荧光生物传感器 2011

Fluorescence resonance energy transfer-based sensor Camui provides new insight into mechanisms of calcium/calmodulin-dependent protein kinase II activation in intact cardiomyocytes.

Circulation research Erickson JR, Patel R, Ferguson A, Bossuyt J, Bers DM
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组成图示

Fluorescence resonance energy transfe... 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

钙/钙调蛋白依赖性蛋白激酶II激活状态(CaMKII activation state);样品基质:兔心室肌细胞、HEK293细胞裂解液

检测原理

Camui为基因编码比率型FRET传感器,全长CaMKIIα两端分别融合CFP和YFP。静息时CaMKII处于自抑制构象,CFP与YFP距离近,发生FRET,YFP荧光较高而CFP较低。当Ca2+/CaM结合调控域后,催化域与调控域分离,CFP-YFP距离增大,FRET降低,表现为CFP荧光增加、YFP荧光降低,FCFP/FYFP比值升高。T286自磷酸化和M280/281氧化可阻止调控域与催化域复结合,使CaMKII在Ca2+/CaM解离后仍保持激活,因此比值持续升高。通过T286A和CM280/281VV突变体可分别消除自磷酸化或氧化贡献,从而区分不同激活机制。信号无需外源标记或化学放大,直接以荧光比反映CaMKII构象与激活状态。

检测灵敏度

原文未报告LOD、线性范围、灵敏度斜率或相关系数。

效应效果

Camui在兔心室肌细胞中富集于Z线,基础FCFP/FYFP接近失活水平。YFP漂白86%时CFP增加约10%,FRET效率约12%;CaM滴定最大增加约60%,KD约10 nM。电刺激频率升高使WT Camui激活增强,T286A在1 Hz响应减弱;AngII和ET-1主要经氧化依赖机制激活,Iso和PE主要依赖T286自磷酸化。KN-93阻断FRET变化而AIP不能,提示可区分抑制机制。相比破坏性抗体或裂解液酶活测定,Camui可非破坏、实时、亚细胞分辨监测CaMKII激活。

传感器的构成

  • 表达平台:兔心室肌细胞或HEK293细胞,作为Camui表达与检测的细胞基质
  • 表达载体:腺病毒载体(AdEasy系统),用于高效感染终末分化心肌细胞并表达Camui
  • 识别/换能元件:全长CaMKIIα(CaMKII),结合Ca2+/CaM并发生构象变化,介导自磷酸化与氧化调控
  • 供体荧光蛋白:CFP(K26R/N164H CFP),位于N端催化域附近,作为FRET供体
  • 受体荧光蛋白:YFP(Venus F46L YFP),位于C端调控/结合域附近,作为FRET受体
  • 机制突变体:T286A和CM280/281VV(或MM280/281VV),分别缺失自磷酸化位点和氧化敏感位点,用于区分激活机制
  • 读出系统:共聚焦显微镜(Zeiss LSM5 Pascal),测量CFP与YFP荧光并计算FCFP/FYFP比值

中文摘要

钙/钙调蛋白依赖性蛋白激酶II(CaMKII)是心脏细胞内信号转导的关键介质,但现有工具难以在活心肌细胞中动态评估其定位与激活状态。本研究采用新型荧光共振能量转移(FRET)生物传感器 Camui,其全长 CaMKII 两端分别融合 CFP 和 YFP,用于在兔心室肌细胞中测量 CaMKII 激活状态。结果显示,Camui 及其缺失自磷酸化位点(T286A)或氧化调控位点(CM280/281VV)的突变体均可作为 CaMKII 激活状态的有效探针。Camui 与 CaMKII 类似富集于 Z 线,基础激活水平低;其激活随电刺激频率升高而增加,但 T286A 突变体的高频响应减弱,提示 T286 自磷酸化主要参与高频和高幅钙瞬变条件下的激活。Camui 还可被 4 种神经激素激动剂激活:血管紧张素II和内皮素-1主要通过氧化依赖机制激活,异丙肾上腺素和去甲肾上腺素则具有显著的自磷酸化依赖成分。结论:Camui 是一种非破坏性工具,可在生理功能心肌细胞中实现 CaMKII 激活状态的空间和时间分辨测量,为阐明 CaMKII 信号机制提供新手段。

英文摘要

RATIONALE: Calcium/calmodulin-dependent protein kinase II (CaMKII) is a key mediator of intracellular signaling in the heart. However, the tools currently available for assessing dynamic changes in CaMKII localization and activation in living myocytes are limited. OBJECTIVE: We use Camui, a novel FRET-based biosensor in which full-length CaMKII is flanked by CFP and YFP, to measure CaMKII activation state in living rabbit myocytes. METHODS AND RESULTS: We show that Camui and mutant variants that lack the sites of CaMKII autophosphorylation (T286A) and oxidative regulation (CM280/1VV) serve as useful biosensors for CaMKIIδ activation state. Camui (wild-type or mutant) was expressed in isolated adult cardiac myocytes, and localization and CaMKII activation state were determined using confocal microscopy. Camui, like CaMKIIδ, is concentrated at the z-lines, with low baseline activation state. Camui activation increased directly with pacing frequency, but the maximal effect was blunted with the T286A, consistent with frequency-dependent phosphorylation of CaMKII at T286 mainly at high-frequency and high-amplitude Ca transients. Camui was also activated by 4 neurohormonal agonists. Angiotensin II and endothelin-1 activated Camui, largely through an oxidation-dependent mechanism, whereas isoproterenol- and phenylephrine-mediated mechanisms had a significant autophosphorylation-dependent component. CONCLUSIONS: Camui is a novel, nondestructive tool that allows spatiotemporally resolved measurement of CaMKII activation state in physiologically functioning myocytes. This represents a first step in using Camui to elucidate key mechanistic details of CaMKII signaling in live hearts and myocytes.