Department of Chemistry, The George Washington University, Washington, DC, 20052, USA.
Department of Pharmacology and Physiology, The George Washington University, Washington, DC, 20037, USA.
J Am Soc Mass Spectrom. 2017 Apr;28(4):597-607. doi: 10.1007/s13361-016-1532-8. Epub 2016 Nov 16.
Ultrasensitive characterization of the proteome raises the potential to understand how differential gene expression orchestrates cell heterogeneity in the brain. Here, we report a microanalytical capillary electrophoresis nano-flow electrospray ionization (CE-nanoESI) interface for mass spectrometry to enable the measurement of limited amounts of proteins in the mouse cortex. Our design integrates a custom-built CE system to a tapered-tip metal emitter in a co-axial sheath-flow configuration. This interface can be constructed in <15 min using readily available components, facilitating broad adaptation. Tapered-tip CE-nanoESI generates stable electrospray by reproducibly anchoring the Taylor cone, minimizes sample dilution in the ion source, and ensures efficient ion generation by sustaining the cone-jet spraying regime. Parallel reaction monitoring provided a 260-zmol lower limit of detection for angiotensin II (156,000 copies). CE was able to resolve a complex mixture of peptides in 330,000 theoretical plates and identify ~15 amol (1 pg) of BSA or cytochrome c. Over 30 min of separation, 1 ng protein digest from the mouse cortex yielded 217 nonredundant proteins encompassing a ~3-log-order concentration range using a quadrupole time-of-flight mass spectrometer. Identified proteins included many products from genes that are traditionally used to mark oligodendrocytes, astrocytes, and microglia. Finally, key proteins involved in neurodegenerative disorders were detected (e.g., parkinsonism and spastic paraplegia). CE-nanoESI-HRMS delivers sufficient sensitivity to detect proteins in limited amounts of tissues and cell populations to help understand how gene expression differences maintain cell heterogeneity in the brain. Graphical Abstract ᅟ.
超敏蛋白质组学特征分析有可能了解差异基因表达如何协调大脑中的细胞异质性。在这里,我们报告了一种用于质谱分析的微分析毛细管电泳纳流电喷雾电离(CE-nanoESI)接口,可用于测量小鼠皮质中有限量的蛋白质。我们的设计将定制的 CE 系统集成到同轴鞘流配置中的锥形尖端金属发射器中。该接口可以使用现成的组件在<15 分钟内构建,便于广泛采用。锥形尖端 CE-nanoESI 通过可重复地固定泰勒锥来产生稳定的电喷雾,最大限度地减少离子源中的样品稀释,并通过维持锥-射流喷雾状态来确保有效的离子生成。平行反应监测为血管紧张素 II(156000 个拷贝)提供了 260-zmol 的检测下限。CE 能够在约 330000 个理论板上分辨出复杂的肽混合物,并鉴定出约 15 amol(1pg)BSA 或细胞色素 c。在 30 多分钟的分离时间内,从小鼠皮质中获得的 1ng 蛋白消化物使用四极杆飞行时间质谱仪产生了 217 种非冗余蛋白质,涵盖了约 3 个对数阶浓度范围。鉴定出的蛋白质包括许多传统上用于标记少突胶质细胞、星形胶质细胞和小胶质细胞的基因产物。最后,还检测到了与神经退行性疾病相关的关键蛋白(例如帕金森病和痉挛性截瘫)。CE-nanoESI-HRMS 具有足够的灵敏度,可用于检测有限量组织和细胞群体中的蛋白质,有助于了解基因表达差异如何维持大脑中的细胞异质性。