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Optical Coherence Tomography for Brain Imaging and Developmental Biology.用于脑成像和发育生物学的光学相干断层扫描技术
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Optogenetic pacing in Drosophila melanogaster.黑腹果蝇中的光遗传学起搏
Sci Adv. 2015 Oct 9;1(9):e1500639. doi: 10.1126/sciadv.1500639. eCollection 2015 Oct.
3
A Circadian Clock Gene, Cry, Affects Heart Morphogenesis and Function in Drosophila as Revealed by Optical Coherence Microscopy.光学相干显微镜揭示昼夜节律时钟基因Cry影响果蝇心脏形态发生和功能
PLoS One. 2015 Sep 8;10(9):e0137236. doi: 10.1371/journal.pone.0137236. eCollection 2015.
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Swept confocally-aligned planar excitation (SCAPE) microscopy for high speed volumetric imaging of behaving organisms.用于行为生物体高速体积成像的扫描共焦对齐平面激发(SCAPE)显微镜。
Nat Photonics. 2015 Feb;9(2):113-119. doi: 10.1038/nphoton.2014.323.
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Necessity of angiotensin-converting enzyme-related gene for cardiac functions and longevity of Drosophila melanogaster assessed by optical coherence tomography.通过光相干断层扫描评估血管紧张素转换酶相关基因对果蝇心脏功能和寿命的必要性。
J Biomed Opt. 2014 Jan;19(1):011014. doi: 10.1117/1.JBO.19.1.011014.
6
Swept source optical coherence microscopy using a 1310 nm VCSEL light source.使用1310纳米垂直腔面发射激光器(VCSEL)光源的扫频源光学相干显微镜。
Opt Express. 2013 Jul 29;21(15):18021-33. doi: 10.1364/OE.21.018021.
7
Silencing of the Drosophila ortholog of SOX5 in heart leads to cardiac dysfunction as detected by optical coherence tomography.沉默果蝇 SOX5 的同源物在心脏导致心脏功能障碍,通过光学相干断层扫描检测。
Hum Mol Genet. 2013 Sep 15;22(18):3798-806. doi: 10.1093/hmg/ddt230. Epub 2013 May 21.
8
Noninvasive imaging of heart chamber in Drosophila with dual-beam optical coherence tomography.利用双光束光学相干断层扫描技术对果蝇心脏腔室进行无创成像。
J Biophotonics. 2013 Sep;6(9):708-17. doi: 10.1002/jbio.201200164. Epub 2012 Nov 29.
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Annu Rev Genet. 2012;46:397-418. doi: 10.1146/annurev-genet-110711-155646. Epub 2012 Sep 4.
10
Imaging the subcellular structure of human coronary atherosclerosis using micro-optical coherence tomography.应用显微光相干断层成像术观察人冠状动脉粥样硬化的亚细胞结构。
Nat Med. 2011 Jul 10;17(8):1010-4. doi: 10.1038/nm.2409.

利用光学相干显微镜(OCM)对果蝇进行体内心脏功能的制备及纵向成像。

Drosophila Preparation and Longitudinal Imaging of Heart Function In Vivo Using Optical Coherence Microscopy (OCM).

作者信息

Men Jing, Jerwick Jason, Wu Penghe, Chen Mingming, Alex Aneesh, Ma Yutao, Tanzi Rudolph E, Li Airong, Zhou Chao

机构信息

Bioengineering Program, Lehigh University; Center for Photonics and Nanoelectronics, Lehigh University.

Center for Photonics and Nanoelectronics, Lehigh University; Department of Electrical and Computer Engineering, Lehigh University.

出版信息

J Vis Exp. 2016 Dec 12(118):55002. doi: 10.3791/55002.

DOI:10.3791/55002
PMID:28060288
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5226401/
Abstract

Longitudinal study of the heartbeat in small animals contributes to understanding structural and functional changes during heart development. Optical coherence microscopy (OCM) has been demonstrated to be capable of imaging small animal hearts with high spatial resolution and ultrahigh imaging speed. The high image contrast and noninvasive properties make OCM ideal for performing longitudinal studies without requiring tissue dissections or staining. Drosophila has been widely used as a model organism in cardiac developmental studies due to its high number of orthologous human disease genes, its similarity of molecular mechanisms and genetic pathways with vertebrates, its short life cycle, and its low culture cost. Here, the experimental protocols are described for the preparation of Drosophila and optical imaging of the heartbeat with a custom OCM system throughout the life cycle of the specimen. By following the steps provided in this report, transverse M-mode and 3D OCM images can be acquired to conduct longitudinal studies of the Drosophila cardiac morphology and function. The en face and axial sectional OCM images and the heart rate (HR) and cardiac activity period (CAP) histograms, were also shown to analyze the heart structural changes and to quantify the heart dynamics during Drosophila metamorphosis, combined with the videos constructed with M-mode images to trace cardiac activity intuitively. Due to the genetic similarity between Drosophila and vertebrates, longitudinal study of heart morphology and dynamics in fruit flies could help reveal the origins of human heart diseases. The protocol here would provide an effective method to perform a wide range of studies to understand the mechanisms of cardiac diseases in humans.

摘要

对小动物心跳进行纵向研究有助于理解心脏发育过程中的结构和功能变化。光学相干显微镜(OCM)已被证明能够以高空间分辨率和超高成像速度对小动物心脏进行成像。高图像对比度和非侵入性使OCM成为进行纵向研究的理想选择,无需组织解剖或染色。果蝇因其大量的人类疾病直系同源基因、与脊椎动物分子机制和遗传途径的相似性、短生命周期和低成本养殖,已被广泛用作心脏发育研究的模式生物。本文描述了在果蝇整个生命周期中使用定制OCM系统制备果蝇并对其心跳进行光学成像的实验方案。按照本报告提供的步骤,可以获取横向M模式和3D OCM图像,以对果蝇心脏形态和功能进行纵向研究。还展示了正面和轴向截面OCM图像以及心率(HR)和心脏活动期(CAP)直方图,以分析果蝇变态过程中的心脏结构变化并量化心脏动态,同时结合用M模式图像构建的视频直观地追踪心脏活动。由于果蝇与脊椎动物之间的遗传相似性,对果蝇心脏形态和动态的纵向研究可能有助于揭示人类心脏病的起源。本文的方案将提供一种有效的方法来进行广泛的研究,以了解人类心脏病的机制。