Obena Rofeamor P, Tseng Mei-Chun, Primadona Indah, Hsiao Jun, Li I-Che, Capangpangan Rey Y, Lu Hsiu-Fong, Li Wan-Sheung, Chao Ito, Lin Chun-Cheng, Chen Yu-Ju
Institute of Chemistry , Academia Sinica , Taipei , Taiwan.
Institute of Chemistry , University of the Philippines-Diliman , Quezon City , Philippines.
Chem Sci. 2015 Aug 1;6(8):4790-4800. doi: 10.1039/c5sc00546a. Epub 2015 May 28.
The structure-specific fragmentation of gas-phase ions in tandem mass spectrometry among other techniques provides an efficient analytical method for confirming unknown analytes or for elucidating chemical structures. Using concentration-dependent UV-absorbing matrix-functionalized magnetic nanoparticles and matrix-assisted laser desorption-ionization mass spectrometry (MALDI MS), we developed a single-step pseudo-MS/MS approach for tunable ionization and fragmentation to facilitate structure determination. Without chemical derivatization, we have demonstrated that this approach successfully distinguished isomeric sets of di-, tri- and tetrasaccharides. Low concentration of nanomatrix provided an enhanced signal for accurate mass determination of the intact molecular ions of analytes present in the sample. In contrast, high concentration of nanomatrix induced extensive and unique fragmentation, including high-energy facile bond breakage (A- and X-type cross-ring cleavages), which facilitated the linkage and sequence characterization of oligosaccharides without conventional tandem mass spectrometric instrumentation. The practicality of this approach for complex sample analysis was evaluated by an oligosaccharide mixture, wherein molecular ions are unambiguously observed and signature product ions are distinguishable enough for molecular identification and isomer differentiation by this simple tunable approach. By probing the roles of the multilayer nanomatrix components: matrix (energy absorption), silane-coating (energy pooling and dissipation) and core FeO (fragmentation), a plausible energy transfer mechanism was proposed based on a computational study and photoelectron experiments. The differentiation of tri- and tetra-oligosaccharide shown in this study not only demonstrated the first step toward glycan characterization by nanoparticle-assisted MALDI-MS, but also shed some insight on the nanoparticle-mediated energy transfer dynamics behind our approach.
串联质谱法等技术中气相离子的结构特异性碎裂为确认未知分析物或阐明化学结构提供了一种有效的分析方法。利用浓度依赖性的紫外吸收基质功能化磁性纳米颗粒和基质辅助激光解吸电离质谱(MALDI MS),我们开发了一种用于可调电离和碎裂的单步伪MS/MS方法,以促进结构测定。无需化学衍生化,我们已证明该方法成功区分了二糖、三糖和四糖的异构体组。低浓度的纳米基质为准确测定样品中存在的分析物完整分子离子的质量提供了增强信号。相比之下,高浓度的纳米基质会诱导广泛且独特的碎裂,包括高能易发生的键断裂(A-和X-型交叉环裂解),这有助于在无需传统串联质谱仪器的情况下对寡糖进行连接和序列表征。通过寡糖混合物评估了该方法用于复杂样品分析的实用性,其中通过这种简单的可调方法能够明确观察到分子离子,并且特征性产物离子足以用于分子鉴定和异构体区分。通过探究多层纳米基质成分的作用:基质(能量吸收)、硅烷涂层(能量汇聚和耗散)和核心FeO(碎裂),基于计算研究和光电子实验提出了一种合理的能量转移机制。本研究中三糖和四糖寡糖的区分不仅展示了纳米颗粒辅助MALDI-MS进行聚糖表征的第一步,还为我们方法背后的纳米颗粒介导的能量转移动力学提供了一些见解。