Prebiotic synthesis of simple sugars by photoredox systems chemistry (original) (raw)
References
Woese, C. The Genetic Code 179–195 (Harper & Row, 1967).
Crick, F. H. C. The origin of the genetic code. J. Mol. Biol.38, 367–379 (1968). ArticleCAS Google Scholar
Orgel, L. E. Evolution of the genetic apparatus. J. Mol. Biol.38, 381–393 (1968). ArticleCAS Google Scholar
Powner, M. W., Gerland, B. & Sutherland, J. D. Synthesis of activated pyrimidine ribonucleotides in prebiotically plausible conditions. Nature459, 239–242 (2009). CAS Google Scholar
Szostak, J. W. Systems chemistry on early Earth. Nature459, 171–172 (2009). ArticleCAS Google Scholar
Butlerow, A. Bildung einer zuckerartigen substanz durch synthese. Liebigs Ann. Chem.120, 295–298 (1861). Article Google Scholar
Miller, S. L. & Orgel, L. E. The Origins of Life on the Earth 109–112 (Prentice-Hall, 1974).
Ricardo, A., Carrigan, M. A., Olcott, A. N. & Benner, S. A. Borate minerals stabilize ribose. Science303, 196 (2004). ArticleCAS Google Scholar
Breslow, R. & Cheng, Z.-L. On the origin of terrestrial homochirality for nucleosides and amino acids. Proc. Natl Acad. Sci. USA106, 9144–9146 (2009). ArticleCAS Google Scholar
Seebach, D. Methods of reactivity umpolung. Angew. Chem. Int. Ed.18, 239–258 (1979). Article Google Scholar
Socha, R. F., Weiss, A. H. & Sakharov, M. M. Homogeneously catalyzed condensation of formaldehyde to carbohydrates: VII. An overall formose reaction model. J. Catal.67, 207–217 (1981). ArticleCAS Google Scholar
Decker, P., Schweer, H. & Pohlmann, R. Bioids: X. Identification of formose sugars, presumable prebiotic metabolites, using capillary gas chromatography/gas chromatography–mass spectrometry of _n_-butoxime trifluoroacetates on OV-225 J. Chromatogr. A244, 281–291 (1982). ArticleCAS Google Scholar
Shapiro, R. Prebiotic ribose synthesis: a critical analysis. Orig. Life Evol. Biosphere18, 71–85 (1988). ArticleCAS Google Scholar
Eschenmoser, A. Etiology of potentially primordial biomolecular structures: from vitamin B12 to the nucleic acids and an inquiry into the chemistry of life's origin: a retrospective. Angew. Chem. Int. Ed.50, 12412–12472 (2011). ArticleCAS Google Scholar
Fischer, E. Reduction von säuren der Zuckergruppe. Ber. Dtsch Chem. Ges.22, 2204–2205 (1889). ArticleCAS Google Scholar
Morrison, J. D. & Mosher, H. S. Asymmetric Organic Reactions 133–141 (Prentice-Hall, 1971).
Serianni, A. S., Clark, E. L. & Barker, R. Carbon-13-enriched carbohydrates. Preparation of erythrose, threose, glyceraldehyde, and glycolaldehyde with 13C-enrichment in various carbon atoms. Carbohydr. Res.72, 79–91 (1979). ArticleCAS Google Scholar
Schlesinger, G. & Miller, S. L. Equilibrium and kinetics of glyconitrile formation in aqueous solution. J. Am. Chem. Soc.95, 3729–3735 (1973). ArticleCAS Google Scholar
Eschenmoser, A. & Loewenthal, E. Chemistry of potentially prebiological natural products. Chem. Soc. Rev.21, 1–16 (1992). ArticleCAS Google Scholar
Ferris, J. P. & Hagan, W. J. Jr. HCN and chemical evolution: the possible role of cyano compounds in prebiotic synthesis. Tetrahedron40, 1093–1120 (1984). ArticleCAS Google Scholar
Donn, B. Comets: chemistry and chemical evolution. J. Mol. Evol.18, 157–160 (1982). ArticleCAS Google Scholar
Tokunaga, A. T., Beck, S. C., Geballe, T. R., Lacey, J. H. & Serabyn, E. The detection of HCN on Jupiter. Icarus48, 283–289 (1981). ArticleCAS Google Scholar
Hanel R. et al. Infrared observations of the Saturnian system from Voyager 1. Science212, 192–200 (1981). ArticleCAS Google Scholar
Snyder, L. E. & Buhl, D. Observations of radio emission from interstellar hydrogen cyanide. Astrophys. J. Lett.163, L47–L52 (1971). ArticleCAS Google Scholar
Strecker, A. Ueber einen neuen aus aldehyd-ammoniak und blausäure entstehenden Körpe. Liebigs Ann. Chem.91, 349–351 (1854). Article Google Scholar
Oró, J. Synthesis of adenine from hydrogen cyanide. Biochem. Biophys. Res. Commun.2, 407–412 (1960). Article Google Scholar
Niketić, V., Draganić, Z. D., Nešković, S., Jovanović, S. & Draganić, I. G. Radiolysis of aqueous solutions of hydrogen cyanide (pH ~ 6): compounds of interest in chemical evolution studies. J. Mol. Evol.19, 184–191 (1983). Article Google Scholar
Hartman, H. Speculations on the origin and evolution of metabolism. J. Mol. Evol.4, 359–370 (1975). ArticleCAS Google Scholar
Adamson, A. W. et al. Photochemistry of transition metal coordination compounds. Chem. Rev.68, 541–585 (1968). ArticleCAS Google Scholar
Orgel L. E. in The Origin of Life and Evolutionary Biochemistry (eds Dose, K., Fox, S. W., Deborin, G. A. & Pavlovskaya, T. E.) 369–371 (Plenum, 1974).
Arrhenius, T., Arrhenius, G. & Paplawsky, W. Archean geochemistry of formaldehyde and cyanide and the oligomerization of cyanohydrin. Orig. Life Evol. Biosphere24, 1–17 (1994). ArticleCAS Google Scholar
Keefe, A. D. & Miller, S. L. Was ferrocyanide a prebiotic reagent? Orig. Life Evol. Biosphere26, 111–129 (1996). ArticleCAS Google Scholar
Horváth, A., Papp, S. & Décsy, Z. Formation of aquated electrons and the individual quantum yields for photoactive species in the Cu(I)–KCN–H2O system. J. Photochem.24, 331–339 (1984). Article Google Scholar
Katagiri, A., Yoshimura, S. & Yoshizawa, S. Formation constant of the tetracyanocuprate(II) ion and the mechanism of its decomposition. Inorg. Chem.20, 4143–4147 (1981). ArticleCAS Google Scholar
Tavernier, D., Van Damme, S., Ricquier, P. & Anteunis, M. J. O. A convenient preparation of _3H-_1,3-oxazol-2-one and its _N-_formyl derivative. Bull. Soc. Chim. Belg.97, 859–865 (1988). ArticleCAS Google Scholar
Kovács, J., Pintér, I., Lendering, U. & Köll, P. Transformation of aldoses into glycosylamine 1,2-(cyclic carbamates) (glyco-oxazolidin-2-ones) by reaction with potassium cyanate. Carbohydr. Res.210, 155–166 (1991). Article Google Scholar
Behar, D. & Fessenden, R. W. An electron spin resonance investigation of the reactions in irradiated aqueous solutions of hydrogen cyanide and the cyanide ion. J. Phys. Chem.76, 3945–3950 (1972). ArticleCAS Google Scholar
Moutou, G. et al. Equilibrium of α-aminoacetonitrile formation from formaldehyde, hydrogen cyanide and ammonia in aqueous solution: industrial and prebiotic significance. J. Phys. Org. Chem.8, 721–730 (1995). ArticleCAS Google Scholar
Wang, Y. L., Lee, H. D., Beach, M. W. & Margerum, D. W. Kinetics of base hydrolysis of cyanogen and 1-cyanoformamide. Inorg. Chem.26, 2444–2449 (1987). ArticleCAS Google Scholar