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Conservation of cytoplasmic poly (A)-containing RNA in mouse and rat.

By comparing the melting temperature of DNA-DNA duplexes between related species, it is shown that total single-copy DNA evolves at a faster rate that DNA which is transcribed into poly (A)-containing RNA. Such a comparison suggests that at least 70% of rat single-copy DNA does not code for protein.

Alleles↗

Computational identification of protein coding potential of conserved sequence tags through cross-species evolutionary analysis.

The identification of conserved sequence tags (CSTs) through comparative genome analysis may reveal important regulatory elements involved in shaping the spatio-temporal expression of genetic information. It is well known that the most significant fraction of CSTs observed in human-mouse comparisons correspond to protein coding exons, due to their strong evolutionary constraints. As we still do not know the complete gene inventory of the human and mouse genomes it is of the utmost importance to establish if detected conserved sequences are genes or not. We propose here a simple algorithm that, based on the observation of the specific evolutionary dynamics of coding sequences, efficiently discriminates between coding and non-coding CSTs. The application of this method may help the validation of predicted genes, the prediction of alternative splicing patterns in known and unknown genes and the definition of a dictionary of non-coding regulatory elements.

Algorithms↗

Inteins: structure, function, and evolution.

Inteins are genetic elements that disrupt the coding sequence of genes. However, in contrast to introns, inteins are transcribed and translated together with their host protein. Inteins appear most frequently in Archaea, but they are found in organisms belonging to all three domains of life and in viral and phage proteins. Most inteins consist of two domains: One is involved in autocatalytic splicing, and the other is an endonuclease that is important in the spread of inteins. This review focuses on the evolution and technical application of inteins and only briefly summarizes recent advances in the study of the catalytic activities and structures of inteins. In particular, this review considers inteins as selfish or parasitic genetic elements, a point of view that explains many otherwise puzzling aspects of inteins.

Amino Acid Motifs↗

Metabolite channeling in the origin of life.

A central question in the origin of life concerns whether primitive metabolites and catalysts interacted randomly in solution, as often envisaged, or whether they were arranged from the start in ordered metabolic complexes. The latter possibility would be consistent with the hypothesis of metabolite channeling in extant cells, which holds that intermediates in many pathways are transferred directly, without diffusion, between pathway enzymes. A model on this basis is proposed in which life originated autotrophically de novo in metabolic complexes organized on FeS2 (pyrite) mineral surfaces. Because metabolites and catalysts arose at specific sites in these complexes, they could interact specifically with neighbouring species in evolving pathways prior to the existence of protein enzymes with precise substrate binding sites. In successive stages, RNA catalysts and protein enzymes could be incorporated in these arrays. The overall process may be viewed as a molecular analogue of embryonic development, with the formation and positioning of each new component continuously transforming the whole. A corollary of the hypothesis relates to the evolution of translation and the genetic code. By virtue of channeling, biosynthetically related amino acids (e.g., aspartic acid and threonine) would have arisen close together in the complex. A second premise is that tRNAs with similar base sequences, and thus similar anticodons, were also clustered together in the complex and channeled to adjacent sites. As a result of these combined effects, tRNAs with similar anticodons would necessarily have been positioned close to, and thus more likely to have been charged with, metabolically related amino acids. This mechanism affords a new rationale for the observed codon structure of the genetic code, in which biosynthetically related amino acids possess similar codons.

Animals↗

[From genetics to law, the viewpoint of the physician].

OF ALL SCIENCES: Genetics, science of the transmission of hereditary characteristics, is probably that which interferes most with the Law. However, it was not genetics that provoked the ideological, social and political upheaval at the end of the 19th and during the 20th century; it was the theory of evolution, which preceded the discovery of genetics that was to provide the substratum of evolution mechanisms. Most of the lethal ideologies of the 20th century were based on this. As was the case of eugenics, with the participation of scientists, legislators and judges. GENETIC ENGINEERING: The logical application of the theory of evolution and universality of the genetic code, led to the development of the genome program. Today, sequencing of the human genome is almost finished, but many years will be needed before details of the physiological genetic manifestations will be known. Genes themselves would not generally be concerned by patenting rules. However, there is an international tendency towards envisaging the patenting of genes. DEVELOPMENT OF GENETIC TESTS AND THEIR INCREASING USE FOR MEDICAL PURPOSES: Are among the ethical problems raised by genetics. Genetic diagnosis, conducted before embryo transfer is called "pre-implantation". This raises the problem of an eventual pre-implantation eugenic selection and therefore requires strict control. Reinforcement of the right to knowledge of genetic origins is also one of the socio-legal problems raised by the progress in genetics.

Attitude of Health Personnel↗

Molecules, developmental modules, and phenotypes: a combinatorial approach to homology.

Most traditional views of homology rely on two unwarranted premises: the pervasively hierarchical nature of biology, inclusive of the levels of genes, development, and morphology and the linear mapping of genes onto developmental schedules and of developmental schedules onto phenotypes. These premises are only occasionally verified. Hierarchical behavior is negated by gene duplication and exon shuffling at the level of genes, by the coexistence of autonomous vs nonautonomous gene expression at the level of development, by ontogenetic repatterning at the level of morphology. The linearity of mapping of genes onto development is disturbed by genetic piracy, uncoupling of positional vs spatial control, and pleiotropy. The independence of developmental modules affects the mapping of development onto morphology and, finally, the peculiar topology of the epigenetic code affects the linearity of the gene to phenotype mapping. To cope with this complex behavior, a combinatorial approach to homology is recommended.

Animals↗

Testing ancient RNA-protein interactions.

The past decade in molecular biology has seen remarkable advances in the study of the origin and early evolution of life. The mathematical tools for analyzing DNA and protein sequences, coupled with the availability of complete microbial genome sequences, provide insight almost as far back as the age of the nucleic acids themselves. Experimental evolution in the laboratory and especially in vitro evolution of RNA provide insight into a hypothetical world where RNA, or a close relative, may have debuted as a primary functional and informational molecule. The ability to isolate new functional RNAs from random sequences now ultimately makes the world of possible primitive chemical interactions accessible even when the molecules or reactions are no longer present in modern species. Thus we can at last form direct experimental tests of specific models for the origin of RNA-protein associations, such as those that influenced the genetic code. This marks a turning point for probing the origin and early history of life at the molecular level.

Biological Evolution↗

An operational RNA code for amino acids and variations in critical nucleotide sequences in evolution.

An operational RNA code relates specific amino acids to sequences/structures in RNA hairpin helices which reconstruct the seven-base-pair acceptor stems of transfer RNAs. These RNA oligonucleotides are aminoacylated by aminoacyl tRNA synthetases. The specificity and efficiency of aminoacylation are generally determined by three or four nucleotides which are near the site of amino acid attachment. These specificity-determining nucleotides include the so-called "discriminator base" and one or two base pairs within the first four base pairs of the helix. With three examples considered here, nucleotide sequence variations between the eubacterial E. coli tRNA acceptor stems and their human cytoplasmic and mitochondrial counterparts are shown to include changes of some of the nucleotides known to be essential for aminoacylation by the cognate E. coli enzymes. If the general locations of the specificity-determining nucleotides are the same in E. coli and human RNAs, these RNA sequence variations imply a similar covariation in sequences/structures of the E. coli and human tRNA synthetases. These covariations would reflect the integral relationship between the operational RNA code and the design and evolution of tRNA synthetases.

Amino Acyl-tRNA Synthetases↗

Evolutionary origin of nonuniversal CUGSer codon in some Candida species as inferred from a molecular phylogeny.

CUG, a universal leucine codon, has been reported to be read as serine in various yeast species belonging to the genus Candida. To gain a deeper insight into the origin of this deviation from the universal genetic code, we carried out a phylogenetic analysis based on the small-subunit ribosomal RNA genes from some Candida and other related Hemiascomycetes. Furthermore, we determined the phylogenetic relationships between the tRNA(Ser)CAG, responsible for the translation of CUG, from some Candida species and the other serine and leucine isoacceptor tRNAs in C. cylindracea. We demonstrate that the group of Candida showing the genetic code deviation is monophyletic and that this deviation could have originated more than 150 million years ago. We also describe how phylogenetic analysis can be used for genetic code predictions.

Ascomycota↗

Genome organization, natural genetic engineering and adaptive mutation.

Bacterial evolution is considered in the light of molecular discoveries about genome organization, biochemical mechanisms of genetic change, and cellular control networks. Prokaryotic genetic determinants are organized as modular composites of coding sequences and protein-factor binding sites joined together during evolution. Studies of genetic change have revealed the existence of biochemical functions capable of restructuring the bacterial genome at various levels and joining together different sequence elements. These natural genetic engineering systems can be subject to regulation by signal transduction networks conveying information about the extracellular and intracellular environments. Mu-mediated araB-lacZ coding sequence fusions provide one example of adaptive mutation (increased formation of useful mutations under selection) and illustrate how physiological regulation can modulate the activity of a natural genetic engineering system under specific conditions.

Bacteria↗

The evolutionary change of the genetic code as restricted by the anticodon and identity of transfer RNA.

The discovery of non-universal genetic codes in several mitochondria and nuclear systems during the part ten years has necessitated a reconsideration of the concept that the genetic code is universal and frozen, as was once believed. Here, the flexibility of the relationship between codons and amino acids is discussed on the basis of the distribution of non-universal genetic codes in various organisms insofar as has been observed to date. Judging from the result of recent investigations into tRNA identity, it would appear that the non-participation of the anticodon in recognition by aminoacyl-tRNA synthetase has significantly influenced the variability of codons.

Animals↗

Amino acid codes in mitochondria as possible clues to primitive codes.

Differences between mitochondrial codes and the universal code indicate that an evolutionary simplification has taken place, rather than a return to a more primitive code. However, these differences make it evident that the universal code is not the only code possible, and therefore earlier codes may have differed markedly from the previous code. The present universal code is probably a "frozen accident." The change in CUN codons from leucine to threonine (Neurospora vs. yeast mitochondria) indicates that neutral or near-neutral changes occurred in the corresponding proteins when this code change took change took place, caused presumably by a mutation in a tRNA gene.

Amino Acids↗

Amplification of the sequences displaying the pattern RNY in the RNA world: the translation --> translation/replication hypothesis.

Based on previous considerations published in J. theor. Biol., new analyses of the organization of the genetic system are reported in this paper. We show that theoretical considerations about the order observed in the genetic code table support the idea of a primitive self-aminoacylation process achieved by primordial tRNAs. The physico-chemical constraints connected with this process may explain why a primitive genetic system predominantly uses sequences with the codonic pattern RNN (R=purine; Y=pyrimidine; N=any of the four bases) to polymerize the amino acids into peptides through translation. These considerations lead us to propose the Translation --> Translation/Replication hypothesis, which may explain why only RNA sequences with the pattern RNY, instead of less restrictive RNN, are susceptible to amplification. Using these ideas, supported by properties of symmetry, features of the genetic code may be connected with the replication of specific RNA sequences in the RNA world.

Amino Acids↗

Different stop codon usage in two pseudohypotrich ciliates.

Based on rRNA phylogeny, morphologic and morphogenetic characters, two major groups of hypotrich ciliates can be distinguished: euhypotrichs and pseudohypotrichs. Through the sequencing of actin genes, we show here that, interestingly, the pseudohypotrichs Dyophrys sp. and Euplotes vannus have a different stop codon usage. In fact, the stop codon usage of the former species resembles that of euhypotrichs. This unexpected result is used to discuss the origin and acquisition of genetic code deviations in ciliates.

Actins↗

Second codon positions of genes and the secondary structures of proteins. Relationships and implications for the origin of the genetic code.

The nucleotide frequencies in the second codon positions of genes are remarkably different for the coding regions that correspond to different secondary structures in the encoded proteins, namely, helix, beta-strand and aperiodic structures. Indeed, hydrophobic and hydrophilic amino acids are encoded by codons having U or A, respectively, in their second position. Moreover, the beta-strand structure is strongly hydrophobic, while aperiodic structures contain more hydrophilic amino acids. The relationship between nucleotide frequencies and protein secondary structures is associated not only with the physico-chemical properties of these structures but also with the organisation of the genetic code. In fact, this organisation seems to have evolved so as to preserve the secondary structures of proteins by preventing deleterious amino acid substitutions that could modify the physico-chemical properties required for an optimal structure.

Chemical Phenomena↗

Prions: an evolutionary perspective.

Studies in both prion-due diseases in mammals and some non-Mendelian hereditary processes in yeasts have demonstrated that certain proteins are able to transmit structural information and self-replication. This induces the corresponding conformational changes in other proteins with identical or similar sequences. This ability of proteins may have been very useful during prebiotic chemical evolution, prior to the establishment of the genetic code. During this stage, proteins (proteinoids) must have molded and selected their structural folding units through direct interaction with the environment. The proteinoids that acquired the ability to propagate their conformations (which we refer to as conformons) would have acted as reservoirs and transmitters of a given structural information and hence could have acted as selectors for conformational changes. Despite the great advantage that arose from the establishment of the genetic code, the ability to propagate conformational changes did not necessarily disappear. Depending on the degree of involvement of this capacity in biological evolution, we propose two not mutually exclusive hypotheses: (i) extant prions could be an atavism of ancestral conformons, which would have co-evolved with cells, and (ii) the evolution of conformons would have produced cellular proteins, able to transmit structural information, and, in some cases, participating in certain processes of regulation and epigenesis. Therefore, prions could also be seen as conformons of a conventional infectious agent (or one that co-evolved with it independently) that, after a longer or shorter adaptive period, would have interacted with conformons from the host cells.

Biological Evolution↗