传感器类型
荧光生物传感器
检测对象
Src激酶活性(Src kinase activity)、EGF诱导的Src介导酪氨酸磷酸化信号(Src signaling);样品基质:HeLa细胞(活细胞,血清饥饿后EGF刺激)
检测原理
EGF刺激HeLa细胞后激活Src激酶并诱导局部H2O2产生。H2O2氧化PTP活性位点半胱氨酸,抑制PTP活性,使Src对生物传感器底物肽的磷酸化占优势。Src磷酸化底物肽后,传感器构象改变,ECFP与Ypet空间分离,FRET效率下降,CFP/YFP发射比升高;PTP去磷酸化则使比值回落。通过458 nm激发分别采集CFP和YFP通道,计算比值并归一化,得到信号动力学。峰值幅度PAS、持续时间DS和积分强度ISS随H2O2水平变化,体现H2O2通过抑制PTP调节信号幅度与持续时间。
检测灵敏度
原文未报告LOD、线性范围、灵敏度斜率或R^2。
效应效果
该FRET传感器在活细胞中比率化监测Src信号。对照组PAS 1.14±0.06,DS 57.9±4.2 min,ISS 53.1±3.8(n=7)。PP1使PAS降至0.74±0.05、ISS降至35.0±3.4,DS不变;钒酸盐使DS升至110.8±8.4 min、PAS 1.33±0.06、ISS 78.7±2.8,验证参数反映Src/PTP活性。Rac1-N17或PrxI-Y194F降低H2O2后信号减弱,钒酸盐或1 mM H2O2可恢复。100 μM H2O2使PAS 0.60±0.04,500 μM/1 mM升至1.30±0.04/1.44±0.05。未报告RSD/回收率,优于Western blot时空分辨率。
传感器的构成
- 荧光供体:ECFP,458 nm激发、470–500 nm发射,作为FRET供体
- 荧光受体:Ypet(Venus突变体S208F/V224L/H231E/D234N),520–560 nm发射,作为FRET受体
- 识别元件:Src SH2结构域与Src底物肽,响应Src激酶/PTP介导的酪氨酸磷酸化/去磷酸化
- 信号换能:磷酸化使ECFP与Ypet空间分离,降低FRET效率,CFP/YFP发射比升高;去磷酸化使比值降低
- 表达载体:编码Src biosensor的质粒(plasmid),用于HeLa细胞转染表达
- 成像基质:HeLa细胞,血清饥饿后接受EGF刺激,作为活细胞传感环境
中文摘要
可逆氧化是蛋白酪氨酸磷酸化调控的重要机制。生长因子刺激后产生的过氧化氢(H2O2)被认为可抑制蛋白酪氨酸磷酸酶(PTP)活性,从而使蛋白酪氨酸激酶(PTK)提高蛋白酪氨酸磷酸化稳态水平,推动信号传播。然而,H2O2对酪氨酸磷酸化信号动力学的影响,尤其在活细胞中,仍不清楚。本研究采用基于荧光共振能量转移(FRET)的基因编码Src激酶特异性生物传感器,对表皮生长因子(EGF)诱导的Src介导酪氨酸磷酸化信号动力学进行成像,并在升高或降低H2O2水平条件下考察其动力学。通过定量分析信号峰值幅度、持续时间和积分信号强度,证明H2O2通过抑制PTP活性调节信号的幅度与持续时间;H2O2对Src活化的作用主要由其依赖性的PTP抑制介导。此外,细胞内H2O2水平整体升高会削弱EGF诱导的Src信号。
英文摘要
Reversible oxidation is emerging as an important regulatory mechanism in protein tyrosine phosphorylation. Generation of hydrogen peroxide (H(2)O(2)), upon growth factor stimulation, is hypothesized to inhibit activity of protein tyrosine phosphatases (PTPs). This ensures that protein tyrosine kinases can elevate the steady-state level of protein tyrosine phosphorylation, which then allows propagation of the tyrosine phosphorylation signal. However, the effects of H(2)O(2) on the kinetics of tyrosine phosphorylation signaling remain poorly understood, especially in living cells. Therefore, we used a genetically encoded Src kinase-specific biosensor based on fluorescence resonance energy transfer (FRET) to image the kinetics of the Src-mediated tyrosine phosphorylation signaling (Src signaling) induced by epidermal growth factor (EGF). We examined the kinetics under increased and decreased H(2)O(2) levels. Through a straightforward, quantitative analysis method which characterized the signaling kinetics, we demonstrated that H(2)O(2) modulated the amplitude and duration of the signal by inhibiting PTPs' activity. Our evidence also suggested the effect of H(2)O(2) on Src activation is mediated by H(2)O(2)-dependent inhibition of PTPs. Furthermore, we provide evidence showing global elevation of intracellular H(2)O(2) level attenuates EGF-induced Src signaling.