荧光生物传感器 2008

Regulation of chromatin binding by a conformational switch in the tail of the Ran exchange factor RCC1.

The Journal of cell biology Hao Y, Macara IG
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组成图示

Regulation of chromatin binding by a ... 传感器构成示意图

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传感器类型

荧光生物传感器

检测对象

RCC1构象/染色质结合状态(RCC1 conformational switch/chromatin binding)、Ran结合(Ran binding)、DNA结合(DNA binding)、组蛋白结合(histone binding)、importin-β3结合(Impβ3 binding);样品基质:HEK293T或MDCK细胞裂解液、活细胞及重组蛋白缓冲液

检测原理

CFP-RCC1-YFP将CFP供体与YFP受体分别连接于RCC1 N端和C端。当Ran(T24N)结合RCC1本体时,诱导N端尾发生变构开关,使尾远离本体,改变CFP与YFP之间的距离或偶极取向,降低FRET效率,表现为YFP/CFP发射比下降、CFP发射上升。DNA结合N端尾、importin-β3结合NLS同样使FRET效率呈剂量依赖下降;核心组蛋白结合RCC1本体则使两端靠近,使FRET效率升高。Ran(T24N)可覆盖组蛋白引起的FRET升高。信号通过430 nm激发下采集CFP/YFP发射并计算YFP/CFP比值读出,配体浓度升高时响应趋于饱和。

检测灵敏度

效应效果

该FRET生物传感器在HEK293T裂解液和重组蛋白中均显示高效FRET,对Impβ3、DNA和Ran(T24N)呈饱和性响应;BSA阴性对照无影响。Ran(Q69L)在无GTP/Mg2+时降低FRET,加入GTP/Mg2+后无变化,说明响应依赖Ran与RCC1结合。核心组蛋白使FRET升高,而Ran(T24N)在高浓度下可完全覆盖该升高。在透化MDCK细胞中,Ran(T24N)显著降低染色质结合态传感器的归一化FRET(NFRET),Ran(Q69L)无影响;活细胞共转染结果一致。对61个不同分裂期细胞定量显示,有丝分裂期FRET效率较间期轻微但一致下降,P<0.05或P<0.001。作者认为该传感器可用于实时监测RCC1染色质结合调控。

传感器的构成

  • 基底/表达基质:HEK293T或MDCK细胞及细胞裂解液,提供RCC1表达、染色质结合与FRET成像环境
  • 修饰/融合层:CFP-RCC1-YFP融合蛋白,将FRET供体CFP与受体YFP分别连接于RCC1 N端和C端
  • 识别元件层:RCC1本体及N端1–20 aa尾,识别DNA、核心组蛋白H2A/H2B、Ran和importin-β3(Impβ3)
  • 信号标记层:CFP供体与YFP受体,二者距离或取向变化改变FRET效率
  • 纯化标签层:His6与Flag标签,用于重组CFP-RCC1-YFP蛋白纯化
  • 换能/读出层:Fluorolog-3荧光光谱仪或Nikon/Zeiss倒置荧光显微镜+CCD相机,采集YFP/CFP发射并计算FRET效率

中文摘要

RCC1是Ran GTP酶唯一已知的鸟苷酸交换因子,在核质运输、纺锤体组装和核膜重建中发挥关键作用。RCC1通过DNA与组蛋白的双模式结合染色质,结合缺陷会导致染色体错误分离;apo-Ran可增强其染色质结合,但机制不清。本文证明RCC1 N端1–20氨基酸尾对DNA结合必不可少,却抑制组蛋白结合;apo-Ran显著促进RCC1与DNA和组蛋白的结合,且该效应依赖N端尾。作者构建了CFP-RCC1-YFP荧光共振能量转移(FRET)生物传感器,在HEK293T和MDCK细胞及重组蛋白体系中检测RCC1尾的构象变化。该传感器可响应Ran、importin-β3、DNA和核心组蛋白的结合,并在活细胞有丝分裂过程中报告FRET效率变化。研究提出Ran结合诱导RCC1尾发生变构开关,暴露组蛋白结合面并促进带正电尾与DNA结合。

英文摘要

RCC1 is the only known exchange factor for the Ran guanosine triphosphatase and performs essential roles in nuclear transport, spindle organization, and nuclear envelope formation. RCC1 binds to chromatin through a bimodal attachment to DNA and histones, and defects in binding cause chromosome missegregation. Chromatin binding is enhanced by apo-Ran. However, the mechanism underlying this regulation has been unclear. We now demonstrate that the N-terminal tail of RCC1 is essential for association with DNA but inhibits histone binding. Apo-Ran significantly promotes RCC1 binding to both DNA and histones, and these effects are tail mediated. Using a fluorescence resonance energy transfer biosensor, we detect conformational changes in the tail of RCC1 coupled to the two binding modes and in response to interactions with Ran and importin-alpha. The biosensor also reports changes accompanying mitosis in living cells. We propose that Ran induces an allosteric conformational switch in the tail that exposes the histone-binding surface on RCC1 and facilitates association of the positively charged tail with DNA.

关键词

RCC1RanFRET生物传感器构象开关染色质结合有丝分裂