Department of Chemistry and Biochemistry, Florida International University, Miami, Florida 33199, United States.
School of Computing and Information Science, Florida International University, Miami, Florida 33199, United States.
Environ Sci Technol. 2022 Jan 18;56(2):1458-1468. doi: 10.1021/acs.est.1c04726. Epub 2022 Jan 4.
Dissolved organic matter (DOM) is considered an essential component of the Earth's ecological and biogeochemical processes. Structural information of DOM components at the molecular level remains one of the most extraordinary analytical challenges. Advances in determination of chemical formulas from the molecular studies of DOM have provided limited indications on structural signatures and potential reaction pathways. In this work, we extend the structural characterization of a wetland DOM sample using precursor and fragment molecular ions obtained by a sequential electrospray ionization-Fourier transform-ion cyclotron resonance tandem mass spectrometry (ESI-FT-ICR CASI-CID MS/MS) approach. The DOM chemical complexity resulted in near 900 precursors (P) and 24 000 fragment (F) molecular ions over a small / 261-477 range. The DOM structural content was dissected into families of structurally connected precursors based on neutral mass loss patterns (P + F + C) across the two-dimensional (2D) MS/MS space. This workflow identified over 1900 structural families of DOM compounds based on a precursor and neutral loss (HO, CHO, and CO). The inspection of structural families showed a high degree of isomeric content (numerous identical fragmentation pathways), not discriminable with sole precursor ion analysis. The connectivity map of structural families allows for the visualization of potential biogeochemical processes that DOM undergoes throughout its lifetime. This study illustrates that integrating effective computational tools on a comprehensive high-resolution mass fragmentation strategy further enables the DOM structural characterization.
溶解有机质(DOM)被认为是地球生态和生物地球化学过程的重要组成部分。DOM 成分的分子水平结构信息仍然是最具挑战性的分析问题之一。从 DOM 的分子研究中确定化学式的进展为结构特征和潜在反应途径提供了有限的指示。在这项工作中,我们使用顺序电喷雾电离-傅里叶变换离子回旋共振串联质谱(ESI-FT-ICR CASI-CID MS/MS)方法获得的前体和碎片分子离子扩展了湿地 DOM 样品的结构特征。DOM 化学复杂性导致在较小的 / 261-477 范围内产生近 900 个前体(P)和 24000 个碎片(F)分子离子。基于中性质量损失模式(P + F + C)在二维(2D)MS/MS 空间中的跨距,将 DOM 结构内容分解为结构连接的前体族。该工作流程基于前体和中性损失(HO、CHO 和 CO)鉴定了超过 1900 种 DOM 化合物的结构族。结构族的检查表明具有很高的异构化含量(许多相同的碎裂途径),仅通过前体离子分析无法区分。结构族的连接图允许可视化 DOM 在其整个生命周期中经历的潜在生物地球化学过程。本研究表明,将有效的计算工具集成到全面的高分辨率质量碎裂策略中可以进一步实现 DOM 的结构特征。