荧光生物传感器 2012

Residual sarcoplasmic reticulum Ca2+ concentration after Ca2+ release in skeletal myofibers from young adult and old mice.

Pflugers Archiv : European journal of physiology Wang ZM, Tang S, Messi ML, Yang JJ, Delbono O
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组成图示

Residual sarcoplasmic reticulum Ca2+ ... 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

肌浆网腔内钙离子(sarcoplasmic reticulum Ca2+,SR Ca2+);样品基质:年轻成年与老年小鼠FDB骨骼肌纤维(全细胞电压钳、电穿孔表达CatchER)。

检测原理

CatchER为EGFP衍生低亲和Ca2+传感器,Kd约1.66 mM,off-rate约700 s−1,靶向SR腔。静息时SR腔内Ca2+浓度较高,CatchER处于结合态并产生较强荧光;当肌膜去极化或4-CmC直接激活RyR1时,SR腔Ca2+经RyR1释放,腔内Ca2+下降,Ca2+从CatchER解离,荧光下降。通过全细胞电压钳施加不同幅值、时长和频率的脉冲,以及ryanodine、CPA、saponin/ionomycin等药理学处理,可分别评估生理性释放、最大释放和残余钙。荧光变化经校准转换为Ca2+浓度,从而定量SR钙含量、释放速率和残余浓度。该检测为直接荧光换能,无核酸或酶催化放大。

检测灵敏度

原文未报告LOD、线性范围、灵敏度斜率或R^2;Kd: 1.66 mM;off-rate: ~700 s−1。

效应效果

CatchER可稳定追踪10–500 ms、1.6–150 Hz等不同刺激引起的SR Ca2+释放,且信号随去极化时长分级增大并在100 ms后趋于平台。ryanodine阻断RyR1后,28 min和55 min时信号幅度分别降至45±4%和0.3±0.02%,证明释放由RyR1介导。20 mM EGTA使CatchER谷值信号较0.2 mM增大2.6倍,但SR Ca2+恢复无显著差异。与Rhod-2胞质Ca2+瞬变相比,CatchER峰时差异无统计学意义。2 s重复去极化后,年轻与老年小鼠残余SR Ca2+分别为132±29 μM和220±37 μM,支持老年肌纤维兴奋-收缩脱耦。作者认为该方法优于需长时间染色的Fluo-5N,适用于生理与疾病SR钙动态研究。

传感器的构成

  • 基底/检测对象:小鼠FDB骨骼肌纤维(FDB myofiber),酶解分离并全细胞电压钳,提供SR微环境。
  • 表达/导入层:pcDNA3.1-CatchER质粒电穿孔导入FDB肌肉,2–3周后表达。
  • 识别/传感元件:CatchER(EGFP衍生低亲和Ca2+传感器,Kd 1.66 mM),靶向SR腔,结合Ca2+改变荧光。
  • 信号标记物:EGFP荧光基团,488 nm激发、528±25 nm发射,报告SR腔Ca2+浓度。
  • 对照指示剂:Rhod-2 AM(5 μM,568 nm激发、600 nm发射),记录胞质Ca2+瞬变。
  • 读出系统:Axiovert 200显微镜与Radiance 2100共聚焦line-scan成像,记录ΔF/F。
  • 药理刺激/验证:4-CmC(1 mM)激活RyR1,ryanodine(5 μM)阻断RyR1,CPA(15 μM)阻断SERCA,saponin/ionomycin通透化平衡。

中文摘要

关于骨骼肌纤维长时间去极化后肌浆网(SR)钙是否几乎耗竭或仍保留显著浓度,现有结论相互矛盾。解决该争议的关键是缺乏可靶向SR、具有低钙亲和力、快速解离动力学且能在成年及老年哺乳动物肌纤维中表达的遗传编码钙传感器。本研究使用新近设计的低亲和钙传感器CatchER(肌纤维中Kd约1.66 mM,off-rate约700 s−1)靶向SR,检测年轻成年与老年小鼠屈趾短肌(FDB)纤维中SR腔内钙释放。通过全细胞电压钳施加不同去极化脉冲,并用4-氯间甲酚(4-CmC)直接激活RyR1诱导最大SR钙释放。结果显示,CatchER能稳定追踪单次、重复及长时间刺激引起的SR钙释放;长时间去极化(2 s)后,老年小鼠纤维残余SR钙浓度(约220 μM)高于年轻小鼠(约132 μM)。结果表明生理条件下SR钙远未完全耗竭,并支持老年功能肌纤维中存在兴奋-收缩脱耦。

英文摘要

Contrasting information suggests either almost complete depletion of sarcoplasmic reticulum (SR) Ca(2+) or significant residual Ca(2+) concentration after prolonged depolarization of the skeletal muscle fiber. The primary obstacle to resolving this controversy is the lack of genetically encoded Ca(2+) indicators targeted to the SR that exhibit low-Ca(2+) affinity, a fast biosensor: Ca(2+) off-rate reaction, and can be expressed in myofibers from adult and older adult mammalian species. This work used the recently designed low-affinity Ca(2+) sensor (Kd = 1.66 mM in the myofiber) CatchER (calcium sensor for detecting high concentrations in the ER) targeted to the SR, to investigate whether prolonged skeletal muscle fiber depolarization significantly alters residual SR Ca(2+) with aging. We found CatchER a proper tool to investigate SR Ca(2+) depletion in young adult and older adult mice, consistently tracking SR luminal Ca(2+) release in response to brief and repetitive stimulation. We evoked SR Ca(2+) release in whole-cell voltage-clamped flexor digitorum brevis muscle fibers from young and old FVB mice and tested the maximal SR Ca(2+) release by directly activating the ryanodine receptor (RyR1) with 4-chloro-m-cresol in the same myofibers. Here, we report for the first time that the Ca(2+) remaining in the SR after prolonged depolarization (2 s) in myofibers from aging (~220 μM) was larger than young (~132 μM) mice. These experiments indicate that SR Ca(2+) is far from fully depleted under physiological conditions throughout life, and support the concept of excitation-contraction uncoupling in functional senescent myofibers.