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Biomedical subjects

J Ninio

Publications and source records attributed to J Ninio.

At least 19 recordsLinked to original sources

Connections between translation, transcription and replication error-rates.

The analysis of published data from E coli suggests that in all three processes of translation, transcription, and replication, a minority of errors are produced by sub-classes of error-prone components. These add to the basal level of errors a noise of about 10 to 30%. Each one of the three processes contributes to the noisiness of the two others in a loose manner: a large increase in one error-rate produces a moderate increase in another error-rate. The strongest influence is that of transcription on translation errors. There it is possible that a majority of the misacylation errors are produced during the encounter of a correct amino acyl-tRNA ligase with a mistranscribed tRNA. Extreme mutator mutants are expected to produce a moderate increase in translation errors.

DNA Replication

Transient mutators: a semiquantitative analysis of the influence of translation and transcription errors on mutation rates.

A population of bacteria growing in a nonlimiting medium includes mutator bacteria and transient mutators defined as wild-type bacteria which, due to occasional transcription or translation errors, display a mutator phenotype. A semiquantitative theoretical analysis of the steady-state composition of an Escherichia coli population suggests that true strong genotypic mutators produce about 3 x 10(-3) of the single mutations arising in the population, while transient mutators produce at least 10% of the single mutations and more than 95% of the simultaneous double mutations. Numbers of mismatch repair proteins inherited by the offspring, proportions of lethal mutations and mortality rates are among the main parameters that influence the steady-state composition of the population. These results have implications for the experimental manipulation of mutation rates and the evolutionary fixation of frequent but nearly neutral mutations (e.g., synonymous codon substitutions).

Bacteria

The revised genetic code.

Recent findings on the genetic code are reviewed, including selenocysteine usage, deviations in the assignments of sense and nonsense codons, RNA editing, natural ribosomal frameshifts and non-orthodox codon-anticodon pairings. A multi-stage codon reading process is presented.

Genetic Code

String analysis and energy minimization in the partition of DNA sequences.

Two approaches to the understanding of biological sequences are confronted. While the recognition of particular signals in sequences relies on complex physical interactions, the problem is often analysed in terms of the presence or absence of literal motifs (strings) in the sequence. We present here a test-case for evaluating the potential of this approach. We classify DNA sequences as positive or negative depending on whether they contain a single melted domain in the middle of the sequence, which is a global physical property. Two sets of positive "biological" sequences were generated by a computer simulation of evolutionary divergence along the branches of a phylogenetic tree, under the constraint that each intermediate sequence be positive. These two sets and a set of random positive sequences were subjected to pattern analysis. The observed local patterns were used to construct expert systems to discriminate positive from negative sequences. The experts achieved 79% to 90% success on random positive sequences and up to 99% on the biological sets, while making less than 2% errors on negative sequences. Thus, the global constraints imposed on sequences by a physical process may generate local patterns that are sufficient to predict, with a reasonable probability, the behaviour of the sequences. However, rather large sets of biological sequences are required to generate patterns free of illegitimate constraints. Furthermore, depending upon the initial sequence, the sets of sequences generated on a phylogenetic tree may be amenable or refractory to string analysis, while obeying identical physical constraints. Our study clarifies the relationship between experts' errors on positive and negative sequences, and the contributions of legitimate and illegitimate patterns to these errors. The test-case appears suitable both for further investigations of problems in the theory of sequence evolution and for further testing of pattern analysis techniques.

Base Sequence

Nucleotide excision by E. coli DNA polymerase I in proofreading and non-proofreading modes.

Escherichia coli DNA polymerase I exists in at least two distinct kinetic forms. When it binds to a template, the proofreading activity is usually switched off. As the enzyme progresses along the template, it becomes more and more competent for excision. This phenomenon introduces a link between fidelity and processivity. Processivity is best studied when the chain-length distributions of synthesized polymers are stationary. Even then, however, one cannot avoid multiple initiations on a given template by the same molecule of the enzyme. When synthesis is initiated with primers of lengths 15 or 20, a strange phenomenon is observed. It seems that the polymerase starts by hydrolyzing the primer down to a length of 7-10 nucleotides and only then starts to add nucleotides. It does so in a low-accuracy mode, suggesting that, while the exonuclease is clearly active, it does not contribute to proofreading. The warm-up of the proofreading function is therefore reinterpreted as a switch between two modes of behaviour: a mode 1 of low accuracy in which the 3'----5' exonuclease, while active, is uncoupled from the polymerase and does not contribute to proofreading, and a mode 2 of high accuracy in which the exonuclease is kinetically linked to the polymerase activity.

DNA Polymerase I

Speed and accuracy of 3D interpretation of linear stereograms.

Stereograms belonging to 10 different textural types were constructed. Each stereogram represented five hemi-ellipsoids, either as bumps or hollows (+, -) and elongated either along the horizontal, or the vertical direction (H, V). The ease with which these stereograms could be interpreted was tested on 70 subjects. The two criteria of speed and accuracy were correlated. The main factors contributing to the ease of interpretation, in the case of the +/- character were: (i) diversity in the orientations of the matching stimuli; (ii) other factors reducing matching ambiguity; (iii) the presence of discontinuous elements; and, to a much lesser extent (iv) the presence of monocular cues. The last two factors exerted a stronger influence on the appreciation of the H-V character. Of the four kinds of objects, the H- and V+ hemi-ellipsoids appeared to be the least and the most error-prone ones respectively. The results further suggest that: (i) stereoscopic interpretation does not proceed from small to large disparities; (ii) the edge detectors of the visual cortex, when activated, speed up interpretation, but are easily saturated; (iii) large surfaces are reconstructed by correlation of horizontal rather than vertical patches.

Depth Perception

[A model of localized iconic memory, replicable and associative, using time sharing and 3 neuronal communication modes].

A model is proposed for the functioning of an iconic memory involving several layers of neurones. A small group of neurones in one layer project their terminations over the terminations of a single neurone of the superior layer. According to the communication mode (emission or reception), a neurone in one layer can memorize the state of the terminations of a neurone of the superior layer, or impose on the latter the state of its own terminations. In the comparison mode, an emitting neurone compares its state to another emitting neurone and, in case of sufficient similarity, switches to the reception mode (associative recall). The first layer, corresponding to short-term memory, communicates with the cells involved in the representation of the perceived image. This model makes possible the establishment of a correspondence between a percept and a neurone, the replication of memorized configurations, the restructuration of memory and, starting with a percept or a memorized item, the integral associative recall of all similar memorized items.

Humans

Variations with position of replication errors due to exonuclease warm-up.

A.A mismatch errors occurring during poly(dA) replication with the Klenow fragment of E. coli DNA polymerase I have been quantified. The A/T ratio measured for chains extended by 1-25 nucleotides decreases by a factor of at least 15 from beginning to end. The deduced true error rate may decrease by a factor of 2.5 at each successive nucleotide addition. When ddATP is used instead of dATP, the ddA/T ratio indicates little variation of the misincorporation probability with position. Thus, the accuracy improvement in the first case is due to a warm-up of the proofreading function.

Base Composition

Catalysis by a prebiotic nucleotide analog of histidine.

A ribosylated derivative of adenine, N6 ribosyl adenine, likely to have formed under prebiotic synthesis conditions, is shown to be as active as histidine in the model reaction of p-nitrophenyl acetate hydrolysis. This property widens the range of reactions accessible to RNA catalysis.

Adenosine

Alternative to the steady-state method: derivation of reaction rates from first-passage times and pathway probabilities.

An alternative method for deriving rate equations in enzyme kinetics is presented. An enzyme is followed as it moves along the various pathways allowed by the reaction scheme. The times spent in various sections of the scheme and the pathway probabilities are computed, using simple rules. The rate equation obtains as a function of times and probabilities. The results are equivalent to those provided by the steady-state formalism. While the latter applies uniformly to all schemes, the formalism presented here requires adaptation to each additional class of schemes. However, it has the merit of allowing one to leave unspecified many details of the scheme, including topological ones. Furthermore, it allows one to decompose a scheme into subschemes, analyze the parts separately, and use the intermediate results to derive the rate equation of the complete scheme. The method is applied here to derive general equations for one- and two-entry site enzymes.

Binding Sites

Mnemonic aspects of Escherichia coli DNA polymerase I. Interaction with one template influences the next interaction with another template.

When Escherichia coli DNA polymerase I (Pol I) replicates a homopolymer, the excision/polymerization (exo/pol) ratio varies with enzyme and initiator concentration. The study of this effect in the case of poly(dA).oligo(dT) replication led us to propose a mnemonic model for Pol I, in which the 3' to 5' excision activity warms up when the enzyme is actively polymerizing, and cools down when it dissociates from the template. The model predicts that the exo/pol ratio must increase with processivity length and initiator concentration and decrease with enzyme concentration. It predicts also that contact of the enzyme with one template alters its excision efficiency towards another template. The exo/pol ratio and processivities of Pol I and its Klenow fragment were studied on four templates: poly(dA).(dT)10, poly(dT).(dA)10, poly(dC).(dG)10 and poly(dI).(dC)10. We show that the Klenow fragment is usually much less processive than Pol I and when this is the case it has a much lower exo/pol ratio. At equal processivity, the exo/pol ratios are nearly equal. Furthermore, many factors that influence processivity length (e.g. manganese versus magnesium, inorganic pyrophosphate, ionic strength) influence the exo/pol ratio in the same direction. The study of deaminated poly(dC) replication, where we followed incorporation and excision of both G and A residues, allowed us to assign the origin of the dNMP variations to changes in the 3' to 5' proof-reading activity of Pol I. Similarly, the lower dNMP turnover of the Klenow fragment observed with deaminated poly(dC) was specifically assigned to a decreased 3' to 5' exonuclease activity. The exo/pol ratio generally increased with initiator and decreased with enzyme concentration, in agreement with the model, except for poly(dI).oligo(dC), where it decreased with initiator concentration. However, by terminating chain elongation with dideoxy CTP, we showed directly that, even in this system, excision is relatively inefficient at the beginning of synthesis. Interaction of Pol I with poly(dA).(dT) or with poly(dC).(dG) modifies its exo/pol characteristics in the replication of poly(dI).(dC) and poly(dA).(dT), respectively. The Klenow enzyme is not sensitive to such influences and this correlates with its reduced processivity on the influencing templates. Our results reveal the existence of differences between Pol I and its Klenow fragment that are more profound than has been thought previously.(ABSTRACT TRUNCATED AT 400 WORDS)

Base Composition

Fine tuning of ribosomal accuracy.

If the rate constant for peptide bond formation were high just after an amino acid incorporation and occasionally switched to a lower value afterwards, then the ribosome could compensate for tRNA imbalance specifically at hungry codons. A rigorous analysis of the scheme proves its effectiveness. For instance, a 10-fold reduction in cognate tRNA concentration may increase the error rate by only a factor of two.

Codon

Graphical coding of nucleic acid sequences.

When, in a nucleic acid sequence, the four letters C, G, A, T (or U) are replaced by suitable graphical symbols, some patterns become immediately apparent. Two sets of symbols, constructed for the analysis of either purine/pyrimidine alternations, or of regions of complementarity within a sequence are shown. In addition, another mode of coding is presented, in which the four letters are represented by vectors. The sequence is thus transformed into a planar trajectory. We show, in the case of the gene for human beta hemoglobin, that such a coding enables an easy discrimination between introns and exons.

Base Sequence

[Prediction of secondary structures of nucleic acids: algorithmic and physical aspects].

Prediction of secondary structures in nucleic acids requires both an adequate physical model and powerful calculation algorithms. In our approach, we cut the molecules in sections of which the contributions to the global energy are context-dependent but roughly additive. The structure of minimum energy is obtained by a tree search under constraints of binary incompatibilities. Our algorithm of the "incompatibility islets" is shown to be more powerful than the "bit parallel forward checking" algorithm, well known in Artificial Intelligence. Recurrent algorithms, proposed by other authors are even more rapid, but often miss the correct structures, for they demand a strict additivity of the energetic contributions, physically unjustified. New strategies, required to deal with molecules of more than 200 nucleotides are discussed. Our physical model has been improved by considering the special case of internal loops beginning with a G-A opposition. A bonus of 1.5 kcal. is attributed to such a feature, at each side of an internal loop. To illustrate our programs, we give the computed schemes for the 3' termini of the small subunit ribosomal RNA.

Base Sequence

Prediction of pairing schemes in RNA molecules-loop contributions and energy of wobble and non-wobble pairs.

Previously published models for predicting pairing schemes in RNA molecules, when applied to tRNA, give the clover leaf structure in only half the cases. We made a systematic investigation of the predictability of the clover leaf structure under various assumptions concerning the energetic contributions of single and double-stranded regions. We tested 21 different models and variants on a set of 100 tRNA sequences and many other variants on a smaller set of sequences. In our models we allowed not only G.C, A.U and G.U pairing, but also every other pair. Under conditions which are much less restrictive than those of previous attempts, we can nevertheless reach 90 per cent predictability for the clover leaf structure of tRNA. A most surprising and far-reaching result is that we can assign to C.G and C.C pairs binding energies quite close to the energies of G.U pairs, and still predict the clover leaf. The following ranking for non-complementary pairs was obtained : G.U, G.G and C.C, U.U, C.A, A.A and G.A, U.C. The main practical innovation which made possible the improvements in predictability are: i) not counting the stacking of base pairs separated by a bulge loop; ii) making the terminal C.C's in stems more stable than the terminal A.U's by merely -- 0.7 kcal; iii) replacing the distinction between G.C and A.U-closed loops by a distinction based on the presence of loop-favoring residues; iv) carefully adjusting the energetic balance between the various kinds of loops; v) narrowing the gap between the GC/GC and the GC/AU contributions; vi) using observations on nearest-neighbours in tRNA sequences to refine the contributions of G.U pairs.

Base Composition