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Optogenetic pacing in Drosophila melanogaster

机译:果蝇的光遗传学起搏

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摘要

Electrical stimulation is currently the gold standard for cardiac pacing. However, it is invasive and nonspecific for cardiac tissues. We recently developed a noninvasive cardiac pacing technique using optogenetic tools, which are widely used in neuroscience. Optogenetic pacing of the heart provides high spatial and temporal precisions, is specific for cardiac tissues, avoids artifacts associated with electrical stimulation, and therefore promises to be a powerful tool in basic cardiac research. We demonstrated optogenetic control of heart rhythm in a well-established model organism, Drosophila melanogaster. We developed transgenic flies expressing a light-gated cation channel, channelrhodopsin-2 (ChR2), specifically in their hearts and demonstrated successful optogenetic pacing of ChR2-expressing Drosophila at different developmental stages, including the larva, pupa, and adult stages. A high-speed and ultrahigh-resolution optical coherence microscopy imaging system that is capable of providing images at a rate of 130 frames/s with axial and transverse resolutions of 1.5 and 3.9 μm, respectively, was used to noninvasively monitor Drosophila cardiac function and its response to pacing stimulation. The development of a noninvasive integrated optical pacing and imaging system provides a novel platform for performing research studies in developmental cardiology.
机译:当前,电刺激是心脏起搏的金标准。然而,它是侵入性的并且对心脏组织没有特异性。我们最近使用光遗传学工具开发了一种无创性心脏起搏技术,该技术广泛应用于神经科学。心脏的光遗传学起搏可提供较高的时空精度,是心脏组织特有的,可避免与电刺激相关的伪影,因此有望成为基础心脏研究的有力工具。我们在成熟的模型生物果蝇Drosophila melanogaster中证明了对心律的光遗传控制。我们开发了在他们的心脏中表达轻型阳离子通道Channelrhodopsin-2(ChR2)的转基因果蝇,并证明了在不同发育阶段(包括幼虫,和成虫阶段)表达ChR2的果蝇的成功光遗传学起搏。能够以130帧/秒的速度提供图像的轴向和横向分辨率分别为1.5和3.9μm的高速和超高分辨率光学相干显微镜成像系统用于无创监测果蝇的心脏功能及其对起搏刺激的反应。非侵入性集成光学起搏和成像系统的开发为进行发展性心脏病学的研究提供了一个新颖的平台。

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