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V I Lim

Publications and source records attributed to V I Lim.

At least 19 recordsLinked to original sources

Analysis of codon:anticodon interactions within the ribosome provides new insights into codon reading and the genetic code structure.

Although the decoding rules have been largely elucidated, the physical-chemical reasons for the "correctness" of codon:anticodon duplexes have never been clear. In this work, on the basis of the available data, we propose that the correct codon:anticodon duplexes are those whose formation and interaction with the ribosomal decoding center are not accompanied by uncompensated losses of hydrogen and ionic bonds. Other factors such as proofreading, base-base stacking and aminoacyl-tRNA concentration contribute to the efficiency and accuracy of aminoacyl-tRNA selection, and certainly these factors are important; but we suggest that analyses of hydrogen and ionic bonding alone provides a robust first-order approximation of decoding accuracy. Thus our model can simplify predictions about decoding accuracy and error. The model can be refined with data, but is already powerful enough to explain all of the available data on decoding accuracy. Here we predict which duplexes should be considered correct, which duplexes are responsible for virtually all misreading, and we suggest an evolutionary scheme that gave rise to the mixed boxes of the genetic code.

Anticodon↗

Mutual orientation of tRNAs and interactions between the codon-anticodon duplexes within the ribosome: a stereochemical analysis.

Analysis of the available data demonstrated that a codon in the i(th) codon-anticodon duplex should interact with the wobble pair of the i - 1(th) duplex. This interduplex interaction should take place throughout the ribosomal elongation cycle in order to prevent unprogrammed frameshifting. An experimentally observed flexibility of tRNA allows to conserve the interduplex interaction at different mutual orientations of tRNAs, including conventional R and S. Moreover, the tRNA flexibility allows novel mutual orientations of tRNAs in which tRNA molecules, as in conventional R and S orientations, also form the codon-anticodon duplexes, and the CCA-ends are located adjacently. The R and S orientations do not offer any advantages over the novel orientations. Therefore, besides the conventional R and S orientations, the novel orientations should also be considered, i.e. the interpretations of the available experimental data on the mutual orientations of tRNAs should be reconsidered. All mutual orientations of tRNAs that are compatible with the available experimental data are given.

Anticodon↗

Analysis of interactions between the codon-anticodon duplexes within the ribosome: their role in translation.

Computer graphics simulation of interactions between the codon-anticodon duplexes formed by normal elongator tRNAs at the ribosomal A, P and E-sites (the AP and PE interduplex interactions) was made. This demonstrated that only the correct duplexes at the A-site are compatible with the AP interduplex interaction. The selection of synonymous codons and anticodon wobble bases, together with the AP interduplex interaction, prevents frameshifting. In the absence of this interaction the efficiency of the selection falls off sharply. This suggests that the AP interduplex interaction should be retained during translocation and in the post-translocation state, i.e. the PE interduplex interaction that is identical with that of AP should exist to avoid frameshifting. In such a model the P-site duplex provides an indirect linkage between the A and E-site duplexes. The indirect linkage prohibits the simultaneous existence of the A and E-site duplexes. The wobble pairs of the P and E-site duplexes can affect the rate of the A-site occupation via the AP interduplex interaction and the AE interduplex indirect linkage. It is demonstrated that frameshifting can occur from the AP or PE codon-anticodon complex destabilization caused, for example, by small mobility of the wobble pairs, misreading of the codon, unmodified adenine and guanine at tRNA positions 34 (wobble) and 37, respectively. The results obtained can be subjected to direct experimental tests.

Anticodon↗

Analysis of action of the wobble adenine on codon reading within the ribosome.

Computer graphics simulation of the interaction between the codon-anticodon duplexes containing adenine in the first (wobble) position of the anticodons, and bound to the ribosomal A- and P-sites, was made. This demonstrated that widespread use of adenine in the wobble position in anticodons should lead to a low efficiency of ribosomal translation, since the wobble A of the P-site tRNA weakens the codon-dependent binding of aminoacyl-tRNA at the A-site via interduplex interaction. Besides the canonical partner U, the wobble A of aminoacyl-tRNA can recognize A, C, G in the third position of the codon by the formation of the propeller twist in the wobble pairs AA, AC, AG. The conversion of the wobble A into inosine improves its pairing with the codon bases (the pairs IA and IC, unlike AA and AC, should not form the propeller twist leading to the deformation of base-base hydrogen bonds) and should reduce an adverse effect of the P-site wobble adenine on the formation of the A-site duplex. The consequence of the interaction between the ribosomal P- and E-site duplexes has been formulated. According to this the E-site wobble A should enhance the probability of frameshifting. These properties of the wobble A and I could be a reason why A is very rarely observed in the first anticodon position and why evolutionary processes have developed the enzyme which modifies the wobble A to I. The results obtained can be subjected to direct experimental tests.

Adenine↗

Analysis of action of wobble nucleoside modifications on codon-anticodon pairing within the ribosome.

Wobble rules for modified residues in the first anticodon position are derived. All known modifications are considered individually. Stereochemical analysis was made taking into account the interaction between the ribosomal A and P-site bound codon-anticodon duplexes. The wobble base-pair was considered as the right one if its formation did not lead to an uncompensated loss of hydrogen bonds or polar atom-ion bonds. From this requirement it follows that all modifications of U should restrict its translational specificity to purines (with the exception of xo5U, which should decode A, G and U). The restriction is carried out in a unified way: modifications inhibit the large propeller twist resulting from an increase of about 35 degrees in the torsion angle of the anticodon wobble base, interacting with the third codon base via a hydrogen-bonded water molecule. Such a twist is required to avoid a loss of the hydrogen bond of the bonded water molecule. The modifications in S2U, Se2U and Um should weaken their pairing with G, because they deform one of the two hydrogen bonds of the guanine NH2 group. G should be recognized by Se2U better than by S2U for the reason that the hydrogen bond Se...HN is weaker than the hydrogen bond S...HN. Among the modifications of C and G only that in k2C has a pronounced effect on wobble. The nucleoside k2C should pair only with A. The N-2 atom of k2C should be in the pyramidal state. The consequences following from the interduplex interaction are formulated. According to one of them, adenosine in the wobble position of the P-site tRNA should destabilize the A-site duplex. This can serve as an explanation for the fact that adenosine is very rarely observed in the anticodon wobble position.

Adenosine↗

Codon-anticodon pairing. A model for interacting codon-anticodon duplexes located at the ribosomal A- and P-sites.

The interaction between two codon-anticodon duplexes of the ribosomal A- and P-site-bound tRNAs is the key feature of the proposed model. This interaction prohibits non-canonical base pairing at the first and second positions of the codon and controls base pairing at the third position (wobbling rules ensuing from the model are in good accord with those generated from experiments). The model is capable of predicting codon context effects. It follows from the model that modifications of the first anticodon residue of the P-site tRNA can affect the stability of the A-site duplex, and that the translation of a DNA single chain analogue of mRNA should be accompanied by non-canonical base pairing at all three positions of the codon. These predictions of the model can be subjected to experimental tests.

Anticodon↗

The path of a protein chain can be approximated by the conformation dictated by interpeptide ionic bridges.

A stereochemical simulation of the formation of ionic bridges between adjacent peptide groups along the polypeptide chain has been made. Such ionic bridges constrain the amino-acid residues into eight conformations. It is shown that the path of any protein-chain fragment 10-15 residues long can be approximated well by these conformations. This suggests that the conformations dictated by the ionic bridges can be used as blocks in the formation of the spatial protein structure.

Amino Acid Sequence↗

Stereochemical analysis of ribosomal transpeptidation. Conformation of nascent peptide.

Transpeptidation performed by the ribosome is considered as a nucleophilic Sn2 substitution reaction, passing through a tetrahedral intermediate. A stereochemically universal mechanism of the reaction is assumed to exist for all 20 amino acid residues, both in the attacked (donor) and in the attacking (acceptor) substrates. The angles of internal rotation around the bonds of the attacked carbonyl carbon and around the neighbouring bonds in the tetrahedral intermediate, as well as the stereoconfiguration of the intermediate, have been varied. All 54 combinations of the sterically allowed rotational isomers determined by the five torsional angles have been analysed by using Corey-Pauling-Koltun models and by direct calculations permitting the "extreme limits" in interatomic distances and +/- 7 degrees deviations in bond angles. Only one combination, i.e. one unique conformation of the tetrahedral intermediate, is found to be sterically compatible with all 400 possible pairs of the reacting amino acid residues and at the same time to be capable of cleaving into a planar trans-peptide group. The torsion angles phi and psi of this universally allowed intermediate and the peptide product resulting from its cleavage are similar to those in an alpha-helix. It is suggested that the ribosome generates the alpha-helical confirmation at the C-end of the nascent peptide.

Models, Molecular↗