Laboratory of DNA Replication and Genome Stability, Institute of Biochemistry and Biophysics, Polish Academy of Sciences, Warsaw 02-106, Poland.
Department of Medical Biochemistry and Cell Biology, University of Gothenburg, Gothenburg 40530, Sweden.
Nucleic Acids Res. 2023 Feb 28;51(4):1766-1782. doi: 10.1093/nar/gkad038.
In Escherichia coli, replication of both strands of genomic DNA is carried out by a single replicase-DNA polymerase III holoenzyme (pol III HE). However, in certain genetic backgrounds, the low-fidelity TLS polymerase, DNA polymerase V (pol V) gains access to undamaged genomic DNA where it promotes elevated levels of spontaneous mutagenesis preferentially on the lagging strand. We employed active site mutants of pol III (pol IIIα_S759N) and pol V (pol V_Y11A) to analyze ribonucleotide incorporation and removal from the E. coli chromosome on a genome-wide scale under conditions of normal replication, as well as SOS induction. Using a variety of methods tuned to the specific properties of these polymerases (analysis of lacI mutational spectra, lacZ reversion assay, HydEn-seq, alkaline gel electrophoresis), we present evidence that repair of ribonucleotides from both DNA strands in E. coli is unequal. While RNase HII plays a primary role in leading-strand Ribonucleotide Excision Repair (RER), the lagging strand is subject to other repair systems (RNase HI and under conditions of SOS activation also Nucleotide Excision Repair). Importantly, we suggest that RNase HI activity can also influence the repair of single ribonucleotides incorporated by the replicase pol III HE into the lagging strand.
在大肠杆菌中,基因组 DNA 的两条链的复制都是由单个复制酶-DNA 聚合酶 III 全酶(pol III HE)进行的。然而,在某些遗传背景下,低保真度的 TLS 聚合酶,DNA 聚合酶 V(pol V)能够进入未受损的基因组 DNA,在那里它促进自发突变率的升高,特别是在滞后链上。我们利用 pol III 的活性位点突变体(pol IIIα_S759N)和 pol V(pol V_Y11A),在正常复制条件下以及 SOS 诱导下,在全基因组范围内分析核苷酸的掺入和从大肠杆菌染色体中的去除。使用各种方法针对这些聚合酶的特定性质(lacI 突变谱分析、lacZ 回复测定、HydEn-seq、碱性凝胶电泳),我们提供的证据表明,大肠杆菌中两条 DNA 链上的核糖核苷酸修复是不平等的。虽然核糖核酸酶 HII 在先导链核糖核苷酸切除修复(RER)中起主要作用,但滞后链还受到其他修复系统(核糖核酸酶 HI 和 SOS 激活条件下的核苷酸切除修复)的影响。重要的是,我们认为核糖核酸酶 HI 的活性也可以影响复制酶 pol III HE 掺入滞后链的单个核糖核苷酸的修复。