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Single-molecule characterization of Fen1 and Fen1/PCNA complexes acting on flap substrates

机译:Fen1和Fen1 / PCNA复合物作用于襟翼底物的单分子表征

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摘要

Flap endonuclease 1 (Fen1) is a highly conserved structure-specific nuclease that catalyses a specific incision to remove 5' flaps in double-stranded DNA substrates. Fen1 plays an essential role in key cellular processes, such as DNA replication and repair, and mutations that compromise Fen1 expression levels or activity have severe health implications in humans. The nuclease activity of Fen1 and other FEN family members can be stimulated by processivity clamps such as proliferating cell nuclear antigen (PCNA); however, the exact mechanism of PCNA activation is currently unknown. Here, we have used a combination of ensemble and single-molecule Forster resonance energy transfer together with protein-induced fluorescence enhancement to uncouple and investigate the substrate recognition and catalytic steps of Fen1 and Fen1/PCNA complexes. We propose a model in which upon Fen1 binding, a highly dynamic substrate is bent and locked into an open flap conformation where specific Fen1/DNA interactions can be established. PCNA enhances Fen1 recognition of the DNA substrate by further promoting the open flap conformation in a step that may involve facilitated threading of the 5' ssDNA flap. Merging our data with existing crystallographic and molecular dynamics simulations we provide a solution-based model for the Fen1/PCNA/DNA ternary complex.
机译:Flap内切核酸酶1(Fen1)是高度保守的结构特异性核酸酶,可催化特定切口去除双链DNA底物中的5'皮瓣。 Fen1在关键细胞过程(例如DNA复制和修复)中起着至关重要的作用,而破坏Fen1表达水平或活性的突变对人类的健康有着严重的影响。 Fen1和其他FEN家族成员的核酸酶活性可以通过增生钳位来刺激,例如增殖细胞核抗原(PCNA)。但是,目前尚不清楚PCNA激活的确切机制。在这里,我们结合使用了集成和单分子Forster共振能量转移以及蛋白质诱导的荧光增强来解耦和研究Fen1和Fen1 / PCNA复合物的底物识别和催化步骤。我们提出了一个模型,其中在Fen1结合后,一个高度动态的底物被弯曲并锁定在一个开放的皮瓣构象中,在那里可以建立特定的Fen1 / DNA相互作用。 PCNA在可能涉及促进5'ssDNA皮瓣穿入的步骤中进一步促进开放的皮瓣构象,从而增强了对DNA底物的Fen1识别。将我们的数据与现有的晶体学和分子动力学模拟相结合,我们为Fen1 / PCNA / DNA三元复合物提供了基于解决方案的模型。

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