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纯化蛋白和核提取物的单分子分析:8-氧鸟嘌呤糖苷酶 1 的见解。

Single-molecule analysis of purified proteins and nuclear extracts: Insights from 8-oxoguanine glycosylase 1.

机构信息

Department of Pharmacology and Chemical Biology, University of Pittsburgh School of Medicine, Pittsburgh, PA, USA; UPMC-Hillman Cancer Center, USA.

Department of Biochemistry and Molecular Biology, Department of Cancer Biology, University of Kansas Medical Center, Kansas City, KS 66160, USA.

出版信息

DNA Repair (Amst). 2024 Feb;134:103625. doi: 10.1016/j.dnarep.2024.103625. Epub 2024 Jan 17.

Abstract

By observing one molecule at a time, single-molecule studies can offer detailed insights about biomolecular processes including on rates, off rates, and diffusivity of molecules on strands of DNA. A recent technological advance (Single-molecule Analysis of DNA-binding proteins from Nuclear Extracts, SMADNE) has lowered the barrier to entry for single-molecule studies, and single-molecule dynamics can now be determined directly out of nuclear extracts, providing information in an intermediate environment between purified proteins in isolation and the heterogeneity of a nucleus. To compare and contrast the single-molecule DNA binding dynamics in nuclear extracts versus purified proteins, combined optical tweezers and fluorescence microscopy experiments were performed with purified GFP-tagged 8-oxoguanine glycosylase 1 (OGG1), purified GFP-OGG1 spiked into nuclear extracts, and nuclear extracts from human cells overexpressing GFP-OGG1. We observed differences in undamaged DNA binding during DNA damage search in each of the three conditions. Purified GFP-OGG1 engaged undamaged DNA for a weighted average lifetime of 5.7 s and 21% of these events underwent DNA diffusion after binding. However, unlike other glycosylases studied by SMADNE, OGG1 does not bind non-damaged DNA efficiently in nuclear extracts. In contrast, GFP-OGG1 binding dynamics on DNA substrates containing oxidative damage were relatively similar in all three conditions, with the weighted average binding lifetimes varying from 2.2 s in nuclear extracts to 7.8 s with purified GFP-OGG1 in isolation. Finally, we compared the purified protein and nuclear extract approaches for a catalytically dead OGG1 variant (GFP-OGG1-K249Q). This variant greatly increased the binding lifetime for oxidative DNA damage, with the weighted average lifetime for GFP-OGG1-249Q in nuclear extracts at 15.4 s vs 10.7 s for the purified protein. SMADNE will provide a new window of observation into the behavior of nucleic acid binding proteins only accessible by biophysicists trained in protein purification and protein labeling.

摘要

通过一次观察一个分子,单分子研究可以提供有关生物分子过程的详细见解,包括分子在 DNA 链上的速率、脱离速率和扩散率。最近的一项技术进步(来自核提取物的 DNA 结合蛋白的单分子分析,SMADNE)降低了单分子研究的进入门槛,现在可以直接从核提取物中确定单分子动力学,提供介于分离的纯化蛋白的中间环境和核的异质性之间的信息。为了比较和对比核提取物与纯化蛋白中单分子 DNA 结合动力学,我们使用纯化的 GFP 标记的 8-氧鸟嘌呤糖苷酶 1(OGG1)、纯化的 GFP-OGG1 掺入核提取物以及过表达 GFP-OGG1 的人细胞核提取物进行了结合光学镊子和荧光显微镜实验。我们观察到在每种情况下,在 DNA 损伤搜索过程中,未受损 DNA 的结合存在差异。纯化的 GFP-OGG1 与未受损 DNA 结合的加权平均寿命为 5.7 s,并且这些事件中有 21%在结合后发生 DNA 扩散。然而,与 SMADNE 研究的其他糖苷酶不同,OGG1 不能有效地在核提取物中结合未受损的 DNA。相比之下,在所有三种情况下,含有氧化损伤的 DNA 底物上的 GFP-OGG1 结合动力学相对相似,加权平均结合寿命从核提取物中的 2.2 s 变化到纯化 GFP-OGG1 中的 7.8 s 。最后,我们比较了催化失活的 OGG1 变体(GFP-OGG1-K249Q)的纯化蛋白和核提取物方法。该变体大大增加了氧化 DNA 损伤的结合寿命,核提取物中 GFP-OGG1-249Q 的加权平均寿命为 15.4 s,而纯化蛋白中的为 10.7 s。SMADNE 将为仅受过蛋白质纯化和蛋白质标记培训的生物物理学家提供观察核酸结合蛋白行为的新窗口。

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