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M Fitzgerald-Hayes

Publications and source records attributed to M Fitzgerald-Hayes.

23 records · Page 2Linked to original sources

Single base-pair mutations in centromere element III cause aberrant chromosome segregation in Saccharomyces cerevisiae.

In this paper we show that a 211-base pair segment of CEN3 DNA is sufficient to confer wild-type centromere function in the yeast Saccharomyces cerevisiae. We used site-directed mutagenesis of the 211-base pair fragment to examine the sequence-specific functional requirements of a conserved 11-base pair segment of centromere DNA, element III (5'-TGATTTATCCGAA-3'). Element III is the most highly conserved of the centromeric DNA sequences, differing by only a single adenine X thymine base pair among the four centromere DNAs sequenced thus far. All of the element III sequences contain specific cytosine X guanine base pairs, including a 5'-CCG-3' arrangement, which we targeted for single cytosine-to-thymine mutations by using sodium bisulfite. The effects of element III mutations on plasmid and chromosome segregation were determined by mitotic stability assays. Conversion of CCG to CTG completely abolished centromere function both in plasmids and in chromosome III, whereas conversion of CCG to TCG decreased plasmid and chromosome stability moderately. The other two guanine X cytosine base pairs in element III could be independently converted to adenine X thymine base pairs without affecting plasmid or chromosome stability. We concluded that while some specific nucleotides within the conserved element III sequence are essential for proper centromere function, other conserved nucleotides can be changed.

Base Composition↗

Nucleotide sequence comparisons and functional analysis of yeast centromere DNAs.

We determined the nucleotide sequence of DNA segments containing functional centromeres (CEN3 and CEN11) isolated from yeast chromosomes III and XI. The two centromere regions differ in primary nucleotide sequence, but contain structural features in common. Both centromere regions contain an extremely A + T-rich core segment 87-88 bp in length, flanked by two short sequences (14 bp and 11 bp) that are identical in both DNAs. These elements plus one additional 10 bp region of perfect homology are positioned in an almost identical spatial arrangement within the two centromere regions. Significant homologies are also observed among the sequences flanking the high A + T region and various satellite DNA sequences from higher eucaryotes, although no repeated sequences occur near the yeast centromeres. Centromere activity in vivo is maintained on relatively small DNA fragments (627 bp for CEN3 and 858 bp for CEN11), as assayed by mitotic stabilization of autonomously replicating ars plasmids in yeast.

Base Sequence↗

Isolation and subcloning analysis of functional centromere DNA (CEN11) from Saccharomyces cerevisiae chromosome XI.

We have cloned segments of yeast DNA containing the centromere XI-linked MET14 gene. This was done by selecting directly in Saccharomyces cerevisiae for complementation of a met14 mutation after transformation with a hybrid plasmid DNA genomic library. Genetic evidence indicates that functional centromere DNA (CEN11) from chromosome XI is also contained on the segment of S. cerevisiae DNA cloned in pYe(MET14)2. This plasmid is maintained stably in budding S. cerevisiae cultures and segregates predominantly 2+:20- through meiosis. The CEN11 element has been subcloned in vector YRp7' on an S. cerevisiae DNA fragment 900 base pairs in length [pYe(CEN11)10]. The mitotic and meiotic behavior of plasmids containing CEN11 plus a DNA replicator (ars) indicates that the centromere DNA sequences enable these plasmids to function as true minichromosomes in S. cerevisiae.

Base Sequence↗

Saccharomyces cerevisiae mutants defective in chromosome segregation.

We have devised a genetic screen to identify trans-acting factors involved in chromosome transmission in yeast. This approach was designed to potentially identify a subset of genes encoding proteins that interact with centromere DNA. It has been shown that mutations in yeast centromere DNA cause aberrant chromosome segregation during mitosis and meiosis. We reasoned that the function of an altered centromere should be particularly sensitive to changes in factors with which it interacts. We constructed a disomic strain containing one copy of chromosome III with a wild-type centromere and one copy of chromosome III bearing the SUP11 gene and a mutant CEN3. This strain forms white colonies with red sectors due to nondisjunction of the chromosome bearing the mutant centromere. After mutagenesis we picked colonies that exhibited increased nondisjunction of the mutant chromosome as evidenced by increased red-white sectoring. Using this approach, we have isolated three trans-acting chromosome nondisjunction (cnd) mutants that are defective in maintaining chromosomes during mitosis in yeast.

Base Sequence↗