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植酸功能化磁性双金属金属有机骨架用于磷酸肽富集。

Phytic acid functionalized magnetic bimetallic metal-organic frameworks for phosphopeptide enrichment.

机构信息

National Engineering Research Center for Biomaterials, Sichuan University, Chengdu 610064, P. R. China.

出版信息

J Mater Chem B. 2021 Feb 25;9(7):1811-1820. doi: 10.1039/d0tb02517h.

Abstract

Highly specific enrichment of phosphopeptides from complex biological samples was a precondition for further studying its physiological and pathological processes due to the important and trace amounts of phosphopeptides. In this work, phytic acid (PA) functionalized magnetic cerium and zirconium bimetallic metal-organic framework nanocomposites (denoted as Fe3O4@SiO2@Ce-Zr-MOF@PA) were fabricated by a facile yet efficient method. The as-prepared nanomaterial exhibited high sensitivity (0.1 fmol μL-1), high selectivity toward phosphopeptides from β-casein tryptic digests/BSA (1 : 800), and good reusability of five cycles for enriching phosphopeptides. This affinity probe was applied to biological samples, and 19, 4 and 15 phosphopeptides were identified from non-fat milk, human serum and human saliva, respectively. The above marked advantages are attributed to the strong affinity of the abundant Ce-O and Zr-O nanoclusters on the surface of the MOF shell with the improved hydrophilicity from a great number of phosphate groups. Therefore, the novel Fe3O4@SiO2@Ce-Zr-MOF@PA nanospheres could not only enrich phosphopeptides effectively, but also reduce the adsorption of phosphopeptides, manifesting great potential in the identification and further analysis of low abundance phosphopeptides in complex biological samples.

摘要

由于磷酸肽的含量重要且痕量,因此从复杂的生物样品中高度特异性地富集磷酸肽是进一步研究其生理和病理过程的前提。在这项工作中,通过一种简单而有效的方法制备了植酸(PA)功能化的磁性铈锆双金属金属有机骨架纳米复合材料(表示为 Fe3O4@SiO2@Ce-Zr-MOF@PA)。所制备的纳米材料表现出高灵敏度(0.1 fmol μL-1)、对β-酪蛋白胰蛋白酶消化物/BSA 中的磷酸肽的高选择性(1:800)以及用于富集磷酸肽的五个循环的良好可重复使用性。该亲和探针被应用于生物样品中,分别从脱脂乳、人血清和人唾液中鉴定出 19、4 和 15 种磷酸肽。上述显著优势归因于 MOF 壳表面大量的 Ce-O 和 Zr-O 纳米簇与改善的亲水性之间的强亲和力,以及大量磷酸基团。因此,新型 Fe3O4@SiO2@Ce-Zr-MOF@PA 纳米球不仅可以有效地富集磷酸肽,而且可以减少磷酸肽的吸附,在复杂生物样品中低丰度磷酸肽的鉴定和进一步分析方面显示出巨大的潜力。

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