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Sequences of six genes and several open reading frames in the kinetoplast maxicircle DNA of Leishmania tarentolae.

The DNA sequence of approximately 80% of the transcribed region of the kinetoplast maxicircle DNA of Leishmania tarentolae was obtained, and structural genes were localized by comparison of the translated amino acid sequences with those of known mitochondrial genes from other organisms. By this method, the genes for cytochrome oxidase subunits I, II, and III, cytochrome b, and human mitochondrial unidentified reading frames 4 and 5 were identified. By comparing the amino acid sequences of the putative L. tarentolae genes with those of known genes, we conclude that TGA codes for tryptophan, as in most other mitochondrial systems. This is the only apparent change from the universal genetic code. The six identified structural genes show various degrees of divergence from the homologous genes in other species, with cytochrome oxidase subunit I being the most conserved and cytochrome oxidase subunit III being the least conserved. A comparison of the cytochrome b genes from L. tarentolae and Trypanosoma brucei showed that the ratio of transversions to transitions is 1:1, suggesting that these species diverged from each other more than 80 X 10(6) years ago. Several as yet unidentified open reading frames were also present in the maxicircle sequence. These data confirm that maxicircle DNA has a coding potential which typifies other mitochondrial systems.

Amino Acid Sequence↗

Simple proteomic checks for detecting noncoding RNA.

Proper validation can accelerate sequence-based discovery of proteins and protein-coding genes. Databases currently contain a backlog of experimentally unverified gene models and tentative assignments of observed transcripts to coding or noncoding RNA. We present and apply a general principle, founded on base composition and the genetic code and validated here by bulk 2-D gels, that can improve the reliability of such classifications and of the algorithms or pipelines that lead to them.

Base Composition↗

A statistical approach for analyzing structural and regulative information in prokaryotic genomes.

Although DNA is iconized as a straight double helix, it does not exist in this canonical form in biological systems. Instead, it is characterized by sequence dependent structural and dynamic deviations from the monotonous regularity of the canonical B-DNA. Despite the complexity of the system, we showed that DNA structural and dynamics large-scale properties can be predicted starting from the simple knowledge of nucleotide sequence by adopting a statistical approach. The paper reports the statistical analysis of large pools of different prokaryotic genes in terms of the sequence-dependent curvature and flexibility. Conserved features characterize the regions close to the Start Translation Site, which are related to their function in the regulation system. In addition, regular patterns with three-fold periodicity were found in the coding regions. They were reproduced in terms of the nucleotide frequency expected on the basis of the genetic code and the pertinent occurrence of the aminoacid residues.

Amino Acids↗

Molecular aspects of bladder cancer IV: gene therapy of bladder cancer.

Cancer gene therapy is the applied consequence of the intense research on cell function during the last decades. With the discovery of genes, the genetic code and gene functions many diseases, like bladder cancer, were linked to dysfunction of the cell's genetic material. Soon the wish for a direct treatment of the underlying cause of such genetically based diseases, a "gene therapy", arose and the first successful attempt in 1990 jumpstarted the development of gene therapies [Hum. Gene Ther. 4 (1993) 521], especially for cancer. To date treatment of bladder cancer remains a challenge to physicians. In spite of advances in diagnose and treatment over the last decades recurrence and progression rates remain high, especially in superficial bladder cancer. Gene therapy may provide the yet missing additional treatment to finally achieve a reduction of recurrence and progression. The variety of gene therapy strategies for bladder cancer developed or under investigation reflects the desire for a further treatment option for bladder cancer. This review intends to explain general strategies and state of the art approaches in bladder cancer gene therapy, highlight recent advances and give an outlook on what to expect from gene therapy in future.

Genetic Therapy↗

Gene therapy on renal-cell carcinoma: magic bullet or tragic insanity?

Correction of the aberrant genetic code as a means of rational therapy has been a challenge since the first discoveries of an abnormal genetic link to expression of certain disorders. Our growing understanding of the molecular basis of cancer has also led us into a new era in cancer therapy. The possibility of gene therapy represents one of the biggest potential returns on the investment in molecular biology research over the past several years. As a massive gene therapy attack mounts against many forms of malignancy employing various techniques, strategies, and concepts, there appears to be reason to be optimistic, with expectations thus far decidedly outweighing results. Scientists and clinicians have joined together to target directly the molecular basis of tumorigenesis through the restoration of tumor-suppressor gene function or inhibition of oncogene expression. In addition, scientists mapping the human genome have supplied us with a number of genes that can be used to destroy cancer cells selectively [e.g., the herpes simplex-thymidine kinase (HS-tk) gene], induce a potent antitumor immune response (e.g., interleukin 2), and afford protection to normal tissues from the toxic effects of standard chemotherapy [e.g., multidrug resistance gene type 1 (mdr 1)]. These new anticancer tools provide new opportunities for more specific tumor cell destruction in vivo without the common regional and systemic side effects related to conventional forms of chemotherapy, immunotherapy, radiation, and surgery. Hence, over the next 5-10 years, gene therapy is likely to become a realistic treatment option for certain cancers.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenoviridae↗

Concurrent neutral evolution of mRNA secondary structures and encoded proteins.

Messenger RNA sequences often have to preserve functional secondary structure elements in addition to coding for proteins. We present a statistical analysis of retroviral mRNA which supports the hypothesis that the natural genetic code is adapted to such complementary coding. These sequences are still able to explore efficiently the space of possible proteins by point mutations. This is borne out by the observation that, in stem regions of retroviral mRNA foldings, silent mutations on one strand are preferentially accompanied by conservative mutations on the other. Distances between amino acids based on physicochemical properties are used to quantify the conservation of protein function under the constraint of maintained RNA secondary structure. We find that preservation of RNA secondary structure by compensatory mutations is evolutionary compatible with the efficient search for new variants on the protein level.

Base Sequence↗

[Ethology of the family (natural models of family physiology)].

The Ethology of the Family allows in a first step to collect naturals models of family organisations. It results an extreme diversity where all family forms exist: maternal, paternal, biparental, solitary. However we can find in this notion of socialitary peogramme where a certain mode of social operation is inscribed in the genetic code.

Animals↗

Mistranslating tRNA variants impact the proteome and phosphoproteome of Saccharomyces cerevisiae.

Transfer RNAs (tRNAs) ensure accurate decoding of the genetic code. However, mutations in tRNAs can lead to mis-incorporation of an amino acid that differs from the genetic message in a process known as mistranslation. As mistranslating tRNAs modify how the genetic message is decoded, they have potential as therapeutic tools for diseases caused by nonsense and missense mutations. Despite this, they also produce proteome-wide mis-made proteins which can disrupt proteostasis. To better understand the impact of mistranslating tRNA variants, we profile the proteome and phosphoproteome of yeast expressing three different mistranslating tRNAs. While the overall impacts were similar, the extent of growth defects and proteome changes varied with the substitution type. Although the global impacts were modest, mistranslation influenced key cellular processes, including proteostasis, cell cycle and translation. These findings highlight the need to consider cellular consequences when developing mistranslating tRNAs for therapeutic applications.

mass spectrometry↗

The mutational demography of protein C deficiency.

The geographical distribution and prevalence of 256 single base-pair substitutions (105 of them being different) within the coding region of the human protein C (PROC) gene were correlated with their initial likelihoods of generation. A significant positive correlation was observed between these "mutational likelihoods" and the geographical dispersal of the PROC gene lesions within and between 16 different countries. This relationship could be attributed to the fact that, with few exceptions, high dispersal was only exhibited by CG-->TG and CG-->CA transitions, i.e. those substitutions that are known to arise de novo at the highest frequency. The statistical distribution of mutational likelihoods was as predicted on the basis of the PROC cDNA sequence alone, allowing however for the redundancy of the genetic code. These findings suggest (1) that genetic drift and lesion-specific selection have been of relatively minor importance in determining the mutational spectrum observed in the PROC gene and (2) that most multiple reports of particular substitutions in different geographical locations appear to reflect recurrent mutation rather than identity-by-descent.

Blood Coagulation Disorders↗

Codon usage in bacteria: correlation with gene expressivity.

The nucleic acid sequence bank now contains over 600 protein coding genes of which 107 are from prokaryotic organisms. Codon frequencies in each new prokaryotic gene are given. Analysis of genetic code usage in the 83 sequenced genes of the Escherichia coli genome (chromosome, transposons and plasmids) is presented, taking into account new data on gene expressivity and regulation as well as iso-tRNA specificity and cellular concentration. The codon composition of each gene is summarized using two indexes: one is based on the differential usage of iso-tRNA species during gene translation, the other on choice between Cytosine and Uracil for third base. A strong relationship between codon composition and mRNA expressivity is confirmed, even for genes transcribed in the same operon. The influence of codon use of peptide elongation rate and protein yield is discussed. Finally, the evolutionary aspect of codon selection in mRNA sequences is studied.

Amino Acid Sequence↗

Recent advances in prenatal screening and diagnosis of genetic disorders.

In any pregnancy, there is an approximate 3% to 5% chance that a fetal complication will occur. The most familiar prenatal diagnostics cannot be performed until the fetus is well into gestation, and most involve invasive procedures along with their inherent risks. In light of these facts, many noninvasive prenatal screening and diagnostic tests have been developed, the newest using recombinant deoxyribonucleic acid (DNA) technology in the examination of fetal cells. Through these procedures, genetic coding errors and chromosomal disruptions may be detected. This article discusses the currently available prenatal and screening diagnostic tests for genetic disorders with a focus on the latest technology.

Female↗

TIP: protein backtranslation aided by genetic algorithms.

UNLABELLED: Several applications require the backtranslation of a protein sequence into a nucleic acid sequence. The degeneracy of the genetic code makes this process ambiguous; moreover, not every translation is equally viable. The usual answer is to mimic the codon usage of the target species; however, this does not capture all the relevant features of the 'genomic styles' from different taxa. The program TIP ' Traducción Inversa de Proteínas') applies genetic algorithms to improve the backtranslation, by minimizing the difference of some coding statistics with respect to their average value in the target. AVAILABILITY: http://www.cmm.uchile.cl/genoma/tip/

Algorithms↗

Idiopathic neonatal arterial ischaemic stroke: a trio-based whole-exome sequencing study.

OBJECTIVE: To assess the contribution of rare coding genetic variants to idiopathic neonatal arterial ischaemic stroke (NAIS). DESIGN: Observational genetic study using trio-based whole-exome sequencing (WES). SETTING: Multicentre study. PATIENTS: 23 newborns diagnosed with idiopathic NAIS and their biological parents. INTERVENTIONS: WES-trio with a customised workflow for filtering and interpreting variants in de novo autosomal dominant and recessive inheritance models. MAIN OUTCOME MEASURES: Identification of pathogenic (P) or likely pathogenic (LP) variants potentially associated with NAIS. RESULTS: We identified 28 unique rare de novo variants in 28 genes across 23 newborns with NAIS. Under the autosomal recessive model, no candidate genes were identified. No common P/LP variant across the 23 newborns was detected. In-silico predictors and comprehensive knowledge-driven analysis highlighted PIK3CD (p.Gln431Arg) as a candidate gene in one patient with perforant stroke. However, no more cases were identified with PIK3CD variants, and functional studies are warranted to assess its pathogenicity impact. CONCLUSIONS: Trio-based WES did not identify a monogenic cause for idiopathic NAIS. Coding variants therefore appear unlikely to explain the underlying genetic base of the disease. Furthermore, PIK3CD (p.Gln431Arg) may contribute to perforant stroke, although it requires further association evidence. As the potential role of non-coding or structural variants in NAIS remains possible, genome-wide long-read sequencing approaches may provide further insights into the genetic architecture of this condition.

Humans↗

A bioassay based on recombinant DNA technology for determining selenium concentration.

The trace element selenium has recently attracted attention, particularly because (i) selenocysteine is involved in the active site of various prokaryotic and eukaryotic enzymes, some of which have a role in human health; (ii) selenocysteine incorporation into these proteins is coded by UGA codons; and (iii) as a result, selenocysteine is now considered to be the 21st amino acid in an expanded genetic code. Here, we built recombinant DNA constructs in which expression of the lac'Z gene is driven in Escherichia coli by UGA-directed selenocysteine incorporation. In this system, levels of beta-galactosidase activity are proportionally and specifically related to the presence and concentrations of several specific simple selenium derivatives. The system can thus be used as a sensitive bioassay for their determination. This bioassay is one of a few using recombinant DNA technology to provide a reporter for simple detection of a chemical trace element.

Bacterial Proteins↗

Primordial reading of genetic information.

From the consideration of general features of the anticodon loop and stem in tRNA and the properties of present-day translation, we put forward a plausible scenario to explain the evolution of the genetic code from a highly ambiguous triplet code to the present refined decoding system. Our model based on the reading of the code suggests that the anticodon of primordial tRNA could adopt either the 3' or the 5' stacked conformation permitting the formation of the "best two out of three" base pairs, either the first and second codon position or the second and third. Progressive acquisition of precise structural constraint and the modification of bases in the anticodon loop would give way eventually to the less ambiguous "two out of three" reading mechanism having only the 3' stacked conformation. Further adjustments of base composition and modification leads inevitably to the present generalized code. In this way the primordial code encoding 4-8 amino acids or related derivates evolves smoothly to the present code having 20 amino acids.

Biological Evolution↗

Distribution and inheritance of beta-amylase alleles in north European barley varieties.

Allelic diversity and inheritance of polymorphic sites of the intron III-exon IV region of the seed specific beta-amylase gene Bmy1 were studied in a set of 55 barley accessions composed mainly of old Latvian and Scandinavian commercial varieties and three Hordeum spontaneum lines from Israel. A CAPS-marker was used for genotyping the C698 --> T polymorphism encoding alleles of beta-amylase with different thermostability. The genotype C698 which is diagnostic for a more thermostable isoform of the beta-amylase was detected in 13 of the investigated accessions. In most cases the origin of the C698 genotype could be traced back to the old Danish variety Binder in the pedigree. However, this genotype was lost in later varieties originating from Binder. A 6+1 bp deletion event in intron III of the beta-amylase gene was in all cases linked to the presence of the C698 mutation, while the repeat number of a microsatellite in intron III had no correlation to the presence of the C698 mutation. Sequence analysis revealed a number of haplotypes within exon IV that did not result in amino acid changes due to the degenerated genetic code.

Alleles↗

The hidden code in genomics: a tool for gene discovery.

Among new insights coming from the completion of sequencing of the human genome, reported in Nature and Science, are clues of how evolution has increased the complexity of species, and in particular how the genetic code has enabled this process. It is clear that life has not only evolved by increasing the number of genes, but also by ingeniously evolving an efficient code for expressing diversity in the building blocks (i.e. the amino acids). The rules of nucleic acid base pairing and the classification of amino acids according to hydrophobicity/hydrophilicity relationships define a binary DNA code, which determines the general biophysical characteristics of proteins. Sense and antisense strands can encode protein segments having inverted and complementary hydropathy. The underlying binary code controls association and dissociation of proteins and presumably represents a primordial code that might have emerged in the early stages of self-organizing biochemical cycles. It is the purpose of this communication to provide a perspective of the code in the context of a binary language from its primordial origin to its present day format and to propose to use this code as a genomic mining tool.

Expressed Sequence Tags↗

Dmbx1 is a paired-box containing gene specifically expressed in the caudal most brain structures.

Homeobox genes encode a particular class of transcription factors that are involved in several different developmental processes such as specification of regional identity, cell determination and proliferation. In particular, during early brain morphogenesis, they provide a genetic code, which generates single rhombomere identity in the hindbrain (Science 284 (1999) 2168) and interneurons specification in the ventral neural tube (Nat. Rev. Genet. 1 (2000) 20). We have isolated a paired homeobox containing gene, which has been recently named Dmbx1 (Mech. Dev. 110 (2002) 241). Dmbx1 protein can be listed into the paired-like class, due to the highest homology in its homeodomain, with several other members of this family. With the exception of olfactory neurons, Dmbx1 is expressed only in the developing central nervous system and in particular during early determination and successive differentiation of the midbrain and caudal diencephalon. Interestingly, Dmbx1 expression labels cerebellar granule progenitors at the onset of differentiation and spinal cord V0 interneurons.

Amino Acid Sequence↗