability in blood samples that remained at ambient temperature for different time periods after collection and prior to processing. Methods: We obtained EDTA blood samples from five healthy volunteers (n = 5), and blood tubes remained at ambient temperature for 30 min, 8, 24 and 48 h prior to centrifugation and isolation of plasma. Naturally occurred peptides derived from plasma samples were compared by label-free quantitative LC-MS/MS. To profile protein degradation, we analysed pooled plasma samples at T = 30 min and 48 h using PROTOMAP analysis. The proteolytic pattern of selected protein candidates was further validated by immunoblotting. Results: A total of 820 plasma proteins were surveyed by PROTOMAP, and for 4 % of these, marked degradation was observed. We show distinct proteolysis patterns for talin-1, coagulation factor XI, complement protein C1r, C3, C4 and thrombospondin, and several proteins including S100A8, A9, annexin A1, profiling-1 and platelet glycoprotein V are enriched after 48 h blood storage at ambient temperature. In particular, thrombospondin protein levels increased after 8 h and proteolytic fragments appeared after 24 h storage time. Conclusions: The overall impact of blood storage at ambient temperature for variable times on the plasma proteome and degradome is relatively minor, but in some cases can cause a potential bias in identifying and assigning relevant proteomic markers. The observed effects on the plasma proteome and degradome are predominantly triggered by limited leucocyte and platelet cell activation due to blood handling and storage. The baseline plasma degradome signature presented here can help filtering candidate protein markers relevant for clinical biomarker studies.
机译:背景:通过储存在生物堤中的大量愈合的临床样本,促进了OMICS技术在发现新型生物标志物和治疗干预靶中的应用。采矿等离子体蛋白质组持有希望改善我们对疾病机制的理解,并且可能代表生物标志物的来源。然而,用于定义血浆中疾病特异性蛋白质组学签名的主要混淆因素是处理和处理导致蛋白质降解的临床样品的变化。为了解决这一点,我们定义了反映在收集后和处理之前在不同时间段处保持在环境温度的血液样本中的预分析变异性的血浆蛋白水解签名(DRESAMOME)。方法:我们从五个健康志愿者(n = 5)获得EDTA血液样品,在离心和分离等离子体之前,血管保持在环境温度下30分钟,8,24和48小时。通过无标记的定量LC-MS / MS比较自然发生的衍生自相样样品的肽。为了思考蛋白质降解,我们使用Protomap分析分析了T = 30分钟和48小时的汇集等离子体样品。通过免疫印迹进一步验证所选蛋白候选物的蛋白水解模式。结果:通过Protomap调查了总共820个血浆蛋白,其中4%,观察到明显的降解。我们为倒下的凝血因子XI,补体蛋白C1R,C3,C4和血小板蛋白,以及包括S100A8,A9,ANNEXXIN A1,分析-1和血小板糖蛋白V的几种蛋白质在48小时储存后富集的几种蛋白质环境温度。特别地,在8小时后增加血压素蛋白水平,并且在24小时后出现蛋白水解片段。结论:在血浆蛋白质组和降低组上的可变时间对环境温度对环境温度的整体影响是相对较小的,但在某些情况下可能导致识别和分配相关蛋白质组学标志物的潜在偏压。由于血液处理和储存,观察到对血浆蛋白质组和降低组的影响主要是受限的白细胞和血小板电池活化引发。这里呈现的基线血浆可降低签名可以帮助过滤与临床生物标志物研究相关的候选蛋白质标志物。

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