| Literature DB >> 30150578 |
George Cooper1, Andro C Rios2,3, Michel Nuevo4,5.
Abstract
class="Chemical">Carbonaceous meteorites provide the best glimpse into the solar system's earliest physical and chemical processes. These ancient objects, ~4.56 billion years old,Entities:
Keywords: aldonic acid; aldoses; carbonaceous meteorites; enantiomeric excess; glycerol; interstellar photolysis; monosaccharide; sugar acid; sugar alcohol; sugars
Year: 2018 PMID: 30150578 PMCID: PMC6161268 DOI: 10.3390/life8030036
Source DB: PubMed Journal: Life (Basel) ISSN: 2075-1729
Figure 1Example structures of polyol classes: (1) glyceraldehyde; (2) glyceric acid (an aldonic acid); (3) glycerol; (4) 2-methylglyceric acid.
Figure 23C–6C Straight-chain sugar (aldose) enantiomers. The biologically more abundant enantiomers are shown in black, and the relatively rare enantiomers are in red. In some cases, the less common enantiomer of a pair is still found in biology, e.g., both enantiomers of arabinose are shown in black. However, the l enantiomer is much more common. The d enantiomers of threose and galactose are more common than the l.
Figure 3Structures and names of all known polyols identified in carbonaceous meteorites [17,31]. Deoxy sugar acids are marked with (*), sugar alcohols are underlined, and dicarboxy sugar acids are italicized. The only sugar (by definition) is the 3C compound dihydroxyacetone, a ketose that exists in equilibrium with its aldose isomer, glyceraldehyde.
Figure 4The d/l enantiomeric ratios of meteoritic aldonic acids (Figure 3) increase with carbon number [31]. The asterisk shown in the 6C value is extrapolated based on the d/l trend of 3C → 4C sugar acids as reported in [31].
Figure 5Chromatograms of aldonic acid enantiomer analyses of carbonaceous meteorites [31]. (A) 3C (glyceric acid) enantiomers from the Murchison (Murch) meteorite. (B) 4C enantiomers. (C) 5C enantiomers. (D) 6C enantiomers, GRA 06100. No 6C l enantiomers were found. The enantiomers depicted as glyceric acid in (A) [31] may actually be from a chiral alkaline or polymer reaction product of glyceric acid (as shown by glyceric acid standards in carbonate solutions). However, other runs of GRA 95229 show that both glyceric acid and possible reaction products are racemic.
Glycerol/erythritol ratios and abundances of 5C sugar alcohols versus the degree of aqueous alteration in carbonaceous meteorites *. No clear trend in ratios and abundances are seen.
| Degree of Aqueous Alteration | |||||||
|---|---|---|---|---|---|---|---|
|
| |||||||
| Meteorite (Petrologic Type) | GRO 95577 (1.3) | PCA 91082 (2.3) | QUE 99177 (2.4) | Murchison (2.5) | EET 92042 (2.5) | MET 00426 (2.6) | MIL 07525 (2.8) |
| Glycerol/erythritol | 89 | 24 | 74 | 100 | 171 | 104 | 70 |
| tr | tr/nf | nf | tr | tr | tr/nf | tr/nf | |
* All data from [47] except for Murchison [17]. Meteorites are ordered by petrographic subtype (parentheses), as taken from [1] except for MIL 07525 [54]. Other meteorites with qualitatively large glycerol/erythritol ratios are GRA 95229 and ALH 85013 (calculated data from recent publication [31]). 5C Sugar alcohols refer to ribitol, arabinitol, and xylitol. tr = Trace levels; nf = not found; tr/nf = one of the three alcohols was not found.
Scheme 1The production of glycerol in the crossed-Cannizzaro reaction [14].
Figure 64C Deoxy sugar acids from the Murchison meteorite demonstrating racemic mixtures in this general class of compounds. 2-Methylglyceric acid was also racemic in GRA 95229 in the same extract as non-racemic threonic acid [31]. 2-Methyl-α-amino acids have in these meteorites. Another Murchison deoxy acid, 2,4-dihydroxybutyric acid, is also racemic [31]. Preliminary analysis of Murchison five-carbon homologs of the above compounds, i.e., 5C dihydroxy acids (not shown), are apparently also racemic. These 5C acids were in the same extracts and analyzed with the same methods as the above 4C deoxy and aldonic acids.
Scheme 2(A) The structural relationship between isoleucine, allo-isoleucine and α-methyl-isoleucine; (B) An illustration of obtaining specific diastereomers in the same Strecker reaction. Each diastereomer has its own enantiomer ratio. From the structures of allo-isoleucine and isoleucine it can be seen that they are not mirror images (enantiomers) of each other. Instead, they are epimers, i.e., stereoisomers that have multiple chiral centers, but only differ from one another by the configuration at one of the chiral centers. It is much easier to epimerize either compound into the other by inverting the stereochemistry at the α carbon because it contains an exchangeable hydrogen. However it is much more difficult to invert both α and β carbons of a given compound to obtain its enantiomer (see text).
Figure 7A qualitative depiction of the synthesis and evolution of early solar system polyols including their enantiomeric excesses. A fraction of initially synthesized polyols and other compounds (Stage 1) survive throughout interstellar cloud collapse, T-Tauri, and asteroid/comet stages of planetary disk evolution, while some can be synthesized at multiple stages. The properties of chiral members (see text) are a guide to events at each stage including the timing of production. During Stage 1, racemic deoxy sugar acids and possibly glyceric acid indicate that the formation mechanism was achiral. However, late Stage 4 compounds (e.g., a fraction of isovaline) implicate liquid water in an increase in . Between these end members, multiple meteorites with much less evidence of aqueous activity implicate Stage 2 as the beginning of due to the presence of amino acids with relatively large (isoleucine and isomers) and possibly glyceraldehyde (see below). For simplicity, the indicated stages are depicted as single periods. However, research clearly indicates (for one example) that a “Stage 1” could be multiple periods and modes of chemical synthesis, (e.g., [69]). Arrows depict radiation.
Scheme 3Possible fate of a non-racemic fraction of glyceraldehyde during aqueous alteration. Glyceraldehyde is pictured as reacting with formaldehyde (n = 1) or glycolaldehyde (n = 2) to produce larger polyols with enantiomeric excess (). If X = H, 5C sugars are the products; If X = OH, 5C sugar acids are the (oxidation) products. However, glycolaldehyde by itself readily produces sugars (especially 4C sugars), and likely even under the weak formose conditions of meteorite parent bodies (Section 3.1).