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In vivo pump-probe optical coherence tomography imaging in Xenopus laevis

机译:非洲爪蟾体内泵浦探针光学相干断层扫描成像

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Currently, optical coherence tomography (OCT), is not capable of obtaining molecular information often crucial for identification of disease. To enable molecular imaging with OCT, we have further developed a technique that harnesses transient changes in light absorption in the sample to garner molecular information. A Fourier-domain Pump-Probe OCT (PPOCT) system utilizing a 532 nm pump and 830 nm probe has been developed for imaging hemoglobin. Methylene blue, a biological dye with well-know photophysics, was used to characterize the system before investigating the origin of the hemoglobin PPOCT signal. The first in vivo PPOCT images were recorded of the vasculature in Xenopus laevis. The technique was shown to work equally well in flowing and nonflowing vessels. Furthermore, PPOCT was compared with other OCT extensions which require flow, such as Doppler OCT and phase-variance OCT. PPOCT was shown to better delineate tortuous vessels, where nodes often restrict Doppler and phase-variance reconstruction.
机译:目前,光学相干断层扫描(OCT)无法获得通常对于识别疾病至关重要的分子信息。为了使用OCT进行分子成像,我们进一步开发了一种技术,该技术可以利用样品中光吸收的瞬时变化来获取分子信息。已经开发了利用532 nm泵浦和830 nm探针的傅里叶域Pump-Probe OCT(PPOCT)系统来对血红蛋白成像。亚甲基蓝是一种具有众所周知的光物理性质的生物染料,在研究血红蛋白PPOCT信号的来源之前,已使用亚甲基蓝对系统进行了表征。记录了非洲爪蟾(Xenopus laevis)中脉管系统的第一张体内PPOCT图像。该技术在流动和不流动的容器中均能很好地发挥作用。此外,将PPOCT与其他需要流量的OCT扩展进行了比较,例如多普勒OCT和相差OCT。 PPOCT被证明可以更好地描绘出曲折血管,其中结节常常限制了多普勒和相差重建。

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