| Literature DB >> 30658501 |
Albert Rimola1, Mariona Sodupe2, Piero Ugliengo3.
Abstract
There is aEntities:
Keywords: early earth, density functional theory, origin of life; mineral surfaces; prebiotic chemistry; surface modelling; theoretical chemistry
Year: 2019 PMID: 30658501 PMCID: PMC6463156 DOI: 10.3390/life9010010
Source DB: PubMed Journal: Life (Basel) ISSN: 2075-1729
Figure 1Generic unit cell (including the lattice parameters of , , and cell vectors and α, β, and γ cell angles) and the periodic system generated by applying the translation symmetry onto the unit cell.
Figure 2Surface models adopting periodic and cluster approaches. Periodic slab models for the (100) pyrite FeS2 surface (A), α-quartz hydroxylated (010) surface (B), montmorillonite clay (C), and anatase (101) TiO2 surface (D). The unit cell along one direction is shown in blue. Cluster models for surfaces of (Ni,Fe)S vioralite (E), silica (F), the octahedral sheet of kaolinite (G), and an acidic aluminosilicate (H). For this latter structure, the atoms represented in balls belong to the high-level zone while the atoms in sticks to the low-level zone in Our Own N-layered Integrated Molecular Orbital and Molecular Mechanics (ONIOM) calculations.
Report of calculated basis set superposition error (BSSE)-corrected adsorption energies (ΔECads, in kcal mol−1) for formamide interacting with octahedral and tetrahedral dickite and kaolinite mineral fragments.
| Surface | Sheet | Level of Theory | ΔECads | Ref. |
|---|---|---|---|---|
| Dickite | Octahedral–adsorption | B3LYP/3-21G(d) | −14.5 | [ |
| Octahedral–intercalation | B3LYP/3-21G(d) | −20.2 | [ | |
| Kaolinite | Octahedral | M05-2X/6-31G(d) | −14.8 | [ |
| Tetrahedral | M05-2X/6-31G(d) | −13.7 | [ | |
| Octahedral–water | M05-2X/6-31G(d) | −9.2 | [ | |
| Tetrahedral–water | M05-2X/6-31G(d) | −5.9 | [ | |
| Na+-kaolinite | Octahedral | M05-2X/6-31G(d) | −108.2 | [ |
| Tetrahedral | M05-2X/6-31G(d) | −20.3 | [ | |
| Octahedral–water | M05-2X/6-31G(d) | −21.7 | [ | |
| Tetrahedral–water | M05-2X/6-31G(d) | −17.8 | [ |
Figure 3Most stable adducts for formamide interacting with cluster models of the octahedral sheet of kaolinite. (A) non-substituted and non-hydrated, (B) non-substituted and hydrated, (C) substituted and non-hydrated, and (D) substituted and hydrated. Adapted from [119].
Report of calculated BSSE-corrected adsorption energies (ΔECads, in kcal mol−1) for uracil and thymine interacting with octahedral and tetrahedral dickite [122] and Na+-kaolinite [123] mineral fragments.
| Surface | Sheet | Molecule | Level of Theory | ΔECads |
|---|---|---|---|---|
| Dickite | Octahedral | Uracil | B3LYP/6-31G(d) | −30.3 |
| Dickite | Tetrahedral | Uracil | B3LYP/6-31G(d) | −3.6 |
| Dickite | Octahedral | Thymine | B3LYP/6-31G(d) | −21.1 |
| Dickite | Tetrahedral | Thymine | B3LYP/6-31G(d) | −1.4 |
| Dickite | Octahedral–water | Uracil | B3LYP/6-31G(d) | −47.8 |
| Dickite | Tetrahedral–water | Uracil | B3LYP/6-31G(d) | −8.6 |
| Dickite | Octahedral–water | Thymine | B3LYP/6-31G(d) | -45.7 |
| Dickite | Tetrahedral–water | Thymine | B3LYP/6-31G(d) | −8.2 |
| Na+-kaolinite | Octahedral | Uracil | M05-2X/6-31G(d)a | −46.1 |
| Na+-kaolinite | Tetrahedral | Uracil | M05-2X/6-31G(d)a | −31.0 |
| Na+-kaolinite | Octahedral | Thymine | M05-2X/6-31G(d)a | −44.4 |
| Na+-kaolinite | Tetrahedral | Thymine | M05-2X/6-31G(d)a | −29.9 |
| Na+-kaolinite | Octahedral–water | Uracil | M05-2X/6-31G(d)a | −43.7 |
| Na+-kaolinite | Tetrahedral–water | Uracil | M05-2X/6-31G(d)a | −28.5 |
| Na+-kaolinite | Octahedral–water | Thymine | M05-2X/6-31G(d)a | −43.4 |
| Na+-kaolinite | Tetrahedral–water | Thymine | M05-2X/6-31G(d)a | −27.0 |
Figure 4Most stable adducts of uracil interacting with the dickite clay through the tetrahedral (A) and octahedral (B) sheets and with Na+-kaolinite through non-hydrated tetrahedral (C) and octahedral (D) sheets and in the presence of one water molecule ((E,F), respectively). Adapted from [122] and [123].
Figure 5Most stable adducts of guanine interacting with Na+-montmorillonite through the Na+-free side in non-hydrated conditions in a perpendicular (A) and parallel (B) way, through the Na+-containing side in non-hydrated conditions adopting cation–π/ring (C), cation–π/displaced (D), and cation–heteroatom interactions (adapted from [124]). Representative structures for cytosine interacting with Na+-montmorillonite in hydrated conditions ((F,G), adapted from [125]). The most stable adduct of guanine interacting with an acidic external surface of montmorillonite ((H), adapted from [126]).
Report of calculated adsorption energies (in kcal mol−1) for the interaction of nucleobases with Na+-montmorollinite [124] and H+-montmorollinite [126]. Perpendicular and parallel adsorptions with respect to the external surface are indicated as ┴ and ║, respectively.
| External Surface | Nucleobase | Adsorption Type | ΔEads |
|---|---|---|---|
| Na+-free side | Adenine | ┴ | −3.7 |
| ║ | −10.8 | ||
| Cytosine | ┴ | −6.6 | |
| ║ | −9.1 | ||
| Guanine | ┴ | −11.3 | |
| ║ | −10.9 | ||
| Thymine | ┴ | −7.3 | |
| ║ | −10.7 | ||
| Uracil | ┴ | −5.7 | |
| ║ | −8.5 | ||
| Na+-containing side | Adenine | Cation–π/ring | −11.6 |
| Cation–π/displaced | −17.0 | ||
| Cation–heteroatom | −20.2 | ||
| Cytosine | Cation–π/ring | −10.2 | |
| Cation–π/displaced | −26.6 | ||
| Cation–heteroatom | −27.0 | ||
| Guanine | Cation–π/ring | −13.1 | |
| Cation–π/displaced | −26.1 | ||
| Cation-heteroatom | −27.6 | ||
| Thymine | Cation–π/ring | −7.6 | |
| Cation–π/displaced | −21.7 | ||
| Cation–heteroatom | −19.1 | ||
| Uracil | Cation–π/ring | −5.7 | |
| Cation–π/displaced | −21.2 | ||
| Cation–heteroatom | −18.8 | ||
| H+-montmorillonite | Adenine | ║ on tetrahedral substituted | −37.7 |
| ║ on octahedral substituted | −49.1 | ||
| ┴ on tetrahedral substituted | −39.0 | ||
| ┴ on octahedral substituted | −49.4 | ||
| Guanine | ║ on tetrahedral substituted | −39.8 | |
| ║ on octahedral substituted | −48.4 | ||
| ┴ on tetrahedral substituted | −40.7 | ||
| ┴ on octahedral substituted | −50.0 | ||
| Cytosine | ║ on tetrahedral substituted | −42.4 | |
| ║ on octahedral substituted | −44.0 | ||
| ┴ on tetrahedral substituted | −32.3 | ||
| ┴ on octahedral substituted | −41.8 |
Figure 6PBE-D2/PW chemical reaction network for the NO3− → NH3 conversion on the pyrite surface under hot-pressurized conditions. Red arrows refer to oxygen transfers, while blue arrows to hydrogen transfers. Activation free energies are in kcal/mol. Blue values refer to barriers obtained on perfect pyrite surface, whereas red values correspond to the defective surface. The representative snapshots of the reactant, intermediate, and product species are also shown. Adapted from [139].
Figure 7(A,B) Stable adducts for the adsorption of glycine on a sulphur vacancy-defective (100) FeS2 surface in hot-pressurized water conditions at the PBE/PW level. Adapted from [142]. (C): Peptide synthesis cycle via activation of glycine into N-carboxyanhydride (NCA) and the subsequent condensation reaction. Hydrolysis of the peptide form was also considered. Calculated free energy barriers are reported in units of kBT for the sake of comparison between the three conditions considered: ambient bulk water (blue); pyrite-free hot-pressurized water (green); and pyrite-interfacial hot-pressurized water (red). Adapted from [143].
Report of calculated adsorption energies (ΔEads, in kcal mol−1) for the interaction of amino acids with TiO2 surfaces. The different amino acid states have been considered: deprotonated, zwitterionic, and canonical. GTO: Gaussian-type orbital.
| Surface | Amino Acid | Amino Acid State | Method | ΔEads | Ref. |
|---|---|---|---|---|---|
| Rutile (110) | Glycine | Deprotonated | PW91/PWs | −48.5 | [ |
| Glycine | Zwitterionic | PW91/PWs | −47.1 | [ | |
| Glycine | Deprotonated | PBE/PWs | −31.3 | [ | |
| Glycine | Zwitterionic | PBE/PWs | −29.2 | [ | |
| Proline | Deprotonated | PBE/PWs | −30.6 | [ | |
| Proline | Zwitterionic | PBE/PWs | −26.1 | [ | |
| Cysteine | Deprotonated | PBE/PWs | −33.9 | [ | |
| Cysteine | Zwitterionic | PBE/PWs | −31.1 | [ | |
| Anatase (101) | Glycine | Deprotonated | PBE0/GTO | −25.6 | [ |
| Glycine | Zwitterionic | PBE0/GTO | −17.6 | [ | |
| Glycine | Canonical | PBE0/GTO | −26.7 | [ | |
| Glycine | Deprotonated | PBE/PWs | −25.9 | [ | |
| Glycine | Zwitterionic | PBE/PWs | −24.0 | [ | |
| Glycine | Canonical | PBE/PWs | −23.4 | [ |
Figure 8Summary of the most stable adducts formed for glycine adsorption on the anatase (101) surface. (A–C) are the canonical, deprotonated and zwitterionic forms found in [140], while (D–F) are those found in [141].
Figure 9Transition state structures for the peptide bond formation between two glycine molecules: (A) uncatalyzed gas-phase process; (B) in the presence of the anatase (101) surface; (C,D) in the presence of the anatase (101) surface assisted by one and two water molecules, respectively; and (E) in the presence of the anatase (101) surface assisted by a third glycine molecule. Adapted from [172].
Figure 10(A) Stationary points involved in the formation of the surface mixed anhydride (SMA) group from reaction of one glycine molecule (Gly) with a S3R ring. (B) Stationary points involved in the formation of the peptide glycylglycine (GlyGly) from reaction of SMA with a second Gly. Units of the relative free energies at 298 K are in kcal mol−1. (A,B) are adapted from [183]. (C) Optimized cluster model exhibiting the weakly interacting SiOH groups (left), the reactant structure for the formation of amide in which the canonical and ion pairs are shown (centre), and the optimized transition state for the dehydration step, which is initiated by a H-transfer from the CH3NH3+. Adapted from [58].
Figure 11Different adsorption modes of glycine on the (100) forsterite (Mg2SiO4) surface in: dry conditions ((A,B), adapted from [188]), in the presence of a pure H2O layer ((C,D), adapted from [189]), and in the presence of a H2O/NH3 mixture ((E,F), adapted from [190]).
Figure 12Transition state structures localized for: (A) the amide bond formation between HCOOH and NH3 under the synergy of AlF3 (Lewis acidic site) and HF (Brønsted acidic site), adapted from [173]; (B) the peptide bond formation between two glycine molecules on an acidic feldspar-derivative surface model, adapted from [175]; and (C): hydrolysis of the peptide bond on an acidic feldspar-derivative surface model assisted by three H2O molecules, adapted from [176].
Summary of results for clays and iron sulphide studies. Quantum mechanical adopted methods (QM method), structural approach (SA), computed quantities (Obs.) and internal references (Reference) of the considered cases. Captions: S: structure; AE: adsorption energy; RE: reaction energy; FRE: free energy of reaction; V: vibrational spectrum; FA: formamide; A: adenine; C: cytosine; G: guanine; T: thymine; U: uracil; UD: uridine; UPM: uridine-5′-monophosphate; AMP: adenosine-5′-monophosphate. PBC: periodic boundary conditions. CLU: cluster.
| CLAYS ( | QM Method | SA | Obs. | Reference |
|---|---|---|---|---|
| Dickite/FA (adsorption/intercalation) | B3LYP/3-21G(d) | CLU | S, E |
|
| Dickite/U; Dickite/U-H2O | B3LYP/6-31G(d) | CLU | S, E | |
| Dickite/T; Dickite/T-H2O | B3LYP/6-31G(d) | CLU | S, E |
|
| Na+-Kaolinite/FA | MO5-2X/6-31G(d) | CLU | S, E |
|
| Na+-Kaolinite/U; Na+-Kaolinite/U-H2O | MO5-2X/6-31G(d) | CLU | S, E | |
| Kaolinite/FA; Kaolinite/FA/H2O | M05-2X/6-31G(d) | CLU | S, E, V | |
| Kaolinite/N-methylacetamide | BLYP/SVP + sp | CLU | S, E, V | Ref. [ |
| Na+-free side: Montmorillonite/A; C; G; T; U | PBE-D2/PWs | PBC | S, E | |
| K+-Montmorillonite/GLY | PBE-D2/PWs-Num | PBC | S, E | Ref. [ |
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| Violarite (Fe,Ni)S + | B3LYP/TZVP | CLU | S, RE | |
| FeS2-defective (100)+NO3−→NH3 | AIMD/PBE-D2/PWs + GTO | PBC | S, FRE |
|
| FeS2 (100)/GLY | AIMD/PBE/PWs | PBC | S, FRE | |
| FeS2-defective (100) + GLY + COS→(GLY)n + H2S | AIMD/PBE/PWs | PBC | S, FRE | |
| FeS+nGLY→(GLY)n | AIMD/PBE/PWs | PBC | S, FRE | Ref. [ |
Summary of results for titanium dioxide and silica and silicates studies. Quantum mechanical adopted methods (QM method), structural approach (SA), computed quantities (Obs.) and internal references (Reference) of the considered cases. Captions: S: structure; AE: adsorption energy; RE: reaction energy; FRE: free energy of reaction; V: vibrational spectrum; FA: formamide; A: adenine; C: cytosine; G: guanine; T: thymine; U: uracil; UD: uridine; UPM: uridine-5′-monophosphate; AMP: adenosine-5′-monophosphate. PBC: periodic boundary conditions. CLU: cluster.
| TITANIUM DIOXIDE ( | QM Method | SA | Obs. | Reference |
|---|---|---|---|---|
| Rutile (110)/GLY | PW91/PWs | PBC | S, E |
|
| Rutile (110)/GLY/CYS/PRO | PBE/PWs | PBC | S, E |
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| Rutile(OH) (100)-(110)-H2O/GLY/MET/SER/CYS | AIMD/PWs | PBC | S, E | Ref. [ |
| Anatase (101)/GLY | PBE/PWs | PBC | S, E | |
| Anatase (101)/LEU/MET/PHE/SER/CYS/GLU/GLN/LYS/HIS/ARG | PBE/PWs | PBC | S, E | Ref. [ |
| Anatase (101)/GLY | PBE0/GTO, PBE/PWs | PBC | S, E | |
| Anatase (101)/2GLY→GLY2 | PBE/PWs | PBC | S, E |
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| Anatase-O-defective (001)/2H2CO→HOCH2CHO | PBE/PW | PBC | S, E | Ref. [ |
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| a-SiO2/FA-(FA)2 | PBE-D2/GTO | PBC | S, E, V | Ref. [ |
| α-quartz (100)/aromatic N-containing molecules | DFT/MP2/GTO | CLU | S, E | Ref. [ |
| a-SiO2(defective)/Gly→surface mixed anydride | B3LYP/GTO | CLU | S, RE, V | |
| a-SiO2/CH3NH2+HCOOH→GLY+H2O | B3LYP/GTO | CLU | S, RE, V | |
| Mg2SiO4(100)/GLY/H2O/NH3 | PBE/PWs | PBC | S, E |
|
| Mg2SiO4(101)/14 organic compounds | B3LYP-D2/GTO | PBC | S, E | Ref. [ |
| Mg(OH)2 (110)/U/UD/UPM/AMP | B3LYP-D2/GTO | PBC | S, E | Ref. [ |
| AlF3/HF+NH3+HCOOH→GLY+H2O | B3LYP/GTO | CLU | S, RE | |
| Feldspar (SiOHAl)+2GLY→GLY2+H2O | ONIOM(B3LYP//MNDO) | CLU | S, RE | |
| Feldspar (SiOHAl)-GLY-GLY+3H2O | ONIOM(B3LYP//MNDO) | CLU | S, RE | |
| Faujasite+2GLY→GLY2+H2O | M08-HX/GTO | CLU | S, RE | Ref. [ |