Evolution of replicative DNA polymerases in archaea and their contributions to the eukaryotic replication machinery
about
Structural insights into eukaryotic DNA replicationShared active site architecture between archaeal PolD and multi-subunit RNA polymerases revealed by X-ray crystallographyNovel Abundant Oceanic Viruses of Uncultured Marine Group II Euryarchaeota.Fusion of a superfamily 1 helicase and an inactivated DNA polymerase is a signature of common evolutionary history of Polintons, polinton-like viruses, Tlr1 transposons and transpovirons.Self-synthesizing transposons: unexpected key players in the evolution of viruses and defense systems.The logic of DNA replication in double-stranded DNA viruses: insights from global analysis of viral genomesChordopoxvirus protein F12 implicated in enveloped virion morphogenesis is an inactivated DNA polymerase.Archaeal Clusters of Orthologous Genes (arCOGs): An Update and Application for Analysis of Shared Features between Thermococcales, Methanococcales, and MethanobacterialesThe roles of family B and D DNA polymerases in Thermococcus species 9°N Okazaki fragment maturationCasposons: mobile genetic elements that gave rise to the CRISPR-Cas adaptation machinery.Archaeal DNA polymerases in biotechnology.Evolution of the archaeal and mammalian information processing systems: towards an archaeal model for human disease.DNA Polymerases Divide the Labor of Genome Replication.POLD1: Central mediator of DNA replication and repair, and implication in cancer and other pathologiesAsgard archaea illuminate the origin of eukaryotic cellular complexity.Eukaryotic DNA Replication Fork.Identification and characterization of a heterotrimeric archaeal DNA polymerase holoenzyme.DNA polymerases in biotechnology.Calcium-driven DNA synthesis by a high-fidelity DNA polymerase.Candidatus Nitrosocaldus cavascurensis, an Ammonia Oxidizing, Extremely Thermophilic Archaeon with a Highly Mobile Genome.The GAN Exonuclease or the Flap Endonuclease Fen1 and RNase HII Are Necessary for Viability of Thermococcus kodakarensis.Cultivation and Genomic Analysis of “Candidatus Nitrosocaldus islandicus,” an Obligately Thermophilic, Ammonia-Oxidizing Thaumarchaeon from a Hot Spring Biofilm in Graendalur Valley, Iceland.
P2860
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P2860
Evolution of replicative DNA polymerases in archaea and their contributions to the eukaryotic replication machinery
description
2014 nî lūn-bûn
@nan
2014 թուականին հրատարակուած գիտական յօդուած
@hyw
2014 թվականին հրատարակված գիտական հոդված
@hy
2014年の論文
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2014年論文
@yue
2014年論文
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2014年論文
@zh-hk
2014年論文
@zh-mo
2014年論文
@zh-tw
2014年论文
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name
Evolution of replicative DNA p ...... karyotic replication machinery
@ast
Evolution of replicative DNA p ...... karyotic replication machinery
@en
Evolution of replicative DNA p ...... karyotic replication machinery
@nl
type
label
Evolution of replicative DNA p ...... karyotic replication machinery
@ast
Evolution of replicative DNA p ...... karyotic replication machinery
@en
Evolution of replicative DNA p ...... karyotic replication machinery
@nl
prefLabel
Evolution of replicative DNA p ...... karyotic replication machinery
@ast
Evolution of replicative DNA p ...... karyotic replication machinery
@en
Evolution of replicative DNA p ...... karyotic replication machinery
@nl
P2860
P50
P3181
P356
P1476
Evolution of replicative DNA p ...... karyotic replication machinery
@en
P2860
P3181
P356
10.3389/FMICB.2014.00354
P407
P577
2014-01-01T00:00:00Z