3 resultados para transfer RNA

em Repositório Institucional da Universidade de Aveiro - Portugal


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The genetic code establishes the rules that govern gene translation into proteins. It was established more than 3.5 billion years ago and it is one of the most conserved features of life. Despite this, several alterations to the standard genetic code have been discovered in both prokaryotes and eukaryotes, namely in the fungal CTG clade where a unique seryl transfer RNA (tRNACAG Ser) decodes leucine CUG codons as serine. This tRNACAG Ser appeared 272±25 million years ago through insertion of an adenosine in the middle position of the anticodon of a tRNACGA Ser gene, which changed its anticodon from 5´-CGA-3´ to 5´-CAG-3´. This most dramatic genetic event restructured the proteome of the CTG clade species, but it is not yet clear how and why such deleterious genetic event was selected and became fixed in those fungal genomes. In this study we have attempted to shed new light on the evolution of this fungal genetic code alteration by reconstructing its evolutionary pathway in vivo in the yeast Saccharomyces cerevisiae. For this, we have expressed wild type and mutant versions of the C. albicans tRNACGA Ser gene into S. cerevisiae and evaluated the impact of the mutant tRNACGA Ser on fitness, tRNA stability, translation efficiency and aminoacylation kinetics. Our data demonstrate that these mutants are expressed and misincorporate Ser at CUGs, but their expression is repressed through an unknown molecular mechanism. We further demonstrate, using in vivo forced evolution methodologies, that the tRNACAG Ser can be easily inactivated through natural mutations that prevent its recognition by the seryl-tRNA synthetase. The overall data show that repression of expression of the mistranslating tRNACAG Ser played a critical role on the evolution of CUG reassignment from Leu to Ser. In order to better understand the evolution of natural genetic code alterations, we have also engineered partial reassignment of various codons in yeast. The data confirmed that genetic code ambiguity affects fitness, induces protein aggregation, interferes with the cell cycle and results in nuclear and morphologic alterations, genome instability and gene expression deregulation. Interestingly, it also generates phenotypic variability and phenotypes that confer growth advantages in certain environmental conditions. This study provides strong evidence for direct and critical roles of the environment on the evolution of genetic code alterations.

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A fidelidade da síntese proteica é fundamental para a estabilidade do proteoma e para a homeostasia celular. Em condições fisiológicas normais as células têm uma taxa de erro basal associada e esta muitas vezes aumenta com o envelhecimento e doença. Problemas na síntese das proteínas estão associados a várias doenças humanas e aos processos de envelhecimento. De facto, a incorporação de erros nas proteínas devido a tRNAs carregados pelas aminoacil-tRNA sintetases com o amino ácido errado causa doenças neurodegenerativas em humanos e ratos. Ainda não é claro como é que estas doenças se desenvolvem e se são uma consequência directa da disrupção do proteoma ou se são o resultado da toxicidade produzida pela acúmulação de proteínas mal traduzidas ao nível do ribossoma. Para elucidar como é que as células eucarióticas lidam com proteínas aberrantes e agregados proteicos (stress proteotóxico) desenvolvemos uma estratégia para destabilizar o proteoma. Para isso estabelecemos um sistema de erros de tradução em embriões de peixe zebra que assenta em tRNAs mutantes capazes de incorporar erradamente serina nas proteínas. As proteínas produzidas neste sistema despoletam as vias de resposta ao stress, nomeadamente a via da ubiquitina-proteassoma (UPP – “ubiquitin protesome pathway”) e a via do retículo endoplasmático (UPR – “unfolded protein response”). O stress proteotóxico gerado pelos erros de tradução altera a expressão génica e perfis de expressão de miRNAs, o desenvolvimento embrionário e viabilidade, aumenta a produção de espécies reactivas de oxigénio (ROS), leva ainda à acumulação de agregados proteicos e à disfunção mitocondrial. As malformações embrionárias e fenótipos de viabilidade que observámos foram revertidos por antioxidantes, o que sugere que os ROS desempenham papéis importantes nos fenótipos degenerativos celulares induzidos pela produção de proteínas aberrantes e agregação proteica. Estabelecemos ainda uma linha de peixe zebra transgénica para o estudo do stress proteotóxico. Este trabalho mostra que a destabilização do proteoma em embriões de peixe zebra com tRNAs mutantes é uma boa metodologia para estudar a biologia do stress proteotóxico visto que permite a agregação controlada do proteoma, mimetizando os processos de agregação de proteínas que ocorrem naturalmente durante o envelhecimento e em doenças conformacionais humanas.

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Although the genetic code is generally viewed as immutable, alterations to its standard form occur in the three domains of life. A remarkable alteration to the standard genetic code occurs in many fungi of the Saccharomycotina CTG clade where the Leucine CUG codon has been reassigned to Serine by a novel transfer RNA (Ser-tRNACAG). The host laboratory made a major breakthrough by reversing this atypical genetic code alteration in the human pathogen Candida albicans using a combination of tRNA engineering, gene recombination and forced evolution. These results raised the hypothesis that synthetic codon ambiguities combined with experimental evolution may release codons from their frozen state. In this thesis we tested this hypothesis using S. cerevisiae as a model system. We generated ambiguity at specific codons in a two-step approach, involving deletion of tRNA genes followed by expression of non-cognate tRNAs that are able to compensate the deleted tRNA. Driven by the notion that rare codons are more susceptible to reassignment than those that are frequently used, we used two deletion strains where there is no cognate tRNA to decode the rare CUC-Leu codon and AGG-Arg codon. We exploited the vulnerability of the latter by engineering mutant tRNAs that misincorporate Ser at these sites. These recombinant strains were evolved over time using experimental evolution. Although there was a strong negative impact on the growth rate of strains expressing mutant tRNAs at high level, such expression at low level had little effect on cell fitness. We found that not only codon ambiguity, but also destabilization of the endogenous tRNA pool has a strong negative impact in growth rate. After evolution, strains expressing the mutant tRNA at high level recovered significantly in several growth parameters, showing that these strains adapt and exhibit higher tolerance to codon ambiguity. A fluorescent reporter system allowing the monitoring of Ser misincorporation showed that serine was indeed incorporated and possibly codon reassignment was achieved. Beside the overall negative consequences of codon ambiguity, we demonstrated that codons that tolerate the loss of their cognate tRNA can also tolerate high Ser misincorporation. This raises the hypothesis that these codons can be reassigned to standard and eventually to new amino acids for the production of proteins with novel properties, contributing to the field of synthetic biology and biotechnology.