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Mutation pressure, natural selection, and the evolution of base composition in Drosophila.

Genome sequencing in a number of taxa has revealed variation in nucleotide composition both among regions of the genome and among functional classes of sites in DNA. Mutational biases, biased gene conversion, and natural selection have been proposed as causes of this variation. Here, we review patterns of base composition in Drosophila DNA. Nucleotide composition in Drosophila melanogaster varys regionally, and base composition is correlated between introns and exons. Drosophila species also show striking patterns of non-random codon usage. Patterns of synonymous codon usage and the biochemistry of translation suggest that natural selection may act at 'silent' sites. A relationship between recombination rates and codon usage and comparisons of the evolutionary dynamics of silent mutations within and between species support natural selection discriminating among synonymous codons. The causes of regional base composition variation are less clear. Progress in functional studies of non-coding DNA, further investigations of genome patterns, and statistical tests based on evolutionary theory will lead to a greater understanding of the contributions of mutational processes and natural selection in patterning genome-wide nucleotide composition.

Animals↗

Intrastrand parity rules of DNA base composition and usage biases of synonymous codons.

When there are no biases in mutation and selection between the two strands of DNA, the 12 possible substitution rates of the four nucleotides reduces to six (type 1 parity rule or PR1), and the intrastrand average base composition is expected to be A = T and G = C at equilibrium without regard to the G + C content of DNA (type 2 parity rule or PR2). Significant deviations from the parity rules in the third codon letters of the four-codon amino acids result mostly from selective biases rather than mutational biases between the two strands of DNA during evolution. The parity rules lay the foundation for evaluating the biases in synonymous codon usage in terms of (1) directional mutation pressure for variation of the DNA G + C content due to mutational biases between alpha-bases (A or T) and gamma-bases (G or C), (2) strand-bias mutation, for example, by DNA repair during transcription, and (3) functional selection in evolution, for example, due to tRNA abundance. The present analysis shows that, although the PR2 violation is common in the third codon letters of four-codon amino acids, the contribution of PR2 violation to the DNA G + C content of the third codon position is small and, in majority of cases, mildly counteracts the effect of the directional mutation pressure on the G + C content.

Animals↗

Consecutive low-usage leucine codons block translation only when near the 5' end of a message in Escherichia coli.

Insertion of nine consecutive low-usage CUA leucine codons after codon 13 of a 313-codon test mRNA strongly inhibited its translation without apparent effect on translation of other mRNAs containing CUA codons. In contrast, nine consecutive high-usage CUG leucine codons at the same position had no apparent effect, and neither low- nor high-usage codons affected translation when inserted after codon 223 or 307. Additional experiments indicated that the strong positional effect of the low-usage codons could not be accounted for by differences in stability of the mRNAs or in stringency of selection of the correct tRNA. The positional effect could be explained if translation complexes are less stable near the beginning of a message: slow translation through low-usage codons early in the message may allow most translation complexes to dissociate before they read through.

Blotting, Northern↗

Protein-encoding genes in the sulfothermophilic archaea Sulfolobus and Pyrococcus.

A number of unrelated protein-encoding genes from sulfothermophilic archaea, Sulfolobus acidocaldarius, Sulfolobus solfataricus, Pyrococcus furiosus and Pyrococcus woesei, has been analyzed. In the Sulfolobus genus, the content of A + T is significantly higher than that of C + G and the base usage follows the order, A > T > G > C. In Pyrococcus, the A + T content is also higher than that of C + G, but with lower values; in the order of base usage, G precedes T. The codon usage of these sulfothermophiles has been determined; alternative start codons are frequently used in both genera; codon preferences reflect the rich A + T composition of the corresponding genomes; for both genera the codon bias is particularly evident within the different arginine triplets, where AGA and AGG are predominant. From the similarities in the codon usage, close taxonomic relationships become evident within the Sulfolobus or the Pyrococcus genus; a lower, but significant similarity is also clear between these genera. The synonymous codon usage of these sulfothermophiles shows similarities with that of Saccharomyces cerevisiae and bovine mitochondria, whereas clear divergences are observed with the halophilic archaeal genus, Halobacterium, or the eubacterium, Escherichia coli. The unrelated proteins of the considered sulfothermophiles have been analyzed for the content of hydrophobic residues; the comparison with mesophiles reveals a significant increase in the average hydrophobicity of amino acid residues. This finding could indicate a mechanism of adaptation of proteins in organisms living under extreme environments. It is noteworthy that an opposite trend, i.e. a decreased average hydrophobicity, occurs in unrelated halophilic proteins.

Animals↗

Unusual codon bias occurring within insertion sequences in Escherichia coli.

The large open reading frames of insertion sequences from Escherichia coli were examined for their spatial pattern of codon usage bias and distribution of rarely used codons. There is a bias in codon usage that is generally lower toward the terminal ends of the coding regions, which is reflected in the occurrence of an excess of nonpreferred codons in the 3' portions of the coding regions as compared with the 5' portions. In contrast, typical chromosomal genes have a lower codon usage bias toward the 5' ends of the coding regions. These results imply that the selective forces reflected in codon usage bias may differ according to position within the coding sequence. In addition, these constraints apparently differ in important ways between genes contained in insertion sequences and those in the chromosome.

Chromosomes, Bacterial↗

What drives codon choices in human genes?

Synonymous codon usage is based and the bias seems to be different in different organisms. Factors with proposed roles in causing codon bias include degree and timing of gene expression, codon-anticodon interactions, transcription and translation rate and fidelity, codon context, and global and local G + C content. We offer a new perspective and new methods for elucidating codon choices applied especially to the human genome. We present data supporting the thesis that codon choices for human genes are largely a consequence of two factors: (1) amino acid constraints, (2) maintaining DNA structures dependent on base-step conformational tendencies consistent with the organism's genome signature that is determined by genome-wide processes of DNA modification, replication and repair. The related codon signature defined as the dinucleotide relative abundances at the distinct codon positions (1,2), (2,3), and (3,4) (4 = 1 of the next codon) accommodates both the global genome signature and amino acid constraints. In human genes, codon positions (2,3) and (3,4) containing the silent site have similar codon signatures reflecting DNA symmetry. Strong CG and TA dinucleotide underrepresentation is observed at all codon positions as well as in non-coding regions. Estimates of synonymous codon usage based on codon signatures are in excellent agreement with the actual codon usage in human and general vertebrate genes. These properties are largely independent of the isochore compartment (G + C content), gene size, and transcriptional and translational constraints. We hypothesize that major influences on codon usage in human genes result from residue preferences and diresidue associations in proteins coupled to biases on the DNA level, related to replication and repair processes and/or DNA structural requirements.

Codon↗

DNA sequence evolution: the sounds of silence.

Silent sites (positions that can undergo synonymous substitutions) in protein-coding genes can illuminate two evolutionary processes. First, despite being silent, they may be subject to natural selection. Among eukaryotes this is exemplified by yeast, where synonymous codon usage patterns are shaped by selection for particular codons that are more efficiently and/or accurately translated by the most abundant tRNAs; codon usage across the genome, and the abundance of different tRNA species, are highly co-adapted. Second, in the absence of selection, silent sites reveal underlying mutational patterns. Codon usage varies enormously among human genes, and yet silent sites do not appear to be influenced by natural selection, suggesting that mutation patterns vary among regions of the genome. At first, the yeast and human genomes were thought to reflect a dichotomy between unicellular and multicellular organisms. However, it now appears that natural selection shapes codon usage in some multicellular species (e.g. Drosophila and Caenorhabditis), and that regional variations in mutation biases occur in yeast. Silent sites (in serine codons) also provide evidence for mutational events changing adjacent nucleotides simultaneously.

Animals↗

De Novo Assembly and Comparative Analysis of the Complete Mitochondrial Genome of Mesenchytraeus (Annelida, Enchytraeidae).

The Changbai Mountain range is one of the key glacial refugia in Northeast Asia. Mesenchytraeus exhibits high species diversity, strong endemism, and widespread cryptic species in this region, for which mitogenomes provide useful molecular markers for exploring cryptic species complexes. This makes Mesenchytraeus an ideal model for studying mitogenome evolution among closely related lineages; however, no mitogenome data have been reported for this genus to date. In this study, we performed de novo assembly, annotation, and comparative analysis of the mitogenomes of 13 Mesenchytraeus species (14 individuals) from Changbai Mountain. All mitogenomes are typical circular molecules containing 37 genes, but putative control regions are rearranged and consistently located between ATP6 and trnR. All species exhibit annelid-specific strand nucleotide biases, characterized by negative GC skew and near-zero AT skew. Codon usage analysis reveals that codon families with wobble U are significantly biased toward mtDNA codons, whereas those with wobble C or G are biased toward non-mtDNA codons, suggesting a conserved mitochondrial codon usage pattern in annelids. All tRNAs form typical cloverleaf secondary structures except trnS2, which lacks the D-stem and the dihydrouridine (DHU) arm in some species. The putative control regions commonly contain complex palindromic repeats, hairpins, and repetitive elements, and may harbor dual replication origins. Phylogenetic analyses support the monophyly of Mesenchytraeus and reveal significant molecular divergence among morphologically cryptic species. This study provides the first mitogenome dataset for Mesenchytraeus and offers new insights into the evolution and replication mechanisms of mitogenomes in Clitellata and broader Annelida.

Mesenchytraeus↗

Horizontal gene transfer contributes to the wide distribution and evolution of type II restriction-modification systems.

Restriction modification (RM) systems serve to protect bacteria against bacteriophages. They comprise a restriction endonuclease activity that specifically cleaves DNA and a corresponding methyltransferase activity that specifically methylates the DNA, thereby protecting it from cleavage. Such systems are very common in bacteria. To find out whether the widespread distribution of RM systems is due to horizontal gene transfer, we have compared the codon usages of 29 type II RM systems with the average codon usage of their respective bacterial hosts. Pronounced deviations in codon usage were found in six cases: EcoRI, EcoRV, KpnI, SinI, SmaI, and TthHB81. They are interpreted as evidence for horizontal gene transfer in these cases. As the methodology is expected to detect only one-fourth to one-third of all horizontal gene transfer events, this result implies that horizontal gene transfer had a considerable influence on the distribution and evolution of RM systems. In all of these six cases the codon usage deviations of the restriction enzyme genes are much more pronounced than those of the methyltransferase genes. This result suggests that in these cases horizontal gene transfer had occurred sequentially with the gene for the methyltransferase being first acquired by the cell. This can be explained by the fact that an active restriction endonuclease is highly toxic in cells whose DNA is not protected from cleavage by a corresponding methyltransferase.

Bacteria↗

Usage of the three termination codons: compilation and analysis of the known eukaryotic and prokaryotic translation termination sequences.

The published translation termination sequences have been compiled and analysed to aid the interpretation of experiments on termination codon usage in the Xenopus oocyte (Bienz et al. 1981). There are significant differences between prokaryotes and eukaryotes concerning the usage of the three termination codons and of tandem stops. In addition viruses show termination strategies that differ from those of their hosts. Preferred context sequences flanking termination codons are described. Contexts vary within the last codon according to the nature of the termination codon, but are uniform within the first triplet following the terminators.

Animals↗

Multilayered nucleotide organization reveals purifying selection and host-driven adaptation in CPV and FPV.

Since feline panleukopenia virus (FPV) is considered the most likely ancestor of canine parvovirus (CPV), comprehensive comparisons of nucleotide organization in corresponding viral genes between CPV and FPV may provide novel insights into the evolutionary dynamics underlying the divergence of these two viruses. Here, we characterize the evolutionary patterns of CPV and FPV genes across multiple levels of nucleotide organization. Both viruses exhibited highly conserved nucleotide usage at nonsynonymous sites, with Ka/Ks patterns consistent with strong purifying selection, whereas synonymous sites showed greater variability. CpG dinucleotides were markedly underrepresented across all four viral genes, suggesting host-associated selective pressure and/or intrinsic nucleotide compositional constraints. Extensive nonrandom biases in synonymous codon usage, codon neighboring nucleotide context, and codon pair usage further revealed fine-scale genomic optimization shaped by natural selection and nucleotide compositional constraints. Structural protein genes (VP1 and VP2) displayed stronger codon usage bias and higher tRNA adaptation than nonstructural genes. Moreover, CPV genes showed greater translational adaptation to feline hosts than to canine hosts. These findings highlight how closely related parvoviruses exploit flexible nucleotide organization to facilitate host adaptation while maintaining essential protein functions.

Animals↗

On the rate of DNA sequence evolution in Drosophila.

Analysis of the rate of nucleotide substitution at silent sites in Drosophila genes reveals three main points. First, the silent rate varies (by a factor of two) among nuclear genes; it is inversely related to the degree of codon usage bias, and so selection among synonymous codons appears to constrain the rate of silent substitution in some genes. Second, mitochondrial genes may have evolved only as fast as nuclear genes with weak codon usage bias (and two times faster than nuclear genes with high codon usage bias); this is quite different from the situation in mammals where mitochondrial genes evolve approximately 5-10 times faster than nuclear genes. Third, the absolute rate of substitution at silent sites in nuclear genes in Drosophila is about three times higher than the average silent rate in mammals.

Animals↗

Predicted highly expressed genes of diverse prokaryotic genomes.

Our approach in predicting gene expression levels relates to codon usage differences among gene classes. In prokaryotic genomes, genes that deviate strongly in codon usage from the average gene but are sufficiently similar in codon usage to ribosomal protein genes, to translation and transcription processing factors, and to chaperone-degradation proteins are predicted highly expressed (PHX). By these criteria, PHX genes in most prokaryotic genomes include those encoding ribosomal proteins, translation and transcription processing factors, and chaperone proteins and genes of principal energy metabolism. In particular, for the fast-growing species Escherichia coli, Vibrio cholerae, Bacillus subtilis, and Haemophilus influenzae, major glycolysis and tricarboxylic acid cycle genes are PHX. In Synechocystis, prime genes of photosynthesis are PHX, and in methanogens, PHX genes include those essential for methanogenesis. Overall, the three protein families-ribosomal proteins, protein synthesis factors, and chaperone complexes-are needed at many stages of the life cycle, and apparently bacteria have evolved codon usage to maintain appropriate growth, stability, and plasticity. New interpretations of the capacity of Deinococcus radiodurans for resistance to high doses of ionizing radiation is based on an excess of PHX chaperone-degradation genes and detoxification genes. Expression levels of selected classes of genes, including those for flagella, electron transport, detoxification, histidine kinases, and others, are analyzed. Flagellar PHX genes are conspicuous among spirochete genomes. PHX genes are positively correlated with strong Shine-Dalgarno signal sequences. Specific regulatory proteins, e.g., two-component sensor proteins, are rarely PHX. Genes involved in pathways for the synthesis of vitamins record low predicted expression levels. Several distinctive PHX genes of the available complete prokaryotic genomes are highlighted. Relationships of PHX genes with stoichiometry, multifunctionality, and operon structures are discussed. Our methodology may be used complementary to experimental expression analysis.

Archaea↗

The nonrandom location of synonymous codons suggests that reading frame-independent forces have patterned codon preferences.

Biased codon usage is common in eukaryotic and prokaryotic genes. Evidence from Escherichia, Saccharomyces, and Drosophila indicates that it favors translational efficiency and accuracy. However, to date no functional advantages have been identified in the codon-anticodon interactions involving the most frequently used (preferred) codons. Here we present evidence that forces not related to the individual codon-anticodon interaction may be involved in determining which synonymous codons are preferred or avoided. We show that the "off-frame" trinucleotide motif preferences inferrable from Drosophila coding regions are often in the same direction as Drosophila's "in-frame" codon preferences, i.e., its codon usage. The off-frame preferences were inferred from the nonrandomness of the location of confamilial synonymous codons along coding regions-a pattern often described as a context dependence of nucleotide choice at synonymous positions or as codon-pair bias. We relied on randomizations of the location of confamilial codons that do not alter, and cannot be influenced by, the encoded amino acid sequences, codon usage, or base composition of the genes examined. The statistically significant congruency of in-frame and off-frame trinucleotide preferences suggests that the same kind of reading-frame-independent force(s) may also influence synonymous codon choice. These forces may have produced biases in codon usage that then led to the evolution of the translational advantages of these motifs as preferred codons. Under this scenario, tRNA pool size differences between preferred and nonpreferred codons initially were evolved to track the default overrepresentation of codons with preferred motifs. The motif preference hypothesis can explain the structuring of codon preferences and the similarities in the codon usages of distantly related organisms.

Amino Acid Sequence↗

The evolution of codon preferences in Drosophila: a maximum-likelihood approach to parameter estimation and hypothesis testing.

Synonymous codon usage in related species may differ as a result of variation in mutation biases, differences in the overall strength and efficiency of selection, and shifts in codon preference-the selective hierarchy of codons within and between amino acids. We have developed a maximum-likelihood method to employ explicit population genetic models to analyze the evolution of parameters determining codon usage. The method is applied to twofold degenerate amino acids in 50 orthologous genes from D. melanogaster and D. virilis. We find that D. virilis has significantly reduced selection on codon usage for all amino acids, but the data are incompatible with a simple model in which there is a single difference in the long-term Ne, or overall strength of selection, between the two species, indicating shifts in codon preference. The strength of selection acting on codon usage in D. melanogaster is estimated to be |Nes| approximately 0.4 for most CT-ending twofold degenerate amino acids, but 1.7 times greater for cysteine and 1.4 times greater for AG-ending codons. In D. virilis, the strength of selection acting on codon usage for most amino acids is only half that acting in D. melanogaster but is considerably greater than half for cysteine, perhaps indicating the dual selection pressures of translational efficiency and accuracy. Selection coefficients in orthologues are highly correlated (rho = 0.46), but a number of genes deviate significantly from this relationship.

Amino Acids↗

Beta tubulin gene of the parasitic protozoan Leishmania mexicana.

A genomic DNA library was generated with Sau3A cut DNA derived from promastigotes of Leishmania mexicana amazonensis and the lambda vector EMBL3. The library was screened for beta tubulin clones using 32P-labeled heterologous probe of chicken beta tubulin cDNA. From the various genomic clones the one designated 23.1, which gave the simplest hybridization banding pattern, was further characterized. The leishmanial insert DNA was subcloned into plasmid vectors and the resulting clones were designated as T11, T28 and T50. Using these clones leishmanial beta tubulin coding region was sequenced by the dideoxy method. The result shows that the beta tubulin has 445 amino acids, a carboxyl terminal tyrosine, and no intron. Leishmanial beta tubulin has 93% amino acid sequence similarity with that of trypanosome and 82% with that of man: and there is a strong bias in codon usage for codons possessing guanine or cytosine in the third base.

Amino Acid Sequence↗

On the relationship between preferred termination codon contexts and nonsense suppression in human cells.

The nucleotide sequences 3' to the translational termination codons in a collection of human genes have been analysed for evidence of a preferred 3' context for natural UAG codons. The aim was to see whether human UAG contexts can be related to the recent demonstration of the effects of 3' context on nonsense suppression in human cells. Since mammalian genomes are known to consist of a patchwork of blocks of sequences or 'isochores' with different G+C contents, the collection of genes was split into 5 classes containing genes with similar frequencies of G+C at the 3rd position of synonymous codons. This analysis revealed that the frequency of bases 3' to UAG varies with the G+C frequency of the gene, and that these changes were mirrored by changes in the patterns of bases in GN and AGN strings. The identity of the next 3' base appears therefore to be determined by genome wide changes in G+C composition, rather than selection to maintain a particular tetranucleotide stop signal. These findings argue strongly that the failure to find bias in the patterns of bases used in human coding sequences is an insensitive guide for the existence of codon usage or codon context effects during translation in human cells.

Base Composition↗

DNA sequences from the str operon of Escherichia coli.

The str operon at 72 min on the Escherichia coli chromosome contains genes for ribosomal proteins (r-proteins) S12 (str or rpsL) and S7 (rpsG) and elongation factors G (fus) and Tu (tufA). The sequence of the entire S12 gene, the S12-S7 intercistronic region, and the beginning of the S7 gene is reported. Also, the sequence of the end of the S7 gene, the S7-G intercistronic region, and the beginning of the elongation fractor G gene is reported. The S12-S7 intercistronic region is 96 base pairs long, in contrast to other intercistronic regions in r-protein operons which have been found to vary from 3 to 66 base pairs. The S7-G intercistronic region is only 27 bases long, supporting the previous conclusion that r-protein and elongation factor genes are co-transcribed. A comparison of translation initiation sites of the S12 and S7 genes, and other examples of co-transcribed r-protein genes, reveals no obvious features that could account for equimolar synthesis of all r-proteins. The codon usage in the S12 and S7 genes follows the pattern observed in other r-protein genes; that is, there is a highly preferential usage of codons recognized by the most abundant of isoaccepting tRNA species. This pattern could reflect the cell's need for efficient translation or minimal errors, or both, in r-protein synthesis.

Amino Acid Sequence↗