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核壳型磁性双金属 MOF 材料用于协同富集磷酸肽。

Core-shell magnetic bimetallic MOF material for synergistic enrichment of phosphopeptides.

机构信息

Department of Chemistry, Fudan University, Shanghai, 200433, China.

Shanghai Key Laboratory of Functional Materials Chemistry, School of Chemistry & Molecular Engineering, East China University of Science and Technology, Shanghai, China.

出版信息

Talanta. 2020 Jan 1;206:120165. doi: 10.1016/j.talanta.2019.120165. Epub 2019 Jul 27.

Abstract

In proteomics, phosphorylation is an important process for protein post-translational modification (PTM), which greatly improves the diversity of proteomes. The PTM regulates almost all physiological and pathological processes such as signal transduction, cell division, proliferation, differentiation and metabolism. The abnormal expression of protein phosphorylation is also associated with cellular metabolic disorders and a range of diseases. However, in mass spectrometry-based phosphorylated peptideomics studies, phosphorylated peptide signals were inhibited by a high abundance of non-phosphorylated peptides; thus, highly selective enrichment was required. In this study, a newly designed material named FeO@MIL(Fe/Ti) was synthesized using a layer-by-layer self-assembly technique that coats the surface of magnetic oxide nanospheres with bimetallic MOF of iron and titanium. The synergistic synthetic coating of the bimetallic MOF gives the material a large surface area and excellent hydrophilicity, which endow the nanoparticles with excellent phosphopeptide enrichment ability, high selectivity (β-casein/BSA molar ratio 1:500), a low detection limit (3 fmol), high recovery rate (85%), strong binding capacity, size exclusion ability, and ideal batch-to-batch repeatability. For comparison, we used FeO@MIL(Fe/Ti) and two single-metal MOF materials FeO@MIL-100(Fe) and FeO@MIL-125(Ti), to enrich α-casein in the middle. Thus, the iron-titanium bimetallic MOF can not only enrich all the phosphorylated peptides enriched by FeO@MIL-100(Fe) and FeO@MIL-125(Ti), but can also specifically enrich four phosphorylated peptides. Encouraged by the excellent results of characterization and standard protein enrichment, we used this material to analyze human serum and found that bimetallic materials can effectively enrich all four phosphorylated peptides and exclude high molecular proteins. These experimental results indicate that the novel bimetallic MOF is a good candidate to analyze protein phosphorylation in complex samples.

摘要

在蛋白质组学中,磷酸化是蛋白质翻译后修饰(PTM)的一个重要过程,它极大地提高了蛋白质组的多样性。PTM 调节着几乎所有的生理和病理过程,如信号转导、细胞分裂、增殖、分化和代谢。蛋白质磷酸化的异常表达也与细胞代谢紊乱和一系列疾病有关。然而,在基于质谱的磷酸化肽组学研究中,磷酸化肽信号被大量非磷酸化肽抑制;因此,需要高度选择性的富集。在这项研究中,一种名为 FeO@MIL(Fe/Ti)的新材料是通过层层自组装技术合成的,该技术在磁性氧化物纳米球的表面涂覆了铁和钛的双金属 MOF。双金属 MOF 的协同合成涂层赋予了材料较大的表面积和优异的亲水性,使纳米颗粒具有优异的磷酸肽富集能力、高选择性(β-酪蛋白/BSA 摩尔比 1:500)、低检测限(3 fmol)、高回收率(85%)、强结合能力、排阻能力和理想的批间重复性。作为比较,我们使用 FeO@MIL(Fe/Ti)和两种单金属 MOF 材料 FeO@MIL-100(Fe)和 FeO@MIL-125(Ti),在中间富集α-酪蛋白。因此,铁钛双金属 MOF 不仅可以富集所有由 FeO@MIL-100(Fe)和 FeO@MIL-125(Ti)富集的磷酸化肽,还可以特异性地富集四个磷酸化肽。在标准蛋白富集和表征的优异结果的鼓舞下,我们使用这种材料来分析人血清,发现双金属材料可以有效地富集所有四个磷酸化肽并排除高分子量的蛋白质。这些实验结果表明,新型双金属 MOF 是分析复杂样品中蛋白质磷酸化的良好候选物。

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