| Literature DB >> 27958316 |
Luca Rotelli1, Josep M Trigo-Rodríguez2, Carles E Moyano-Cambero2, Eleonora Carota1, Lorenzo Botta1, Ernesto Di Mauro1, Raffaele Saladino1.
Abstract
We show that carbonaceous chondrite meteorites actively and selectively catalyze the formation of relevant prebiotic molecules from formamide in aqueous media. Specific catalytic behaviours are observed, depending on the origin and composition of the chondrites and on the type of water present in the system (activity: thermal > seawater > pure). We report the one-pot synthesis of all the natural nucleobases, of aminoacids and of eight carboxylic acids (forming, from pyruvic acid to citric acid, a continuous series encompassing a large part of the extant Krebs cycle). These data shape a general prebiotic scenario consisting of carbonaceous meteorites acting as catalysts and of a volcanic-like environment providing heat, thermal waters and formamide. This scenario also applies to the other solar system locations that experienced rich delivery of carbonaceous materials, and whose physical-chemical conditions could have allowed chemical evolution.Entities:
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Year: 2016 PMID: 27958316 PMCID: PMC5153646 DOI: 10.1038/srep38888
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Products of thermal condensation from NH2CHO/water mixtures in the presence of ALH 84028, LAR 04318 and EET 92042 meteoritic components.
| | ALH 84028 (CV3) | LAR 04318 (CK4) | EET 92042 (CR2) | |||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Product | A | B | C | D | A | B | C | A | B | C | ||
| C2 | Glycolic ac. | 25,0 (25,1) | 10,3 | 9,8 | — | — | — | — | 9,8 (9,8) | — | — | |
| Oxalic ac. | traces | 5,2 | 9,0 | 1,3 | 125,0 | 95,0 | 60,3 | — | — | — | ||
| C3 | Pyruvic ac. | 2,5 (2,5) | 1,8 | — | — | 25,0 | 25,1 | — | 68,4 (68,3) | 66,8 | 46,3 | |
| Lactic ac. | 28,7 (28,6) | 12,5 | 11.3 | — | — | — | — | — | — | — | ||
| Parabanic ac. | — | — | — | — | 16,7 | 8.9 | — | — | — | — | ||
| C4 | Malic ac. | — | — | — | — | 6,0 | 4,4 | — | — | — | — | |
| Succinic ac. | 6,6 (6,6) | 0,1 | traces | — | 4.9 | 2,3 | 2,5 | — | — | — | ||
| Oxaloacetic ac. | — | — | — | — | — | — | — | 3,0 (3,0) | 2.5 | 6,5 | ||
| Fumaric ac. | 0,07 (0,06) | 0,05 | traces | — | — | — | — | — | — | — | ||
| C5 | Ketoglutaric ac. | 0,08 (0,08) | 0,07 | traces | — | — | — | — | — | — | — | |
| C6 | Citric ac. | 4,8 (4,8) | 3,3 | 1,3 | 6,9 | 16,4 | 6,0 | 3,2 | 5.6 (5,7) | 3,4 | 2,1 | |
| C16 | Palmitic ac. | 20,9 (20,8) | 25,2 | 21,2 | 7,4 | 47,4 | 25,9 | 8,1 | — | — | — | |
| Stearic ac. | 37,7 (37,7) | 14,5 | 9,0 | 7,9 | 83,1 | 42,6 | 33,1 | — | — | — | ||
| Uracil | 9,7 (9,7) | 3,6 | 2,5 | — | 14,4 | 0,1 | — | — | — | — | ||
| Adenine | 1,5 (1,5) | 2,4 | 1.3 | — | — | 0,5 | — | 3,3 (3,3) | 1,4 | 1,1 | ||
| Guanine | 1,4 (1,5) | 1,2 | 1,2 | — | — | — | — | 3,1 (3,1) | 2,9 | 2.9 | ||
| Hypoxanthine | 3,7 (3,8) | 1,3 | — | — | — | — | — | 5.1 (5,1) | 5,3 | 2,7 | ||
| Isocytosine | 12,6 (12,5) | 0,9 | 0,1 | — | — | — | — | — | — | — | ||
| 2,6-Diaminopurine | — | — | — | — | — | — | — | 7,5 (7,5) | 6,3 | 5,1 | ||
| 4 (3 H)-pyrimidinone | — | — | — | — | — | — | — | 4,8 (4,7) | 1,7 | 1,6 | ||
| Uracil 5-carboxylic ac. | 0,4 (0,4) | 0,4 | — | — | — | — | — | — | — | |||
| 2,4-diamino-6-hydroxypyrimidine | 25,9 (25,9) | 0.6 | — | — | 35,5 | — | — | 8,1 (8,1) | 7,33 | 6,1 | ||
| Glycine | 14,3 (14,4) | 25,3 | 23,2 | 1,1 | 0,9 | 1,4 | 1,1 | 10,0 (9,9) | 28,3 | 25,1 | ||
| Formyl glycine | 48,7 (48,6) | 3,4 | 3,3 | — | traces | 56,7 | 29,8 | 51 (51) | 12,5 | 8,1 | ||
| Alanine | 12,1 (12,1) | 6,3 | 6,0 | — | traces | 2,2 | 1,4 | 7,1 (7,2) | 9,8 | 9,0 | ||
| Urea | 0,9 (0,9) | 0,5 | — | 1,0 | 1,1 | 0,5 | — | — | — | — | ||
| Guanidine | 50,1 (50,1) | 33,4 | 28,7 | 6,5 | 64,6 | 37,4 | 35,6 | 58,9 (58,9) | 15,4 | 10,3 | ||
aThe reaction of NH2CHO in the absence of meteorite material afforded purine (3.4 mg) as the only recovered product. Similarly, the reaction of NH2CHO/DW mixture in the absence of meteorite material afforded purine (0.2 mg) besides to traces of formic acid. bReaction performed with untreated meteorite material. A: NH2CHO and meteorites without water. B: NH2CHO and meteorites in the presence of thermal water. C: NH2CHO and meteorites in the presence of seawater. D: NH2CHO and meteorites in the presence of distilled water. A. A. amino acids. The data are the mean values of three experiments with standard deviation less than 0.1%. Products are given in μg per mL of NH2CHO.
Figure 1Prebiotic synthesis of biomolecules from meteorite and water in the presence of formamide.
Products of thermal condensation from NH2CHO/water mixture in the presence of meteorites of carbonaceous chondrite sub-type. Experimental conditions: 1% meteorite, 59% NH2CHO, 40% water, 140 °C, 24 h.
Products of thermal condensation from NH2CHO/water mixtures in the presence of GRO 95551, GRO 95566 and MIL 05024 meteorites.
| | GRO 95551 (C-ung) | GRO 95566 (C2-ung) | MIL 05024 (CO3) | ||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|
| Product | A | B | C | A | B | C | A | B | C | ||
| C2 | Glycolic | — | — | — | — | — | — | 0,5 | 0,5 | — | |
| Oxalic | 6,2 | 5,8 | 5,0 | 2,5 | — | — | — | — | — | ||
| C3 | Pyruvic | 8,3 | 10,9 | 5,9 | 46,9 | 10,9 | 11,0 | 16,7 | 13,6 | 12,4 | |
| Lactic | 6.5 | 2.9 | 2,3 | 6,8 | 9,4 | 2,2 | |||||
| C4 | Succinic | 3,0 | 2,5 | 1,4 | 2.9 | — | — | 12.9 | 11.5 | 8.3 | |
| Oxaloacetic | — | — | — | 1,4 | 1.5 | — | — | — | — | ||
| Fumaric | 13.3 | 10.2 | 9.8 | — | — | — | — | — | — | ||
| C5 | Ketoglutaric | 6,8 | 1,2 | — | — | — | — | — | — | — | |
| Citric | — | — | — | 4,3 | 3,8 | 0,3 | — | — | — | ||
| C16 | Palmitic | 25,3 | 10,2 | 10,0 | 35,9 | 39,2 | 32,0 | 19,4 | 18.3 | 13.6 | |
| Stearic | 19,7 | 15,6 | 12,3 | 24,6 | 33,6 | 29,1 | 37,7 | 26,3 | 31,7 | ||
| Uracil | — | — | — | 6,0 | 0,2 | 0,2 | — | — | — | ||
| Adenine | 3,1 | 0,7 | 0,8 | 1,3 | 0,4 | 0,1 | — | — | — | ||
| Guanine | 1.4 | 1.2 | 1,2 | 1,7 | 3,5 | 1,1 | 5,0 | 2,3 | 1,8 | ||
| Hypoxanthine | 4,9 | 3.6 | 2,2 | 4,6 | 3,7 | 2.9 | 2,2 | 1,7 | 1,1 | ||
| Isocytosine | — | — | — | 3,3 | 2,1 | 1,8 | — | — | — | ||
| 2,6-Diaminopurine | 7,1 | 3,6 | 2,1 | 8,3 | — | — | — | — | — | ||
| 4 (3 H)-pyrimidinone | 1,3 | 9,5 | — | 3,8 | 4,2 | 2,4 | 4.3 | 3,4 | 2,1 | ||
| Uracil 5-carboxylic ac. | 5,2 | — | — | 13,6 | — | — | — | — | — | ||
| 2,4-diamino-6-hydroxypyrimidine | 32,5 | 2,7 | 2,8 | 12,4 | 8,9 | 6,6 | — | — | — | ||
| Glycine | 3.3 | 2.2 | 2.0 | 5.9 | 3,3 | 2,2 | 3,7 | 3,1 | 2.8 | ||
| Formyl glycine | 6.5 | 6.0 | 5.3 | 1,1 | 4,2 | 3.1 | 6,6 | 6.9 | 5,7 | ||
| Alanine | 4,1 | 3,7 | 3,5 | 6,2 | 3,2 | 1,8 | 3,4 | 3,2 | 3,0 | ||
| Urea | — | — | — | 2,0 | — | — | 0,6 | 0,3 | 0,3 | ||
| Guanidine | 85,3 | 55,9 | 24,7 | 2,8 | — | — | 6,6 | 5,9 | — | ||
A: NH2CHO and meteorites without water. B: NH2CHO and meteorites in the presence of thermal water. C: NH2CHO and meteorites in the presence of sea water. A. A. Amino acids. The data are the mean values of three experiments with standard deviation less than 0.1%. Products are given in μg (per mL of NH2CHO).