Aamann Maria D, Hvitby Christina, Popuri Venkateswarlu, Muftuoglu Meltem, Lemminger Lasse, Skeby Cecilie K, Keijzers Guido, Ahn Byungchan, Bjørås Magnar, Bohr Vilhelm A, Stevnsner Tinna
Danish Center for Molecular Gerontology and Danish Aging Research Center, Department of Molecular Biology and Genetics, Aarhus University, Aarhus, Denmark.
Laboratory of Molecular Gerontology, National Institute on Aging, National Institutes of Health, Baltimore, MD, USA.
Mech Ageing Dev. 2014 Jan;135:1-14. doi: 10.1016/j.mad.2013.12.008. Epub 2014 Jan 7.
Cockayne Syndrome is a segmental premature aging syndrome, which can be caused by loss of function of the CSB protein. CSB is essential for genome maintenance and has numerous interaction partners with established roles in different DNA repair pathways including transcription coupled nucleotide excision repair and base excision repair. Here, we describe a new interaction partner for CSB, the DNA glycosylase NEIL2. Using both cell extracts and recombinant proteins, CSB and NEIL2 were found to physically interact independently of DNA. We further found that CSB is able to stimulate NEIL2 glycosylase activity on a 5-hydroxyl uracil lesion in a DNA bubble structure substrate in vitro. A novel 4,6-diamino-5-formamidopyrimidine (FapyA) specific incision activity of NEIL2 was also stimulated by CSB. To further elucidate the biological role of the interaction, immunofluorescence studies were performed, showing an increase in cytoplasmic CSB and NEIL2 co-localization after oxidative stress. Additionally, stalling of the progression of the transcription bubble with α-amanitin resulted in increased co-localization of CSB and NEIL2. Finally, CSB knockdown resulted in reduced incision of 8-hydroxyguanine in a DNA bubble structure using whole cell extracts. Taken together, our data supports a biological role for CSB and NEIL2 in transcription associated base excision repair.
科凯恩综合征是一种节段性早衰综合征,可由CSB蛋白功能丧失引起。CSB对基因组维护至关重要,并且在包括转录偶联核苷酸切除修复和碱基切除修复在内的不同DNA修复途径中具有众多已确定作用的相互作用伙伴。在此,我们描述了CSB的一种新的相互作用伙伴——DNA糖基化酶NEIL2。使用细胞提取物和重组蛋白,发现CSB和NEIL2在不依赖DNA的情况下发生物理相互作用。我们进一步发现,CSB能够在体外刺激NEIL2对DNA泡状结构底物上的5-羟基尿嘧啶损伤的糖基化酶活性。CSB还刺激了NEIL2一种新的对4,6-二氨基-5-甲酰胺基嘧啶(FapyA)的特异性切割活性。为了进一步阐明这种相互作用的生物学作用,进行了免疫荧光研究,结果显示氧化应激后细胞质中CSB和NEIL2的共定位增加。此外,用α-鹅膏蕈碱使转录泡的进展停滞导致CSB和NEIL2的共定位增加。最后,使用全细胞提取物敲低CSB导致在DNA泡状结构中8-羟基鸟嘌呤的切割减少。综上所述,我们的数据支持CSB和NEIL2在转录相关碱基切除修复中的生物学作用。