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Biomedical subjects

A M Guerrini

Publications and source records attributed to A M Guerrini.

At least 19 recordsLinked to original sources

Yeast linear plasmids with T2AG3 telomeres: TEL+CEN antagonism and genetic and molecular stability.

A linear plasmid containing ARS1, CEN4, and 48 bp of vertebrate (T2AG3) telomeric sequences at each end was used to transform Saccharomyces cerevisiae. Only circular plasmids that had lost the centromere and had retained the T2AG3 sequences were obtained, indicating that the vertebrate T2AG3 sequences and the yeast CEN4 could not be simultaneously present in this vector. This hypothesis was verified by removing the CEN4 sequence from the construct. In fact, the resulting transformants contained two classes of efficiently replicating linear plasmids: one of the expected size and one about twice as large. During subsequent growth, plasmids of the former, but not latter, class were subjected to concatemer formation. This can best be explained by recombination events involving the T2AG3 sequences at the ends of the molecule, since very similar centric and acentric linear plasmids bearing Tetrahymena telomeric ends replicated faithfully.

Centromere

Subtelomeric as well as telomeric sequences are lost from chromosomes in proliferating B lymphocytes.

B lymphocytes purified from peripheral blood can be normally cultured in vitro for only one doubling. They can undergo an unlimited number of cell divisions after transformation with a DNA tumor virus such as the Epstein-Barr virus. We have shown that the terminal restriction fragments of virus transformed B lymphocytes are shortened in the course of proliferation and that this process is accompanied by structural modifications. We have identified the sequences that are lost during the shortening process by hybridization to the canonical human telomeric simple repeat TTAGGG, to other simple sequences that are found at the ends of human chromosomes, and to a human subtelomeric sequence. We have observed that by 20 doublings over half the TTAGGG sequences, but few or no TGAGGG sequences, are lost from the TRFs. The subtelomeric sequence was removed from most of the TRFs on which it was present. The implications that these observations have on the problems of cell senescence and oncology are discussed.

B-Lymphocytes

On the level of plasmid-bearing cells in transformed cultures of Saccharomyces cerevisiae.

LC1, a YIP5-derived plasmid containing a human DNA fragment with ARS activity in yeast, has been used to study the replication of ARS plasmids in Saccharomyces cerevisiae. ARS plasmids carried in yeast hosts are normally mitotically unstable. In transformed cultures the fraction of cells that contain plasmid, measured by plating on selective media, is lower than would be expected from measured rates of plasmid loss. In the case of S. cerevisiae carrying either the plasmid LC1 or YRP17, the assay yields values of the order of 10-20% or 30-50% respectively. We have found that by doing a double nutritional upshift that involves conditioned medium and casamino acids, a population of cells can be defined that carry plasmid but are unable to grow on media that select for the plasmid marker. Thus the total fraction of cells that can be shown to contain plasmid increases to greater than 70%. To distinguish between the inability of plasmid to replicate in these cells and lack of expression of the selectable gene, cultures grown from single cells were analysed for the presence of plasmid DNA. In a substantial fraction of the population, plasmid DNA could be detected only by polymerase chain reaction and not by standard blotting and hybridization. These results suggest that plasmid is unable to replicate in these cells. Growth kinetics experiments with transformed cultures are consistent with the notion that only a small fraction of the cells contains plasmid capable of replication upon dilution into selective medium. Possible explanations for the phenomena observed are discussed.

Culture Media

Cloning a fragment from the telomere of the long arm of human chromosome 9 in a YAC vector.

The construction of a yeast artificial chromosome containing a human DNA insert is reported. This molecule of about 200 kb behaves as a native yeast chromosome since it has a very high mitotic stability and is present in the yeast transformant clone at a copy number similar to that of the resident chromosomes. Hybridization with the TTAGGG sequence demonstrates that this chromosome contains human telomeric sequences. In situ hybridization of the biotin-labelled artificial chromosome to metaphase human chromosomes shows that the insert occupies a telomeric position on the long arm of chromosome 9. Since the fragment was cloned as an EcoRI insert and not as a telomere, it is situated medially to the telomeric sequences and harbours telomere-associated sequences, that have been shown to contain the TTAGGG sequence. The fragment represents the end of the genetic map of chromosome 9 and thus can be used to characterize the sequence and the structure of the chromosomal region that runs from the end of the chromosome to the first gene.

Base Sequence

Functional telomere formation in yeast using synthetic C4A2 sequences.

A yeast artificial chromosome (YAC) was constructed with a native autonomous replicating sequence (ARS) flanked telomere at one end and a 50-bp synthetic oligonucleotide of C4A2 repeats at the other. This was done in order to determine whether the presence of the flanking ARS sequence is required for telomere function. This construct was introduced into two different yeast strains: one mutated in the recombination function RAD52 and the other wild type for this gene. Both strains gave rise to autonomously replicating artificial chromosomes. The molecules in the RAD52 strain were rearranged dimers terminating at both ends with Tetrahymena telomeres, whereas in the rad52 strain two classes of YACs were found: rearranged dimers and elements bearing an ARS-free telomere. The presence of the latter class of molecules confirmed the finding of Wellinger and Zakian (1989, Proc. Natl. Acad. Sci. USA 86, 973-977) that the flanking ARS is not required for telomere function. Furthermore, in this class of molecules the ARS-free telomeric end was shortened as a result of deletions that removed some distal pBR322 sequences and some C4A2 repeats. The size of the resulting YACs ranged from 7.7 to 9 kb, considerably below the size threshold found by Zakian et al. (1986, Mol. Cell. Biol. 6, 925-932) for CEN4 artificial plasmids. An explanation for the structural instability of the ARS-free end of the YACs is suggested.

Adenosine Triphosphate

Transformation of Saccharomyces cerevisiae and Schizosaccharomyces pombe with linear plasmids containing 2 micron sequences.

Linear plasmids were constructed by adding telomeres prepared from Tetrahymena pyriformis rDNA to a circular hybrid Escherichia coli-yeast vector and transforming Saccharomyces cerevisiae. The parental vector contained the entire 2 mu yeast circle and the LEU gene from S. cerevisiae. Three transformed clones were shown to contain linear plasmids which were characterized by restriction analysis and shown to be rearranged versions of the desired linear plasmids. The plasmids obtained were imperfect palindromes: part of the parental vector was present in duplicated form, part as unique sequences and part was absent. The sequences that had been lost included a large portion of the 2 mu circle. The telomeres were approximately 450 bp longer than those of T. pyriformis. DNA prepared from transformed S. cerevisiae clones was used to transform Schizosaccharomyces pombe. The transformed S. pombe clones contained linear plasmids identical in structure to their linear parents in S. cerevisiae. No structural re-arrangements or integration into S. pombe was observed. Little or no telomere growth had occurred after transfer from S. cerevisiae to S. pombe. A model is proposed to explain the genesis of the plasmids.

Ascomycota

Coding capacity of complementary DNA strands.

A Fortran computer algorithm has been used to analyze the nucleotide sequence of several structural genes. The analysis performed on both coding and complementary DNA strands shows that whereas open reading frames shorter than 100 codons are randomly distributed on both DNA strands, open reading frames longer than 100 codons ("virtual genes") are significantly more frequent on the complementary DNA strand than on the coding one. These "virtual genes" were further investigated by looking at intron sequences, splicing points, signal sequences and by analyzing gene mutations. On the basis of this analysis coding and complementary DNA strands of several eukaryotic structural genes cannot be distinguished. In particular we suggest that the complementary DNA strand of the human epsilon-globin gene might indeed code for a protein.

Animals

Levels of acid-soluble polyphosphate in growing cultures of Saccharomyces cerevisiae.

Short-chain acid-soluble polyphosphates were extracted from growing cultures of Saccharomyces cerevisiae, and the changes in the levels of these compounds were determined. The production of acid-soluble polyphosphates correlated with the mitochondrial activities since it occurred in two bursts in respiration-competent yeast cells and in only one burst in respiration-deficient yeast cells. The possible role of these compounds is discussed.

Adenine

Cytoplasmic and mitochondrial protein synthesis in the "petite-negative" yeast Kluyveromyces lactis. Cytoplasmic inheritance of resistance to tetracycline.

The growth of two strains of the "petite-negative" yeast Kluyveromyces lactis is inhibited by Tetracycline in different ways under the same culture conditions. Tetracycline resistant mutants of one strain have been isolated which can tolerate doses as high as 3000 microgram/ml of antibiotic. The segregation pattern of this character obtained by random spore analysis of the ascospores derived from the cross of the two strains strongly suggests that the resistance to tetracycline is under mitochondrial control.

Cytoplasm

Purification and properties of NADP-dependent glutamate dehydrogenase from yeast nuclear fractions.

1. NADP-dependent glutamate dehydrogenase (EC 1.4.1.4) extracted from nuclear fractions of Saccharomyces cerevisiae was partially purified. The final purification achieved was over 100-fold over the initial extract. 2. Cellulose acetate electrophoresis shows that the preparation is close to homogeneity and that the enzyme is slightly more anionic than cytoplasmic glutamate dehydrogenase. 3. The response of the nuclear activity to variation of pH, of inorganic phosphate and other electrolyte concentration and of the concentration of the reaction substrates has been investigated. Several differences were detected in comparison with cytoplasmic glutamate dehydrogenase.

Cell Nucleus

Studies on a temperature sensitive nuclear petite mutant of Saccharomyces cerevisiae: phenotypic reversibility of the mitochondrial functions.

1. We have studied the pleiotropic effect of a single-gene mutation of the pts mutant strain 1511 grown at 23 degrees C and 36 degrees C. 2. Growth of the mutant at the non-permissive temperature results in a decrease of respiration rate to about 50% after one generation and to less than 5% after five generations. The cytochrome spectra analysis revealed that only cytochrome c was present after growth at 36 degrees C. 3. Mitochondrial protein synthesis experiments in vivo demonstrated that the protein synthesizing system was not as rapidly inactivated by high temperature as the respiratory system. 4. The recovery of the respiratory capacity of the cells at 23 degrees C is complete but dependent on the de novo synthesis of a temperature sensitive protein.

Cell Nucleus

A human DNA telomeric fragment contains yeast ARS and mitotic stabilizing sequences.

A minilibrary of human DNA fragments was prepared in the vector YIP5 from a DNA preparation enriched for telomeric sequences. Screening of the library produced one clone that hybridized to the TTAGGG sequence. The cloned DNA fragment was shown to be telomeric by a number of criteria. In situ hybridization to metaphase human chromosomes showed that the fragment hybridized to the tips of all human chromosomes. The fragment contained at least two yeast autonomously replicating sequences (ARS) and stabilizing sequences, since it transformed Saccharomyces cerevisiae with high efficiency, giving rise to clones which were mitotically stable under non-selective growth.

Base Sequence