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使用单分子磁镊分析端粒蛋白-DNA 相互作用。

Analyzing Telomeric Protein-DNA Interactions Using Single-Molecule Magnetic Tweezers.

机构信息

State Key Laboratory of Medicinal Chemical Biology, College of Pharmacy, Nankai University.

State Key Laboratory of Medicinal Chemical Biology, College of Pharmacy, Nankai University;

出版信息

J Vis Exp. 2024 Aug 30(210). doi: 10.3791/67251.

Abstract

Telomeres, the protective structures at the ends of chromosomes, are crucial for maintaining cellular longevity and genome stability. Their proper function depends on tightly regulated processes of replication, elongation, and damage response. The shelterin complex, especially Telomere Repeat-binding Factor 1 (TRF1) and TRF2, plays a pivotal role in telomere protection and has emerged as a potential anti-cancer target for drug discovery. These proteins bind to the repetitive telomeric DNA motif TTAGGG, facilitating the formation of protective structures and recruitment of other telomeric proteins. Structural methods and advanced imaging techniques have provided insights into telomeric protein-DNA interactions, but probing the dynamic processes requires single-molecule approaches. Tools like magnetic tweezers, optical tweezers, and atomic force microscopy (AFM) have been employed to study telomeric protein-DNA interactions, revealing important details such as TRF2-dependent DNA distortion and telomerase catalysis. However, the preparation of single-molecule constructs with telomeric repetitive motifs continues to be a challenging task, potentially limiting the breadth of studies utilizing single-molecule mechanical methods. To address this, we developed a method to study interactions using full-length human telomeric DNA with magnetic tweezers. This protocol describes how to express and purify TRF2, prepare telomeric DNA, set up single-molecule mechanical assays, and analyze data. This detailed guide will benefit researchers in telomere biology and telomere-targeted drug discovery.

摘要

端粒是染色体末端的保护结构,对于维持细胞寿命和基因组稳定性至关重要。其正常功能取决于复制、伸长和损伤反应的严格调控过程。 shelterin 复合物,特别是端粒重复结合因子 1(TRF1)和 TRF2,在端粒保护中起着关键作用,并已成为药物发现的潜在抗癌靶点。这些蛋白质与重复的端粒 DNA 基序 TTAGGG 结合,有助于形成保护结构并募集其他端粒蛋白。结构方法和先进的成像技术提供了对端粒蛋白-DNA 相互作用的深入了解,但探测动态过程需要单分子方法。磁镊、光镊和原子力显微镜(AFM)等工具已被用于研究端粒蛋白-DNA 相互作用,揭示了 TRF2 依赖性 DNA 扭曲和端粒酶催化等重要细节。然而,用端粒重复基序制备单分子构建体仍然是一项具有挑战性的任务,可能限制了利用单分子力学方法进行的研究范围。为了解决这个问题,我们开发了一种使用磁镊研究全长人端粒 DNA 相互作用的方法。本方案描述了如何表达和纯化 TRF2、制备端粒 DNA、建立单分子力学测定以及分析数据。这份详细的指南将使端粒生物学和端粒靶向药物发现的研究人员受益。

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