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Novel fluorescence resonance energy transfer-based reporter reveals differential calcineurin activation in neonatal and adult cardiomyocytes

机译:新型的基于荧光共振能量转移的报告基因揭示了新生和成年心肌细胞中钙调神经磷酸酶的激活差异

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The phosphatase calcineurin is a central component of many calcium signalling pathways, relaying calcium signals from the plasma membrane to the nucleus. It has critical functions in a multitude of systems, including immune, cardiac and neuronal. Given the widespread importance of calcineurin in both normal and pathological conditions, new tools that elucidate the spatiotemporal dynamics of calcineurin activity would be invaluable. Here we develop two separate genetically encoded fluorescence resonance energy transfer (FRET)-based sensors of calcineurin activation, DuoCaN and UniCaN. Both sensors showcase a large dynamic range and rapid response kinetics, differing primarily in the linker structure between the FRET pairs. Both sensors were calibrated in HEK293cells and their responses correlated well with NFAT translocation to the nucleus, validating the biological relevance of the sensor readout. The sensors were subsequently expressed in neonatal rat ventricular myocytes and acutely isolated adult guinea pig ventricular myocytes. Both sensors demonstrated robust responses in myocytes and revealed kinetic differences in calcineurin activation during changes in pacing rate for neonatal versus adult myocytes. Finally, mathematical modelling combined with quantitative FRET measurements provided novel insights into the kinetics and integration of calcineurin activation in response to myocyte Ca transients. In all, DuoCaN and UniCaN stand as valuable new tools for understanding the role of calcineurin in normal and pathological signalling.
机译:磷酸钙调磷酸酶磷酸酶是许多钙信号通路的重要组成部分,可将钙信号从质膜传递到细胞核。它在包括免疫,心脏和神经元在内的许多系统中都具有关键功能。考虑到钙调神经磷酸酶在正常和病理条件下的广泛重要性,阐明钙调神经磷酸酶活性的时空动态的新工具将是无价的。在这里,我们开发钙调神经磷酸酶激活的两个单独的基于遗传编码的荧光共振能量转移(FRET)的传感器,DuoCaN和UniCaN。两种传感器均显示出较大的动态范围和快速的响应动力学,主要区别在于FRET对之间的接头结构。两种传感器均在HEK293细胞中进行了校准,它们的响应与NFAT易位到核之间的相关性很好,从而验证了传感器读数的生物学相关性。传感器随后在新生大鼠心室肌细胞和急性分离的成年豚鼠心室肌​​细胞中表达。两种传感器均显示出对心肌细胞的强劲反应,并揭示了新生与成年心肌细胞起搏速率变化期间钙调神经磷酸酶激活的动力学差异。最后,数学建模与定量FRET测量相结合,提供了对钙调神经磷酸酶激活响应心肌Ca瞬变的动力学和整合的新见解。总之,DuoCaN和UniCaN是了解钙调神经磷酸酶在正常和病理信号中的作用的有价值的新工具。

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