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B E Eaton

Publications and source records attributed to B E Eaton.

10 recordsLinked to original sources

Cobalt-catalyzed alkyne-nitrile cyclotrimerization to form pyridines in aqueous solution.

A new, water-soluble cobalt(I) catalyst has been used in the aqueous, chemospecific, cyclotrimerization of one nitrile with two alkynes for the synthesis of highly functionalized pyridines. Several different functional groups are well incorporated in this transformation, including unprotected alcohols, ketones, and amines. Double isotopic crossover data, as well as nitrile dependence on the rate of product formation, suggest associative rate-determining coordination of the nitrile.

Alkynes↗

Bimolecular DNA triplexes: duplex extensions show implications for H-form DNA stability.

H-form DNA has recently been shown to be biologically relevant by its involvement in the process of homologous recombination [Kohwi, Y. , and Panchenko, Y. (1993) Genes Dev. 7, 1766-1778]. A bimolecular DNA triple-stranded structure (triplex) is central to the formation of H-form DNA. Understanding the formation and factors governing the stability of such bimolecular triplexes is necessary to fully elucidate the structure/function relationship of H-form DNA. In this study, we extend known information on bimolecular triplexes by examining the effect of a variable CNC base triad (where N = A, C, T, or G) on a 10 base triad triplex that mimics the triplex motif in H-form DNA. We also examine the effect that a duplex extension of four base pairs has on triplex stability and selectivity for the base N. Results from thermal denaturation experiments indicate that the fully complementary triplex is more stable than its duplex counterpart (DeltaTm = 13 degrees C) and is resistant to degradation by bovine spleen phosphodiesterase for at least 24 h at 10 degrees C. A single-base mismatch in the purine strand of the triplex structure is destabilizing (DeltaTm = approximately 20 degrees C), and all structures containing a mismatch were readily degraded by bovine spleen phosphodiesterase. An extension of four duplex base pairs onto the triplex structure affects the stability of the DNA complex and may have implications relevant to H-form DNA.

Animals↗

RNA-catalysed carbon-carbon bond formation.

The 'RNA world' hypothesis, which assumes that the chemical processes that led to the appearance of life were carried out by RNA molecules, has stimulated interest in catalytic reactions involving oligonucleotides such as catalytic RNA (ribozymes). Naturally occurring ribozymes have, for example, been shown to efficiently catalyse the formation and cleavage of nucleic-acid phosphodiester bonds, and this narrow range of RNA-catalysed reactions has been subsequently expanded by in vitro selection methods to include ester and amide bond formation S(N)2 reactions and porphyrin metallations. Carbon-carbon bond formation and the creation of asymmetric centres are both of great importance biochemically, but have not yet been accomplished by RNA catalysis. A widely used reaction that creates two new carbon-carbon bonds and up to four stereo-centres is the Diels-Alder cycloaddition, which occurs between a 1,3-butadiene and an alkene. Here we report the successful application of in vitro selection to isolate pyridine-modified RNA molecules that catalyse a Diels-Alder cycloaddition. We find that the RNA molecules accelerate the reaction rate by a factor of up to 800 relative to the uncatalysed reaction.

Alkenes↗

Post-SELEX combinatorial optimization of aptamers.

In vitro selection techniques provide a means of isolating nucleic acid ligands for binding to particular protein targets. Although most aptamers have quite high affinities for their target proteins, it has been shown that post-SELEX modification can result in further enhancement of binding affinity, as well as other desired properties. This has led to the current development of a more systematic approach to aptamer optimization using a combinatorial screening methodology.

Base Sequence↗

Selection of RNA amide synthases.

BACKGROUND: It is generally accepted that, during evolution, replicating RNA molecules emerged from pools of random polynucleotides. This prebiotic RNA world was followed by an era of RNA-mediated catalysis of amide-bond formation. RNA would thus have provided the machinery responsible for the assembly of peptides and the beginning of the protein world of today. Naturally occurring ribozymes, which catalyze the cleavage or ligation of oligonucleotide phosphodiester bonds, support the idea that RNA could self-replicate. But was RNA constrained to this path and were RNA-acylated carriers required before RNA could catalyze the formation of amide bonds? RESULTS: We have isolated RNA catalysts that are capable of mediating amide-bond synthesis without the need for specifically designed templates to align the substrates, and we have kinetically characterized these catalysts. The rate enhancement observed for these RNA amide synthases exceeds the noncatalyzed amidation rate by a factor of approximately 10(4). In addition, Cu2+ ions caused a change in the affinity of RNA for the substrate rather than being directly involved in amide-bond formation. CONCLUSIONS: The discovery of these new amide synthases shows how functionally modified nucleic acids can facilitate covalent-bond formation without templating. Previously unforeseen RNA-evolution pathways can, therefore, be considered; for example, to guide amide-bond formation, en route to the protein world, it appears that substrate-binding pockets were formed that are analogous to those of protein enzymes.

Amide Synthases↗

Let's get specific: the relationship between specificity and affinity.

The factors that lead to high-affinity binding are a good fit between the surfaces of the two molecules in their ground state and charge complementarity. Exactly the same factors give high specificity for a target. We argue that selection for high-affinity binding automatically leads to highly specific binding. This principle can be used to simplify screening approaches aimed at generating useful drugs.

Animals↗

Ribonucleosides and RNA.

Landmark discoveries such as the autocatalytic cleavage activity of certain RNA molecules, as well as small oligoribonucletide ribozymes and later the in vitro evolution of novel bioactive oligoribonucleotides (SELEX), have created entire new fields of biochemical research. The discovery of SELEX has provided a method for producing high-affinity nucleic acid ligands with high binding specificity to important medicinal targets. Including modified nucleotides into RNA ligands derived from SELEX may yield improved RNA therapeutics. The chemistry of oligoribonucleotides in comparison to oligodeoxyribonucleotides has led to resurgent attention on the role of modified nucleotides in RNA structure and function. Such modifications are also employed to impart stability towards endonuclease degradation on oligoribonucleotides.

Base Sequence↗

Gas-phase pyrolytic formation and dimerization of benzocyclobutenes: Synthesis of [2(4)](1,2,4,5) cyclophane.

Gas-phase pyrolysis of benzocyclobutenes in a nitrogen stream at 450 degrees C is a convenient efficient method for preparing dibenzocyclooctadienes. Application of this method to benzo[1,2;4,5]dicyclobutene gives [2(4)](1,2,4,5)cyclophane directly. However, under the same reaction conditions, 3,6-dimethylbenzo[1,2;4,5]dicyclobutene gives the open [2.2]orthocyclophane derivative, whose structure has been established by x-ray crystallographic analysis of the corresponding iron complex.

Journal Article↗

Synthesis of N,N-dialkylaniline-2'-deoxyuridine conjugates for DNA-mediated electron transfer studies.

Syntheses of two analogs of deoxyuridine with N,N-dialkylaniline chromophores are reported. 5-[3-(N-methylphenylamino)propanoyl]-2'-deoxyuridine (1) and 5-[2-(4-N,N-dimethylaminophenyl)ethyl)]-2'-deoxyuridine (2) are prepared by palladium-mediated coupling. Preparation of 2 was facilitated by in situ transient O4-trimethylsilyl protection during alkynylation which suppressed secondary cyclization of the coupling adduct.

DNA Adducts↗