首页> 外文期刊>Nucleic Acids Research >Differential effects of single-stranded DNA binding proteins (SSBs) on uracil DNA glycosylases (UDGs) from Escherichia coli and mycobacteria.
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Differential effects of single-stranded DNA binding proteins (SSBs) on uracil DNA glycosylases (UDGs) from Escherichia coli and mycobacteria.

机译:单链DNA结合蛋白(SSB)对来自大肠杆菌和分枝杆菌的尿嘧啶DNA糖基化酶(UDG)的差异作用。

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Deamination of cytosines results in accumulation of uracil residues in DNA, which unless repaired lead to GC-->AT transition mutations. Uracil DNA glyco-sylase excises uracil residues from DNA and initiates the base excision repair pathway to safeguard the genomic integrity. In this study, we have investigated the effect of single-stranded DNA binding proteins (SSBs) from Escherichia coli (Eco SSB) and Mycobacterium tuberculosis (Mtu SSB) on uracil excision from synthetic substrates by uracil DNA glycosylases (UDGs) from E. coli, Mycobacterium smegmatis and M.tuberculosis (referred to as Eco -, Msm - and Mtu UDGs respectively). Presence of SSBs with all the three UDGs resulted in decreased efficiency of uracil excision from a single-stranded 'unstructured' oligonucleo-tide, SS-U9. On the other hand, addition of Eco SSB to Eco UDG, or Mtu SSB to Mtu UDG reactions resulted in increased efficiency of uracil excision from a hairpin oligonucleotide containing dU at the second position in a tetraloop (Loop-U2). Interestingly, the efficiency of uracil excision by Msm UDG from the same substrate was decreased in the presence of either Eco- or Mtu SSBs. Furthermore, Mtu SSB also decreased uracil excision from Loop-U2 by Eco UDG. Our studies using surface plasmon resonance technique demonstrated interactions between the homologous combinations of SSBs and UDGs. Heterologous combinations either did not show detectable interaction (Eco SSB with Mtu UDG) or showed a relatively weaker interaction (Mtu SSB with Eco UDG). Taken together, our studies suggest differential interactions between the two groups (SSBs and UDGs) of the highly conserved proteins. Such studies may provide important clues to design selective inhibitors against this important class of DNA repair enzymes.
机译:胞嘧啶的脱氨基化会导致DNA中尿嘧啶残基的积累,除非修复,否则会导致GC→AT过渡突变。尿嘧啶DNA糖基化酶从DNA上切除尿嘧啶残基,并启动碱基切除修复途径以保护基因组完整性。在这项研究中,我们研究了大肠杆菌(Eco SSB)和结核分枝杆菌(Mtu SSB)的单链DNA结合蛋白(SSBs)对大肠杆菌中尿嘧啶DNA糖基化酶(UDGs)从合成底物中尿嘧啶切除的影响。 ,耻垢分枝杆菌和结核分枝杆菌(分别称为Eco-,Msm-和Mtu UDG)。所有三个UDG均带有SSB,导致单链“非结构化”寡核苷酸SS-U9的尿嘧啶切除效率降低。另一方面,将Eco SSB添加到Eco UDG中,或将Mtu SSB添加到Mtu UDG反应中,导致在四环第二个位置(Loop-U2)中从含有dU的发夹寡核苷酸中尿嘧啶切除的效率提高。有趣的是,在存在Eco-或Mtu SSB的情况下,Msm UDG从同一底物切除尿嘧啶的效率降低了。此外,Mtu SSB还减少了Eco UDG从Loop-U2去除尿嘧啶的能力。我们使用表面等离振子共振技术的研究表明SSB和UDG的同源组合之间的相互作用。异源组合要么未显示可检测的相互作用(Eco SSB与Mtu UDG),要么显示相对较弱的相互作用(Mtu SSB与Eco UDG)。两者合计,我们的研究表明高度保守的蛋白质的两组(SSB和UDG)之间的差异相互作用。此类研究可能为设计针对此类重要的DNA修复酶的选择性抑制剂提供重要线索。

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