Expansions of simple DNA repeats cause numerous hereditary diseases in humans. We analyzed the role of DNA polymerases in the instability of Friedreich’s ataxia (GAA)n repeats in a yeast experimental system. The elementary step of expansion corresponded to ∼160 bp in the wild-type strain, matching the size of Okazaki fragments in yeast. This step increased when DNA polymerase α was mutated, suggesting a link between the scale of expansions and Okazaki fragment size. Expandable repeats strongly elevated the rate of mutations at substantial distances around them, a phenomenon we call repeat-induced mutagenesis (RIM). Notably, defects in the replicative DNA polymerases δ and ∊ strongly increased rates for both repeat expansions and RIM. The in...
Friedreich's ataxia (FRDA) is caused by expansions of GAA•TTC repeats in the first intron of the hum...
This chapter presents an overview of studies on the replication of simple DNA repeats conducted in o...
The sources of genome instability, a hallmark of cancer, remain incompletely understood. One potenti...
SummaryExpansions of simple DNA repeats cause numerous hereditary diseases in humans. We analyzed th...
Friedreich’s ataxia (GAA)n repeats of various lengths were cloned into a Saccharymyces cerevisiae pl...
DNA repetitive sequences capable of adopting non-B DNA structures are a potent source of instability...
SummaryExpansions of simple DNA repeats cause numerous hereditary disorders in humans. Replication, ...
Most cells of solid tumors have very high levels of genome instability of several different types, i...
AbstractSimple repetitive tracts of DNA are unstable in all organisms thus far examined. In the yeas...
The mechanisms of trinucleotide repeat expansions, underlying more than a dozen hereditary neurologi...
AbstractSimple repetitive tracts of DNA are unstable in all organisms thus far examined. In the yeas...
Triplet repeat tracts occur throughout the human genome. Expansions of a (GAA)(n)/(TTC)(n) repeat tr...
Small DNA repeat tracts are located throughout the human genome. The tracts are unstable, and expan-...
Simple repetitive DNA sequences in the eukaryotic genome frequently alter in length. In wild-type st...
Expansions of microsatellite repeats are responsible for numerous hereditary diseases in humans, inc...
Friedreich's ataxia (FRDA) is caused by expansions of GAA•TTC repeats in the first intron of the hum...
This chapter presents an overview of studies on the replication of simple DNA repeats conducted in o...
The sources of genome instability, a hallmark of cancer, remain incompletely understood. One potenti...
SummaryExpansions of simple DNA repeats cause numerous hereditary diseases in humans. We analyzed th...
Friedreich’s ataxia (GAA)n repeats of various lengths were cloned into a Saccharymyces cerevisiae pl...
DNA repetitive sequences capable of adopting non-B DNA structures are a potent source of instability...
SummaryExpansions of simple DNA repeats cause numerous hereditary disorders in humans. Replication, ...
Most cells of solid tumors have very high levels of genome instability of several different types, i...
AbstractSimple repetitive tracts of DNA are unstable in all organisms thus far examined. In the yeas...
The mechanisms of trinucleotide repeat expansions, underlying more than a dozen hereditary neurologi...
AbstractSimple repetitive tracts of DNA are unstable in all organisms thus far examined. In the yeas...
Triplet repeat tracts occur throughout the human genome. Expansions of a (GAA)(n)/(TTC)(n) repeat tr...
Small DNA repeat tracts are located throughout the human genome. The tracts are unstable, and expan-...
Simple repetitive DNA sequences in the eukaryotic genome frequently alter in length. In wild-type st...
Expansions of microsatellite repeats are responsible for numerous hereditary diseases in humans, inc...
Friedreich's ataxia (FRDA) is caused by expansions of GAA•TTC repeats in the first intron of the hum...
This chapter presents an overview of studies on the replication of simple DNA repeats conducted in o...
The sources of genome instability, a hallmark of cancer, remain incompletely understood. One potenti...