National Chromatographic R. & A. Center, Key Laboratory of Separation Science for Analytical Chemistry, Dalian Institute of Chemical Physics, Chinese Academy of Science, Dalian 116023, China.
J Chromatogr A. 2012 Sep 7;1254:8-13. doi: 10.1016/j.chroma.2012.07.030. Epub 2012 Jul 20.
In this paper, magnetic Fe₃O₄ nanoparticles modified graphene oxide nanocomposites (GO-CO-NH-Fe₃O₄) were prepared by covalent bonding, via the reaction between the amino groups of fuctionalized Fe₃O₄ and the carboxylic groups of GO, confirmed by Fourier-transform infrared spectra, Raman spectroscopy, and transmission electron microscopy. With GO-CO-NH-Fe₃O₄ as a novel substrate, trypsin was immobilized via π-π stacking and hydrogen bonding interaction, and the binding capacity of trypsin reached as high as 0.275 mg/mg. Since GO-CO-NH-Fe₃O₄ worked as not only support for enzyme immobilization, but also as an excellent microwave irradiation absorber, the digestion efficiency could be further improved with microwave assistance. By such an immobilized enzymatic reactor (IMER), standard proteins could be efficiently digested within 15 s, with sequence coverages comparable or better than those obtained by conventional in-solution digestion (12 h). Since trypsin was immobilized under mild conditions, the enzymatic activity of IMER preserved at least for a month. In addition, due to the good hydrophilicity of GO, no peptide residue was observed in the sequent digestion of bovine serum albumin and myoglobin. To further confirm the efficiency of such an IMER for proteome analysis, it was applied to digest proteins extracted from rat liver, followed by nanoRPLC-ESI-MS/MS analysis. With only 5 min microwave-assisted digestion, in 3 parallel runs, totally 456 protein groups were identified, comparable to that obtained by 12 h in-solution digestion, indicating the great potential of IMERs with GO-CO-NH-Fe₃O₄ as the support for high throughput proteome study.
本文通过共价键合,利用功能化 Fe₃O₄ 中的氨基与 GO 的羧基之间的反应,制备了磁性 Fe₃O₄ 纳米粒子修饰的氧化石墨烯纳米复合材料(GO-CO-NH-Fe₃O₄)。通过傅里叶变换红外光谱、拉曼光谱和透射电子显微镜证实了这一点。以 GO-CO-NH-Fe₃O₄ 为新型载体,通过π-π 堆积和氢键相互作用固定胰蛋白酶,胰蛋白酶的结合能力高达 0.275 mg/mg。由于 GO-CO-NH-Fe₃O₄ 不仅作为酶固定化的载体,而且作为一种优异的微波吸收剂,微波辅助可以进一步提高消化效率。通过这种固定化酶反应器(IMER),标准蛋白质可以在 15 秒内有效地被消化,其序列覆盖率与传统溶液消化(12 小时)相当或更好。由于胰蛋白酶是在温和条件下固定化的,IMER 的酶活性至少可以保持一个月。此外,由于 GO 的良好亲水性,在牛血清白蛋白和肌红蛋白的连续消化中没有观察到肽残留。为了进一步证实这种 IMER 用于蛋白质组分析的效率,将其用于消化从大鼠肝脏中提取的蛋白质,然后进行纳升级反相高效液相色谱-电喷雾-串联质谱(nanoRPLC-ESI-MS/MS)分析。仅通过 5 分钟的微波辅助消化,在 3 个平行运行中,总共鉴定出 456 个蛋白质组,与 12 小时溶液消化相当,表明以 GO-CO-NH-Fe₃O₄ 为载体的 IMER 具有高通量蛋白质组研究的巨大潜力。