Device-Controlled Microcondensation for Spatially Confined On-Tissue Digests in MALDI Imaging of N-Glycans.

Annabelle Fülöp, Christian Marsching, Frederik Barka, Yasemin Ucal, Pauline Pfänder, Christiane A Opitz, Günes Barka, Carsten Hopf
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引用次数: 1

Abstract

On-tissue enzymatic digestion is a prerequisite for MALDI mass spectrometry imaging (MSI) and spatialomic analysis of tissue proteins and their N-glycan conjugates. Despite the more widely accepted importance of N-glycans as diagnostic and prognostic biomarkers of many diseases and their potential as pharmacodynamic markers, the crucial sample preparation step, namely on-tissue digestion with enzymes like PNGaseF, is currently mainly carried out by specialized laboratories using home-built incubation arrangements, e.g., petri dishes placed in an incubator. Standardized spatially confined enzyme digests, however, require precise control and possible regulation of humidity and temperature, as high humidity increases the risk of analyte dislocation and low humidity compromises enzyme function. Here, a digestion device that controls humidity by cyclic ventilation and heating of the slide holder and the chamber lid was designed to enable controlled micro-condensation on the slide and to stabilize and monitor the digestion process. The device presented here may help with standardization in MSI. Using sagittal mouse brain sections and xenografted human U87 glioblastoma cells in CD1 nu/nu mouse brain, a device-controlled workflow for MALDI MSI of N-glycans was developed.

Abstract Image

Abstract Image

Abstract Image

装置控制的微缩合用于n-聚糖的MALDI成像中空间受限的组织消化。
组织上酶消化是MALDI质谱成像(MSI)和组织蛋白及其n-聚糖偶联物的空间分析的先决条件。尽管n-聚糖作为许多疾病的诊断和预后生物标志物的重要性及其作为药效学标志物的潜力得到了更广泛的认可,但关键的样品制备步骤,即PNGaseF等酶的组织上消化,目前主要由专门的实验室使用自制的孵育安排进行,例如,将培养皿放置在培养箱中。然而,标准化的空间限制酶消化需要精确控制和可能的湿度和温度调节,因为高湿度会增加分析物错位的风险,低湿度会损害酶的功能。本文设计了一种消化装置,通过循环通风和加热载玻片支架和室盖来控制湿度,以控制载玻片上的微凝结,并稳定和监测消化过程。这里介绍的设备可能有助于MSI的标准化。利用矢状鼠脑切片和CD1 nu/nu小鼠脑内移植的人U87胶质母细胞瘤细胞,建立了一种设备控制的n -聚糖MALDI MSI工作流程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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