Experimental Test of L- and D-Amino Acid Binding to L- and D-Codons Suggests that Homochirality and Codon Directionality Emerged with the Genetic Code
暂无分享,去创建一个
[1] M. Perbandt,et al. First experimental evidence for the preferential stabilization of the natural D- over the nonnatural L-configuration in nucleic acids. , 2007, RNA.
[2] J L Bada,et al. Prebiotic synthesis of adenine and amino acids under Europa-like conditions. , 2000, Icarus.
[3] R. White. Hydrolytic stability of biomolecules at high temperatures and its implication for life at 250 degrees C. , 1984, Nature.
[4] R. Fasel,et al. Amplification of chirality in two-dimensional enantiomorphous lattices , 2006, Nature.
[5] Bonner Wa. Homochirality and life. , 1998 .
[6] H. Tajmir-Riahi,et al. Structural characterization of cationic lipid–tRNA complexes , 2009, Nucleic acids research.
[7] Protein replication by amino acid pairing. , 1983, Journal of theoretical biology.
[8] A. Jorissen,et al. Asymmetric Photoreactions as the Origin of Biomolecular Homochirality: A Critical Review , 2002, Origins of life and evolution of the biosphere.
[9] Volker A. Erdmann,et al. Mirror-design of L-oligonucleotide ligands binding to L-arginine , 1996, Nature Biotechnology.
[10] Robert Root-Bernstein,et al. Simultaneous origin of homochirality, the genetic code and its directionality. , 2007, BioEssays : news and reviews in molecular, cellular and developmental biology.
[11] S. Miller. A production of amino acids under possible primitive earth conditions. , 1953, Science.
[12] G. M. Visser,et al. Chiral selection in poly(C)-directed synthesis of oligo(G) , 1984, Nature.
[13] G. S. Kumar,et al. Self-structure induction in single stranded poly(A) by small molecules: Studies on DNA intercalators, partial intercalators and groove binding molecules. , 2008, Archives of biochemistry and biophysics.
[14] A. Weber. Aqueous Synthesis of Peptide Thioesters from Amino Acids and a Thiol Using 1,1′-Carbonyldiimidazole , 2005, Origins of Life and Evolution of Biospheres.
[15] Michael Yarus,et al. RNA Affinity for Molecular L-Histidine; Genetic Code Origins , 2005, Journal of Molecular Evolution.
[16] R. Knight,et al. Origins of the genetic code: the escaped triplet theory. , 2005, Annual review of biochemistry.
[17] P. Schimmel,et al. Chiral-selective aminoacylation of an RNA minihelix: Mechanistic features and chiral suppression , 2006, Proceedings of the National Academy of Sciences.
[18] J. Bada,et al. Prebiotic Soup--Revisiting the Miller Experiment , 2003, Science.
[19] J. Bada,et al. Some Like It Hot, But Not the First Biomolecules , 2002, Science.
[20] Juan R. Granja,et al. A self-replicating peptide , 1996, Nature.
[21] G. S. Kumar,et al. Binding of protoberberine alkaloid coralyne with double stranded poly(A): a biophysical study. , 2008, Molecular bioSystems.
[22] V. Erdmann,et al. Mirror-image RNA that binds D-adenosine , 1996, Nature Biotechnology.
[23] M. K. Hobish,et al. Direct interaction between amino acids and nucleotides as a possible physicochemical basis for the origin of the genetic code. , 1995, Advances in space research : the official journal of the Committee on Space Research.
[24] I. Majerfeld,et al. A diminutive and specific RNA binding site for L-tryptophan , 2005, Nucleic acids research.
[25] Yufen Zhao,et al. A new theoretical model for the origin of amino acid homochirality , 2007, Science in China Series C: Life Sciences.
[26] D Grafstein,et al. Stereochemical origins of the genetic code. , 1983, Journal of theoretical biology.
[27] Hiroshi Iwamura,et al. Thermodynamic control of asymmetric amplification in amino acid catalysis , 2006, Nature.
[28] M. Yarus,et al. A More Complex Isoleucine Aptamer with a Cognate Triplet* , 2005, Journal of Biological Chemistry.
[29] P. Dunnill,et al. Triplet Nucleotide–Amino-acid Pairing; a Stereo-chemical Basis for the Division between Protein and Non-protein Amino-acids , 1966, Nature.
[30] A. Brack,et al. Enantiomer enrichment in early peptides , 1981, Origins of life.
[31] K. J. Koch,et al. Chiral transmission between amino acids: chirally selective amino acid substitution in the serine octamer as a possible step in homochirogenesis. , 2002, Angewandte Chemie.
[32] RNA‐directed amino acid homochirality , 1998 .
[33] M. Gershwin,et al. The Origin of Life and the Left-Handed Amino-Acid Excess: The Furthest Heavens and the Deepest Seas? , 2006, Experimental biology and medicine.
[34] W. Bonner,et al. Homochirality and life. , 1998, EXS.
[35] C. Woese,et al. Evidence for the interaction of nucleotides with immobilized amino-acids and its significance for the origin of the genetic code. , 1971, Nature: New biology.
[36] G. Fan,et al. Spectroscopic Studies on the Binding of a New Quinolone Antibacterial Agent: Sinafloxacin to DNA , 2009, Analytical sciences : the international journal of the Japan Society for Analytical Chemistry.
[37] RNA-directed amino acid homochirality. , 1998, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[38] R. Root-Bernstein,et al. Glucose binds to the insulin receptor affecting the mutual affinity of insulin and its receptor , 2009, Cellular and Molecular Life Sciences.
[39] R. Root-Bernstein,et al. Amino acid pairing. , 1982, Journal of theoretical biology.
[40] H. Tajmir-Riahi,et al. RNA binding to antioxidant flavonoids. , 2009, Journal of photochemistry and photobiology. B, Biology.
[41] A. Brack,et al. β-structures of polypeptides with L- and D-residues , 1980, Journal of Molecular Evolution.
[42] R S Root-Bernstein. On the origin of the genetic code. , 1982, Journal of theoretical biology.
[43] N. Hud,et al. Addressing the Problems of Base Pairing and Strand Cyclization in Template‐Directed Synthesis , 2007, Chemistry & biodiversity.
[44] E. Szathmáry,et al. The origin of the genetic code: amino acids as cofactors in an RNA world. , 1999, Trends in genetics : TIG.
[45] Zbigniew Stojek,et al. Electroanalytical and spectroscopic procedures for examination of interactions between double stranded DNA and intercalating drugs , 2007, Analytical and bioanalytical chemistry.
[46] Robert Scott Root-Bernstein,et al. Selective chirility and the origins of life , 1982 .
[47] M Yarus,et al. RNA-ligand chemistry: a testable source for the genetic code. , 2000, RNA.
[48] G. Nelsestuen. Amino acid-directed nucleic acid synthesis. A possible mechanism in the origin of life. , 1978, Journal of molecular evolution.
[49] Stanley L. Miller,et al. Prebiotic synthesis in atmospheres containing CH4, CO, and CO2 , 1983, Journal of Molecular Evolution.
[50] H. Seligmann,et al. Chemical interactions between amino acid and RNA: multiplicity of the levels of specificity explains origin of the genetic code , 2002, Naturwissenschaften.
[51] A. Profy,et al. Stereoselective aminoacylation of a dinucleoside monophosphate by the imidazolides ofDl-alanine and N-(tert-butoxycarbonyl)-Dl-alanine , 2005, Journal of Molecular Evolution.
[52] Paul Schimmel,et al. Chiral-Selective Aminoacylation of an RNA Minihelix , 2004, Science.
[53] Sanjay Tyagi,et al. Nonrandomness in prebiotic peptide synthesis , 1990, Journal of Molecular Evolution.
[54] G. W. Walker. Nucleotide-binding site data and the origin of the genetic code. , 1977, Bio Systems.
[55] R. Micura,et al. Pyranosyl-RNA: Chiroselective Self-Assembly of Base Sequences by Ligative Oligomerization of Tetranucleotide-2′,3′-cyclophosphates , 1997 .
[56] M Yarus,et al. A specific amino acid binding site composed of RNA. , 1988, Science.
[57] L E Orgel,et al. Oligoaminonucleoside phosphoramidates. Oligomerization of dimers of 3'-amino-3'-deoxy-nucleotides (GC and CG) in aqueous solution. , 1987, Nucleic acids research.
[58] G. Nelsestuen,et al. Amino acid-directed nucleic acid synthesis , 1978, Journal of Molecular Evolution.
[59] A. Kornberg. For the Love of Enzymes: The Odyssey of a Biochemist , 1989 .
[60] R. Root-Bernstein,et al. Ascorbate enhancement of H1 histamine receptor sensitivity coincides with ascorbate oxidation inhibition by histamine receptors. , 2006, American journal of physiology. Cell physiology.