| Literature DB >> 31052536 |
Alexander Ruf1, Pauline Poinot2, Claude Geffroy3, Louis Le Sergeant d'Hendecourt4, Gregoire Danger5.
Abstract
Meteorites have been found to be rich and highly diverse in organic compounds. Next to previous direct infusion high resolution mass spectrometry experiments (Entities:
Keywords: astrochemistry; data analysis; high-resolving analytical chemistry; meteorites; origin of life
Year: 2019 PMID: 31052536 PMCID: PMC6617268 DOI: 10.3390/life9020035
Source DB: PubMed Journal: Life (Basel) ISSN: 2075-1729
Figure 1Complexity of astrochemical organic matter. (A) Positive ESI mode total ion current (TIC) 1D chromatogram of Murchison soluble organic matter; (B) different retention times result in different mass spectrometric fingerprints between 150 and 550 amu (atomic mass units); (C) the nominal mass m/z = 168 bears 17 different m/z signals, whose intensities vary for different retention times; (D) a simulated DI-Orbitrap mass spectrum of m/z = 168 amu doesn’t give information on structural isomers. In the simulated DI mass spectrum, all mass spectra along the chromatographic run were averaged.
Figure 2Classifying chemical families. (A) van Krevelen diagrams of spot 1 (RT = 4–7 min, m/z = 150–700 amu); (B) van Krevelen diagrams of spot 2 (RT = 12.5–17.5 min, m/z = 300–500 amu); (C) 2D chromatogram (m/z over retention time) of Murchison soluble organic matter depicts its chemical diversity in these two dimensions but also shows the grouping of distinct chemical subspaces CHO, CHNO, CHOS and CHNOS; (D) the resolved detection of eight C11H21N2+ isomers in Murchison gives first insights on the different chemical polarity of these compounds. (E) van Krevelen diagrams of spot 3 (RT = 8–10 min, m/z = 200–300 amu); (F) van Krevelen diagrams of spot 4 (RT = 14–17 min, m/z = 200–300 amu). Bubble sizes in van Krevelen diagrams are scaled with mass spectrometric intensites.
Figure 3Comparison of Murchison with Allende. (A) 2D chromatogram highlighting the compound distributions of Murchison and Allende; (B) number of isomers as a function of m/z; (C,D) 2D chromatogram of the top 15 molecular compositions sorted by the number of isomers in Murchison (C) and Allende (D); (E,F) mass-edited van Krevelen diagrams of the top 15 molecular compositions sorted by the number of isomers in Murchison (E) and Allende (F). In all plots, only unique features present in Murchison or Allende, respectively.
Figure 4Data processing workflow—a protocol to merge highdimensional LC-HR-MS data. (A) the filtering and optimized process of this data set reduced the data set from ≈400,000 features to ≈7000 features; (B,C) m/z over retention time plot shows the difference in m/z signals before and after processing.