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Integration of Proteomics and Genomics in Platelets a profile of platelet proteins and platelet-specific genes

机译:蛋白质组学和基因组学在血小板中的整合血小板蛋白和血小板特异性基因的概况

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Platelets, while anucleate, contain RNA, some of which is translated into protein upon activation. Hypothesising that the platelet proteome is reflected in the transcriptome, we identified 82 proteins secreted from activated platelets and compared these, as well as published proteomic data, to the transcriptional profile. We also compared the transcriptome of platelets to other tissues to identify platelet-specific genes and used ontology to determine gene categories over-represented in platelets. RNA was isolated from highly pure platelet preparations for hybridization to Affymetrix oligonucleotide arrays. We identified 2,928 distinct messages as being present in platelets. The platelet transcriptome was compared with the proteome by relating both to UniGene clusters. Platelet proteomic data correlated well with the transcriptome, with 69% of secreted proteins detectable at the mRNA level, and similar concordance was obtained using two published datasets. While many of the most abundant mRNAs are for known platelet proteins, messages were detected for proteins not previously reported in platelets. Some of these may represent residual megakaryocyte messages; however, proteomic analysis confirmed the expression of many previously unreported genes in platelets. Transcripts for well-described platelet proteins are among the most platelet-specific messages. Ontological categories related to signal transduction, receptors, ion channels, and membranes are over-represented in platelets, while categories involved in protein synthesis are depleted. Despite the absence of gene transcription, the platelet proteome is mirrored in the transcriptome. Conversely, transcriptional analysis predicts the presence of novel proteins in the platelet. Transcriptional analysis is relevant to platelet biology, providing insights into platelet function and the mechanisms of platelet disorders.
机译:血小板无核,但含有RNA,其中的一些在激活后会翻译成蛋白质。假设血小板蛋白质组反映在转录组中,我们确定了活化血小板分泌的82种蛋白质,并将这些以及已发表的蛋白质组数据与转录谱进行了比较。我们还比较了血小板与其他组织的转录组,以鉴定血小板特异性基因,并使用本体来确定在血小板中过度表达的基因类别。从高纯度的血小板制品中分离RNA,以与Affymetrix寡核苷酸阵列杂交。我们确定血小板中存在2,928个不同的消息。通过将两者与UniGene簇相关联,将血小板转录组与蛋白质组进行了比较。血小板蛋白质组学数据与转录组相关性很好,在mRNA水平上可检测到69%的分泌蛋白,并且使用两个公开的数据集获得了相似的一致性。虽然许多最丰富的mRNA是已知的血小板蛋白,但检测到的信息是先前未在血小板中报道的蛋白。其中一些可能代表残留的巨核细胞信息。然而,蛋白质组学分析证实了血小板中许多以前未报道的基因的表达。完整描述的血小板蛋白的转录本是血小板特异性最高的信息之一。与信号转导,受体,离子通道和膜有关的本体论类别在血小板中代表过多,而与蛋白质合成有关的类别则被耗尽。尽管没有基因转录,但血小板蛋白质组反映在转录组中。相反,转录分析预测血小板中存在新蛋白。转录分析与血小板生物学有关,可提供有关血小板功能和血小板异常机制的见解。

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