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Shared and unique features of diversification in Greater Antillean Anolis ecomorphs.

Examples of convergent evolution suggest that natural selection can often produce predictable evolutionary outcomes. However, unique histories among species can lead to divergent evolution regardless of their shared selective pressures-and some contend that such historical contingencies produce the dominant features of evolution. A classic example of convergent evolution is the set of Anolis lizard ecomorphs of the Greater Antilles. On each of four islands, anole species partition the structural habitat into at least four categories, exhibiting similar morphologies within each category. We assessed the relative importance of shared selection due to habitat similarity, unique island histories, and unique effects of similar habitats on different islands in the generation of morphological variation in anole ecomorphs. We found that shared features of diversification across habitats were of greatest importance, but island effects on morphology (reflecting either island effects per se or phylogenetic relationships) and unique aspects of habitat diversification on different islands were also important. There were three distinct cases of island-specific habitat diversification, and only one was confounded by phylogenetic relatedness. The other two unique aspects were not related to shared ancestry but might reflect as-yet-unmeasured environmental differences between islands in habitat characteristics. Quantifying the relative importance of shared and unique responses to similar selective regimes provides a more complete understanding of phenotypic diversification, even in this much-studied system.

Animals↗

Influenza C virus hemagglutinin: comparison with influenza A and B virus hemagglutinins.

The complete nucleotide sequence of the influenza C/California/78 virus RNA 4 was obtained by using cloned cDNA derived from the RNA segment. This gene is 2,071 nucleotides long and can code for a polypeptide of 654 amino acids. Although there are no convincing sequence homologies between RNA 4 and the hemagglutinin genes of influenza A and B viruses, we suggest, on the basis of structural features, that RNA 4 of the influenza C virus codes for the hemagglutinin. The structural features which are common to the hemagglutinins of influenza A, B, and C viruses include (i) a hydrophobic signal peptide, (ii) an arginine cleavage site between the hemagglutinin 1 and 2 subunits, (iii) hydrophobic regions at the amino and carboxyl termini of the hemagglutinin 2 subunit, and (iv) several conserved cysteine residues. Additional evidence that RNA 4 of influenza C virus codes for the hemagglutinin is that the tripeptide Ile-Phe-Gly, known to be present at the amino terminus of the hemagglutinin 2 subunit of influenza C virus, is encoded by RNA 4 at a point immediately adjacent to the presumptive arginine cleavage site. The lack of primary sequence homology between the influenza C virus hemagglutinin and the influenza A or B virus hemagglutinins, which all have similar functions, might be attributed to convergent rather than divergent evolution. However, the structural similarities among the influenza A, B, and C virus hemagglutinins strongly suggest that the three hemagglutinin genes have diverged from a common precursor.

Amino Acid Sequence↗

Functional divergence caused by ancient positive selection of a Drosophila hybrid incompatibility locus.

Interspecific hybrid lethality and sterility are a consequence of divergent evolution between species and serve to maintain the discrete identities of species. The evolution of hybrid incompatibilities has been described in widely accepted models by Dobzhansky and Muller where lineage-specific functional divergence is the essential characteristic of hybrid incompatibility genes. Experimentally tractable models are required to identify and test candidate hybrid incompatibility genes. Several Drosophila melanogaster genes involved in hybrid incompatibility have been identified but none has yet been shown to have functionally diverged in accordance with the Dobzhansky-Muller model. By introducing transgenic copies of the X-linked Hybrid male rescue (Hmr) gene into D. melanogaster from its sibling species D. simulans and D. mauritiana, we demonstrate that Hmr has functionally diverged to cause F1 hybrid incompatibility between these species. Consistent with the Dobzhansky-Muller model, we find that Hmr has diverged extensively in the D. melanogaster lineage, but we also find extensive divergence in the sibling-species lineage. Together, these findings implicate over 13% of the amino acids encoded by Hmr as candidates for causing hybrid incompatibility. The exceptional level of divergence at Hmr cannot be explained by neutral processes because we use phylogenetic methods and population genetic analyses to show that the elevated amino-acid divergence in both lineages is due to positive selection in the distant past-at least one million generations ago. Our findings suggest that multiple substitutions driven by natural selection may be a general phenomenon required to generate hybrid incompatibility alleles.

Amino Acid Sequence↗

Convergence and the multidimensional niche.

Convergent evolution has played an important role in the development of the ecological niche concept. We investigated patterns of convergent and divergent evolution of Caribbean Anolis lizards. These lizards diversified independently on each of the islands of the Greater Antilles, producing the same set of habitat specialists on each island. Using a phylogenetic comparative framework, we examined patterns of morphological convergence in five functionally distinct sets of morphological characters: body size, body shape, head shape, lamella number, and sexual size dimorphism. We find evidence for convergence among members of the habitat specialist types for each of these five datasets. Furthermore, the patterns of convergence differ among at least four of the five datasets; habitat specialists that are similar for one set of characters are often greatly different for another. This suggests that the habitat specialist niches into which these anoles have evolved are multidimensional, involving several distinct and independent aspects of morphology.

Adaptation, Biological↗

Evolution of the aminoacyl-tRNA synthetases and the origin of the genetic code.

The aminoacyl-tRNA synthetases exist as two enzyme families which were apparently generated by divergent evolution from two primordial synthetases. The two classes of enzymes exhibit intriguing familial relationships, in that they are distributed nonrandomly within the codon-amino acid matrix of the genetic code. For example, all XCX codons code for amino acids handled by class II synthetases, and all but one of the XUX codons code for amino acids handled by class I synthetases. One interpretation of these patterns is that the synthetases coevolved with the genetic code. The more likely explanation, however, is that the synthetases evolved in the context of an already-established genetic code--a code which developed earlier in an RNA world. The rules which governed the development of the genetic code, and led to certain patterns in the coding catalog between codons and amino acids, would also have governed the subsequent evolution of the synthetases in the context of a fixed code, leading to patterns in synthetase distribution such as those observed. These rules are (1) conservative evolution of amino acid and adapter binding sites and (2) minimization of the disruptive effects on protein structure caused by codon meaning changes.

Amino Acids↗

Evolution of the cytochrome P450 genes.

1. The P450 gene superfamily is presently known to contain more than 78 members, divided into 14 families. 2. The superfamily has undergone divergent evolution, and the ancestral gene is probably more than 2 billion years old. 3. The recent 'burst' in new P450 genes, particularly in the II family during the past 800 million years, appears to be the result of 'animal-plant warfare'. 4. Due to the presence or absence of a particular P450 gene in one species but not the other, it may not be correct to extrapolate toxicity or cancer data from rodent to human. 5. Increases in the P450 gene product (enzyme induction) almost always reflect an elevated rate in gene transcription, although there are several exceptions. 6. The mechanisms of P450 gene regulation (induction) by classes of inducers might become better understood through the comparison of different phyla that differ in response to a particular class of inducers. 7. Amongst several carefully selected phyla, delineation between which electron donor (presence of Fe2S2 protein or NADPH-P450 oxidoreductase, or both) interacts with P450 may provide valuable information about the evolution of eukaryotes from prokaryotes.

Animals↗

Ribosomal protein-sequence block structure suggests complex prokaryotic evolution with implications for the origin of eukaryotes.

Amino acid sequence alignments of orthologous ribosomal proteins found in Bacteria, Archaea, and Eukaryota display, relative to one another, an unusual segment or block structure, with major evolutionary implications. Within each of the prokaryotic phylodomains the sequences exhibit substantial similarity, but cross-domain alignments break up into (a) universal blocks (conserved in both phylodomains), (b) bacterial blocks (unalignable with any archaeal counterparts), and (c) archaeal blocks (unalignable with any bacterial counterparts). Sequences of those eukaryotic cytoplasmic riboproteins that have orthologs in both Bacteria and Archaea, exclusively match the archaeal block structure. The distinct blocks do not correlate consistently with any identifiable functional or structural feature including RNA and protein contacts. This phylodomain-specific block pattern also exists in a number of other proteins associated with protein synthesis, but not among enzymes of intermediary metabolism. While the universal blocks imply that modern Bacteria and Archaea (as defined by their translational machinery) clearly have had a common ancestor, the phylodomain-specific blocks imply that these two groups derive from single, phylodomain-specific types that came into existence at some point long after that common ancestor. The simplest explanation for this pattern would be a major evolutionary bottleneck, or other scenario that drastically limited the progenitors of modern prokaryotic diversity at a time considerably after the evolution of a fully functional translation apparatus. The vast range of habitats and metabolisms that prokaryotes occupy today would thus reflect divergent evolution after such a restricting event. Interestingly, phylogenetic analysis places the origin of eukaryotes at about the same time and shows a closer relationship of the eukaryotic ribosome-associated proteins to crenarchaeal rather than euryarchaeal counterparts.

Amino Acid Sequence↗

Structure of Haemophilus influenzae Fe(+3)-binding protein reveals convergent evolution within a superfamily.

The first crystal structure of the iron-transporter ferric ion-binding protein from Haemophilus influenzae (hFBP), at 1.6 A resolution, reveals the structural basis for iron uptake and transport required by several important bacterial pathogens. Paradoxically, although hFBP belongs to a protein superfamily which includes human transferrin, iron binding in hFBP and transferrin appears to have developed independently by convergent evolution. Structural comparison of hFBP with other prokaryotic periplasmic transport proteins and the eukaryotic transferrins suggests that these proteins are related by divergent evolution from an anion-binding common ancestor, not from an iron-binding ancestor. The iron binding site of hFBP incorporates a water and an exogenous phosphate ion as iron ligands and exhibits nearly ideal octahedral metal coordination. FBP is highly conserved, required for virulence, and is a nodal point for free iron uptake in several Gram-negative pathogenic bacteria, thus providing a potential target for broad-spectrum antibacterial drug design against human pathogens such as H. influenzae, Neisseria gonorrhoeae, and Neisseria meningitidis.

Amino Acid Sequence↗

Evolution of type II DNA methyltransferases. A gene duplication model.

On the basis of consensus sequences, which had previously been defined for two groups of closely related cytosine-specific and adenine-specific DNA methyltransferases, homologies can be detected that indicate a common origin for these proteins. Intramolecular comparisons of several of these enzymes reveal homology relationships, which suggests that gene duplication is a phylogenetic principle in the evolution of the Mtases. One or two duplications of an ancestral gene encoding a 12,000 to 16,000 Mr protein, followed by divergent evolution, may have led to very different protein structures and could explain the differences in amino acid sequences, molecular weights and biochemical properties. Intermolecular and intramolecular homologies were also recognized in type II restriction endonucleases, suggesting a very similar evolutionary pathway.

Amino Acid Sequence↗

[Cytochromes P450 and formation of reactive metabolites. Role in hepatotoxicity of drugs].

During the millennia of evolution, animals have been subjected to a relentless biological warfare mounted by the plants that they ingested. By duplication of an ancestral gene, divergent evolution of these 2 genes, and so forth, surviving animals have been endowed with multiple cytochromes P450s which can metabolize (and thus eliminate) a multitude of environmental liposoluble xenobiotics. A disadvantage of this system (fortunately limited by the concomitant installation of several protective systems) is that cytochrome P450 transforms some of these xenobiotics into chemically reactive metabolites. These free radicals or electrophilic metabolites attack tissue constituents, and may lead to mutation, cancer or tissue necrosis. Tissue necrosis affect mainly the liver, whose content in cytochrome P450 is particularly high. Indeed, reactive metabolites are usually extremely unstable, and react mainly in situ, in the same organ that forms them. When the formation of reactive metabolites is extensive, protective mechanisms are overwhelmed, extensive alterations of diverse hepatic constituents occur, and toxic hepatitis ensues. When the formation of reactive metabolites is moderate, severe toxic lesions do not occur. However, the covalent binding of reactive metabolites to hepatic proteins modifies the self of the subject. In some subjects, the presence of this modified self triggers immunization, and leads to immunoallergic hepatitis. The immune response may be directed either against protein (or peptide) epitopes modified by the presence of a reactive metabolite (reaction against modified self) and/or against normal, unmodified, epitopes of proteins (autoimmune reaction against the self, triggered by the modified self). Both metabolic factors, and the HLA phenotype, appear to modulate the likelihood of immunization.

Autoimmune Diseases↗

NADP-dependent enzymes. II: Evolution of the mono- and dinucleotide binding domains.

Nicotinamide adenine dinucleotides [NAD and NADP with both referred to as NAD(P)] are among the more diffuse redox cofactors. Despite their stereochemical similarity where the only difference is a phosphomonoester on the ribose near the adenine of NADP, they show different biochemical reactivities with NAD behaving as an oxidant and NADP as a reductant. NAD(P)-dependent enzymes generally share a common open alpha/beta fold with few exceptions only recently structurally characterized. This study of the molecular evolution of the NAD(P) binding domains, possible given the large number of known molecular structures, addresses two main questions: 1) can a common fold exist in different biological systems (divergent evolution) and 2) does a relationship exist among similar biological systems that display different folds (convergent evolution)? Both the structures of mono- and dinucleotide binding domains have been classified by cluster analysis based on the similarity evaluated by their main chain C alpha superposition. Moreover, the cofactor conformations and the stereochemical characteristics of their pockets have also been classified by analogous methods on the basis of the published tertiary structures. Two primary results appear: 1) the classification of the mononucleotide binding domains is different from that of the dinucleotide binding folds and 2) both divergent and convergent evolutionary pathways can be hypothesized, the latter less frequently observed and less pronounced but nevertheless evident. The generally accepted hypothesis that dinucleotide binding domains have evolved by gene duplication of primordial genes coding for the smaller mononucleotide binding domains is acceptable but the two halves of the resulting dinucleotide binding domains are evolutionarily uncorrelated. The NH2-terminal mononucleotide binding domain is less variable than the COOH-terminal half, probably because it involves the binding of the ADP moiety of NAD(P) invariant in all examined systems. There is evidence to postulate that evolutionary pathways for NAD(P)-dependent enzymes are both divergent and convergent. In fact, nearly all combinations of similarity dissimilarity in overall fold, cofactor conformation, and cofactor binding pocket structural characteristics for each enzyme pair examined are possible. The NAD(P)-dependent enzymes apparently provide a canonical example of an evolutionary principle that "anything goes."

Animals↗

Directed evolution of human estrogen receptor variants with significantly enhanced androgen specificity and affinity.

Human estrogen receptor alpha (hERalpha) and human androgen receptor exhibit exquisite ligand specificity, which underlies their remarkable ability to effect ligand-regulated gene transcription in a highly distinctive and specific manner. Here we used a directed evolution approach to create hERalpha variants with enhanced androgen specificity and affinity with the goal to better understand the molecular basis of ER ligand specificity and the evolutionary mechanism of nuclear receptors. We developed a sensitive yeast two-hybrid system to screen for hERalpha variants with increased transactivation potency toward testosterone. After two rounds of directed evolution, we identified five hERalpha variants with dramatically improved transactivation potency toward testosterone in both yeast and mammalian cells. These variants showed up to 7,600-fold improvement in the binding affinity for testosterone and only slightly reduced affinity toward 17beta-estradiol. Detailed analysis of these evolved variants and a few site-directed mutants generated de novo led to several unexpected findings including the following. 1) Only two beneficial mutations were needed to create hERalpha variants with near nanomolar affinity for testosterone. 2) Some beneficial mutations were synergistic, context-dependent, or non-additive. 3) Of the five identified beneficial mutations, four of them were not in the ER ligand binding pocket and yet exerted important action on ligand specificity. 4) The single ligand-contacting mutation E353Q plays a dominant role in discriminating androgens and estrogens. These results, viewed in conjunction with the ligand exploitation model of nuclear receptor evolution, suggest that the mutation E353Q may represent a key event in the evolution of androgen receptors from an ancestral estrogen receptor and that ligand promiscuity may play an important role in the creation of new nuclear receptors via divergent evolution.

Amino Acid Sequence↗

Limb ossification in the Paleozoic branchiosaurid Apateon (Temnospondyli) and the early evolution of preaxial dominance in tetrapod limb development.

Despite the wide range of shapes and sizes that accompany a vast variety of functions, the development of tetrapod limbs follows a conservative pattern of de novo condensation, branching, and segmentation. Development of the zeugopodium and digital arch typically occurs in a posterior to anterior sequence, referred to as postaxial dominance, with a digital sequence of 4-3-5-2-1. The only exception to this pattern in all of living Tetrapoda can be found in salamanders, which display a preaxial dominance in limb development, a de novo condensation of a basale commune (distal carpal/tarsal 1+2) and a precoccial development of digits I and II. These divergent patterns have puzzled researchers for over a century leading to various explanatory hypotheses. Despite many advances in research on tetrapod limb development, the divergent evolution of these two pathways and its causes are still not understood. Based on an extensive ontogenetic series we investigated the pattern of limb development of the 300 Ma old branchiosaurid amphibian Apateon. This revealed a preaxial dominance in limb development that was previously believed to be unique and derived for modern salamanders. The Branchiosauridae are favored as close relatives of extant salamanders in most phylogenetic hypotheses of the highly controversial origins and relationships of extant amphibians. The findings provide new insights into the evolution of developmental pathways in tetrapod limb development, the relationships of modern amphibians with possible Paleozoic antecedents, and their initial timing of divergence.

Animals↗

[Several methodologic problems of evolutionary histology in light of the findings of molecular genetics].

The paper elucidates certain methodological problems of evolutionary histology. The principal attention is given to the necessary synthesis of modern molecular biology and genetics and evolutionary histology. Modern data on the levels of the organization of the living matter and their significance for the rightness of the A.A. Zavarzin's theory of parallel lines in the tissue evolution are presented. The hypothesis of an application of the theory of parallel lines in the hereditary variability by N.I. Vavilov to the analysis of regularities of the tissue evolution is set forth. The hypothesis is proposed that mutation changes of similar genes in representatives of different types of animals underlie the regularities of the tissue evolution discovered by A.A. Zavarzin, and epigenomic changes of regulation systems occurring most frequently in the process of ontogenesis of organisms lie in the basis of the divergent evolution of tissues after N.G. Chlopin.

Biological Evolution↗

The evolution and structure of aminergic G protein-coupled receptors.

An analysis of aligned sequences of the seven transmembrane segments of 59 aminergic G protein-coupled receptors (GPCRs) shows that their classification into subclasses based upon the nature of their ligands is over-simplified. Sequences similarity dendrograms indicate that the evolution of these receptors occurs at two sites (the G protein-coupling regions and the ligand binding site) and this results in convergent as well as divergent evolution. Amino acid substitution patterns at each position in the alignment discriminate between the internal residues and those that face the lipid and the periodicity in these patterns matches that of the classical alpha-helix. The point at which the fifth transmembrane helix protrudes into the cytoplasm and the point at which the seventh transmembrane helix protrudes on the extracellular side of the bilayer are detected. The positions of charged residues on the external face of the remaining helices are used to determine the point at which they enter and leave the bilayer. These data are used to construct three-dimensional models of GPCRs, which are based on the recently determined arrangement of the helices of bovine rhodopsin rather than on the structure of bacteriorhodopsin.

Amino Acid Sequence↗

Profiling serine protease substrate specificity with solution phase fluorogenic peptide microarrays.

A novel microarray-based proteolytic profiling assay enabled the rapid determination of protease substrate specificities with minimal sample and enzyme usage. A 722-member library of fluorogenic protease substrates of the general format Ac-Ala-X-X-(Arg/Lys)-coumarin was synthesized and microarrayed, along with fluorescent calibration standards, in glycerol nanodroplets on microscope slides. The arrays were then activated by deposition of an aerosolized enzyme solution, followed by incubation and fluorometric scanning. The specificities of human blood serine proteases (human thrombin, factor Xa, plasmin, and urokinase plasminogen activator) were examined. The arrays provided complete maps of protease specificity for all of the substrates tested and allowed for detection of cooperative interactions between substrate subsites. The arrays were further utilized to explore the conservation of thrombin specificity across species by comparing the proteolytic fingerprints of human, bovine, and salmon thrombin. These enzymes share nearly identical specificity profiles despite approximately 390 million years of divergent evolution. Fluorogenic substrate microarrays provide a rapid way to determine protease substrate specificity information that can be used for the design of selective inhibitors and substrates, the study of evolutionary divergence, and potentially, for diagnostic applications.

Amino Acid Motifs↗

Developmental mechanisms facilitating the evolution of bills and quills.

Beaks and feathers epitomize inimitable avian traits. Within individuals and across species there exists astounding diversity in the size, shape, arrangement, and colour of beaks and feathers in association with various functional adaptations. What has enabled the concomitantly divergent evolution of beaks and feathers? The common denominator may lie in their developmental programmes. As revealed through recent transplant experiments using quail and duck embryos, the developmental programme for each structure utilizes mesenchyme as a dominant source of species-specific patterning information, acts as a module of closely coupled molecular and histogenic events, and operates with a high degree of spatial and temporal plasticity. By synergizing these three features, the developmental programmes underlying beaks and feathers likely have the essential potential to react spontaneously to novel conditions and new gene functions, and as a consequence are well equipped to generate and accommodate innovative phenotypes during the course of evolution.

Adaptation, Physiological↗

Structural convergence during protein evolution.

Several recent protein crystallographic structure determinations have demonstrated the existence of considerable tertiary structural similarity among proteins otherwise having little similarity in either amino acid sequence or biological function. In order to assess the possibility that such proteins may have arisen through processes of divergent evolution from a common ancestor, a graphical presentation is given which correlates the pattern of allowed single base substitutions defined by the genetic code with the associated changes in the structural properties of the encoded amino acids. The results show that while a large degree of structural conservation is evident due to codon synonomy, there is, in general, little tendency for the code to be structurally conservative in the majority of the cases where codon single-base changes result in amino acid substitutions. The possible consequences of this pattern of potential amino acid substitutions are discussed in relation to protein evolutionary processes.

Amino Acids↗