about
Disrupting antibiotic resistance propagation by inhibiting the conjugative DNA relaxaseThe mechanism and control of DNA transfer by the conjugative relaxase of resistance plasmid pCU1Ribonucleotides are signals for mismatch repair of leading-strand replication errorsGenome-wide model for the normal eukaryotic DNA replication fork.Mismatch repair balances leading and lagging strand DNA replication fidelity.Tracking replication enzymology in vivo by genome-wide mapping of ribonucleotide incorporation.Topoisomerase 1-mediated removal of ribonucleotides from nascent leading-strand DNAEvidence that processing of ribonucleotides in DNA by topoisomerase 1 is leading-strand specific.Mismatch repair-independent tandem repeat sequence instability resulting from ribonucleotide incorporation by DNA polymerase ε.DNA polymerase zeta generates clustered mutations during bypass of endogenous DNA lesions in Saccharomyces cerevisiae.Low-fidelity DNA synthesis by the L979F mutator derivative of Saccharomyces cerevisiae DNA polymerase zeta.Hypermutation signature reveals a slippage and realignment model of translesion synthesis by Rev3 polymerase in cisplatin-treated yeast.Evidence that DNA polymerase δ contributes to initiating leading strand DNA replication in Saccharomyces cerevisiae.Winning the asymmetric war: new strategies for combating antibacterial resistance
P50
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P50
description
investigador
@es
researcher
@en
wetenschapper
@nl
name
Scott A Lujan
@en
Scott A Lujan
@nl
type
label
Scott A Lujan
@en
Scott A Lujan
@nl
prefLabel
Scott A Lujan
@en
Scott A Lujan
@nl
P31
P496
0000-0003-2400-8325