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Gemma Gadaleta

Publications and source records attributed to Gemma Gadaleta.

5 recordsLinked to original sources

History of the Tfam gene in primates.

Tfam is a single copy nuclear gene mapping on chromosome 10 in human and mouse, 20 in rat and 12 in Presbytis cristata. It encodes for an HMG (high-mobility-group) protein showing a high affinity with the two transcriptional promoters and other mitochondrial DNA regions. It is an activator of mitochondrial transcription acting in the presence of mitochondrial RNA polymerase and of transcription factor B. Other interesting features of Tfam gene in human and rat are reported such as the existence of a smaller isoform, originated by an alternative splicing mechanism of the exon 5 (delta5 isoform) and the presence of different processed pseudogenes in addition to the active copy of the gene. In order to widen knowledge about Tfam gene and the appearance of some of its properties in the evolutionary history of primates, we have studied some aspects of this gene in different species. In particular we have determined its chromosomal localization, suggesting that its locus is highly conserved; we have searched for the presence of the delta5 isoform, demonstrating that it is present only in hominids; we have provided evidence of Tfam processed pseudogenes in the majority of the analysed genomes. Sequence data from this article have been deposited in the EMBL nucleotide database.

Animals↗

Pseudogenes in metazoa: origin and features.

The complete genome sequences with their annotations are a considerable resource in biology, particularly in understanding the global structure of the genetic material at the molecular level. The reason why some eukaryotic genomes contain large quantities of apparently unnecessary DNA, namely pseudogenes, while others seem to invest in more efficient thinning processes or are equipped with protection systems against parasitic elements still remains a mystery. Several genome-wide surveys have been undertaken to identify pseudogenes in the completely sequenced genome, bringing to light some differences both in their amount and distribution. Since pseudogenes are important resources in evolutionary and comparative genomics - as 'molecular fossils' - in this paper, a survey on the origins, features, abundance and localisation of the different pseudogenes is reported. As an example of genes producing processed pseudogenes, some experimental data obtained in the authors' laboratories from the study of a nuclear gene coding for the mitochondrial transcription factor A (mtTFA), a key regulator of mitochondrial biogenesis, are also reported.

Animals↗

Acetylation and level of mitochondrial transcription factor A in several organs of young and old rats.

To gain further information on the role of mitochondrial transcription factor A (TFAM) in mitochondrial biogenesis, we studied the post-translational modifications of the protein in 6- and 28-month-old rat liver. Mass spectrometry and immunoblot analysis revealed that TFAM was acetylated at a single lysine residue and that the level of acetylation did not change with age. The measurement of the content of TFAM and of mitochondrial DNA (mtDNA) in several organs (cerebellum, heart, kidney, and liver) of young and old rats showed an age-related increase of mtDNA and TFAM in all the organs analyzed, except in heart. These data are discussed in the light of the multiple roles of TFAM in mitochondrial biogenesis and of the age-related change of the mitochondrial transcription.

Acetylation↗

Human mitochondrial transcription factor A (mtTFA): gene structure and characterization of related pseudogenes.

Mitochondrial transcription factor A (mtTFA or Tfam) is a 25 kDa protein encoded by a nuclear gene and imported to mitochondria, where it functions as a key regulator of mammalian mitochondrial (mt) DNA transcription and replication. The coding sequence of the human mtTFA gene is reported in the literature and the sizes of few introns are known. In this paper we present the genomic structure of the human mtTFA gene along with the complete sequence of its six intronic regions. Three of the introns (I, III, VI) have been found to be less than 600 bp, while the other three were greater than 1.8 kb. In the course of this work, we discovered that, in addition to the active copy, different homologous sequences identified as processed pseudogenes psi h-mtTFA have been isolated and sequenced. Using an 'in silico' mapping approach we determined their locations on chromosomes 7, 11 and X. psi h-mtTFA locations are different from that of the gene, previously reported on chromosome 10. Transcription analysis by means of reverse transcriptase-polymerase chain reaction has shown that other than the RNA corresponding to the full-length transcript, an isoform lacking 96 bp is also present. Among the three sequenced pseudogenes only one of them located on chromosome 11 has been found to be transcribed in Jurkat cells under these culture conditions, even though transcription initiation and binding sites for different transcription factors have also been found upstream from the other two pseudogenes.

Chromosome Mapping↗

Characterization of the mtTFA gene and identification of a processed pseudogene in rat.

Mitochondrial DNA replication and transcription are regulated from essential nucleus-encoded components that interact with the mitochondrial (mt) D-loop region. Among these there is the mitochondrial transcription factor A (mtTFA or Tfam). We have determined the sequence of the cDNA mtTFA in rat and have demonstrated that the gene has a mosaic organization with six introns whose sizes we have calculated. A differential splicing transcript lacking exon 5 has been detected in all assayed tissues and represents 9.85% of the full length transcript. Beside the gene which is homologous to the one found in man and mouse, rat nuclear genome contains at least 12 copies of this gene or genome fragments with high similarity to mtTFA. We have determined the sequence of one of these copies. This resulted to have 76.26% similarity to the active gene but to lack introns, suggesting it might be a processed pseudogene. RT-PCR experiments have demonstrated that this pseudogene (psi mtTFA) is transcribed in liver tissue.

Alternative Splicing↗