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Targeted LC-MS/MS Proteomics-Based Strategy To Characterize in Vitro Models Used in Drug Metabolism and Transport Studies

机译:基于LC-MS / MS蛋白质组学的基于LC-MS / MS蛋白质组学的策略,以表征药物代谢和运输研究中使用的体外模型

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Subcellular fractionation of tissue homogenate provides enriched in vitro models (e.g., microsomes, cytosol, or membranes), which are routinely used in the drug metabolism or transporter activity and protein abundance studies. However, batch-to-batch or interlaboratory variability in the recovery, enrichment, and purity of the subcellular fractions can affect performance of in vitro models leading to inaccurate in vitro to in vivo extrapolation (IVIVE) of drug clearance. To evaluate the quality of subcellular fractions, we developed a simple, targeted, and sensitive LC-MS/MS proteomics-based strategy, which relies on determination of protein markers of various cellular organelles, i.e., plasma membrane, cytosol, nuclei, mitochondria, endoplasmic reticulum (ER), lysosomes, peroxisomes, cytoskeleton, and exosomes. Application of the quantitative proteomics method confirmed a significant effect of processing variables (i.e., homogenization method and centrifugation speed) on the recovery, enrichment, and purity of isolated proteins in microsomes and cytosol. Particularly, markers of endoplasmic reticulum lumen and mitochondrial lumen were enriched in the cytosolic fractions as a result of their release during homogenization. Similarly, the relative recovery and composition of the total membrane fraction isolated from cell vs tissue samples was quantitatively different and should be considered in IVIVE. Further, analysis of exosomes isolated from sandwich-cultured hepatocyte media showed the effect of culture duration on compositions of purified exosomes. Therefore, the quantitative proteomics-based strategy developed here can be applied for efficient and simultaneous determination of multiple protein markers of various cellular organelles when compared to antibody-or activity-based assays and can be used for quality control of subcellular fractionation procedures including in vitro model development for drug metabolism and transport studies.
机译:组织匀浆的亚细胞分馏提供富含体外模型(例如微粒体,细胞溶质或膜),其常规用于药物代谢或转运活性和蛋白质丰度研究。然而,亚细胞级分的回收率,富集和纯度的分批或互斥性可变性可能影响体外模型的性能,导致体外不准确的药物清除率(vive)。为了评估亚细胞级分的质量,我们开发了一种简单,有针对性和敏感的LC-MS / MS蛋白质组学的策略,其依赖于各种细胞细胞器的蛋白质标记的测定,即质膜,细胞溶质,细胞核,线粒体,内质网(ER),溶酶体,过氧化物酶体,细胞骨架和外骨。定量蛋白质组学方法的应用证实了加工变量(即均质化方法和离心速度)对微粒体和细胞溶溶胶中分离的蛋白质的回收率,富集和纯度的显着效果。特别地,由于它们在均化过程中释放,因此在胞质粒径中富集内质网腔和线粒体内腔的标记。类似地,从细胞VS组织样品中分离的总膜级分的相对恢复和组成定量不同,应在vive中考虑。此外,从夹心培养的肝细胞培养基中分离的外泌体的分析显示培养持续时间对纯化外出的组合物的影响。因此,与抗体或活性的测定相比,这里开发的基于定量蛋白质组学的策略可以应用于有效且同时测定各种细胞细胞器的多种蛋白质标记物,并且可用于亚细胞分级程序的质量控制,包括体外药物代谢与运输研究的模型开发。

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