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Image-guided intraocular injection using multimodality optical coherence tomography and fluorescence confocal scanning laser ophthalmoscopy in rodent ophthalmological models

机译:啮齿动物眼科模型中使用多模态光学相干断层扫描和荧光共聚焦扫描激光检眼镜的图像引导眼内注射

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Intraocular injections are routinely performed for delivery of anti-VEGF and anti-inflammatory therapies in humans. While these injections are also performed in mice to develop novel models of ophthalmic diseases and screen novel therapeutics, the injection location and volume are not well-controlled and reproducible. We overcome limitations of conventional injections methods by developing a multimodality, long working distance, non-contact optical coherence tomography (OCT) and fluorescence confocal scanning laser ophthalmoscopy (cSLO) system for retinal imaging before and after injections. OCT enables quantitative analysis of injection location and volumes whereas complementary cSLO improves specificity for identifying fluorescently labeled injected compounds and transgenic cells. Intraocular injections are routinely performed for delivery of anti-VEGF and anti-inflammatory therapies in humans. While these injections are also performed in mice to develop novel models of ophthalmic diseases and screen novel therapeutics, the injection location and volume are not well-controlled and reproducible. We overcome limitations of conventional injections methods by developing a multimodality, long working distance, non-contact optical coherence tomography (OCT) and fluorescence confocal scanning laser ophthalmoscopy (cSLO) system for retinal imaging before and after injections. Our OCT+cSLO system combines a custom-built spectral-domain OCT engine (875±85 nm) with 125 kHz line-rate with a modified commercial cSLO with a maximum frame-rate of 30 fps (512 × 512 pix.). The system was designed for an overlapping OCT+cSLO field-of-view of 1.1 mm with a 7.76 mm working distance to the pupil. cSLO excitation light sources and filters were optimized for simultaneous GFP and tdTomato imaging. Lateral resolution was 3.02 μm for OCT and 2.74 μm for cSLO. Intravitreal injections of 5%, 10%, and 20% intralipid with Alex Fluor 488 were manually injected intraocularly in C57BL/6 mice. Post-injection imaging showed structural changes associated with retinal puncture, including the injection track, a retinal elevation, and detachment of the posterior hyaloid. OCT enables quantitative analysis of injection location and volumes whereas complementary cSLO improves specificity for identifying fluorescently labeled injected compounds and transgenic cells. The long working distance of our non-contact OCT+cSLO system is uniquely-suited for concurrent imaging with intraocular injections and may be applied for imaging of ophthalmic surgical dynamics and real-time image-guided injections.
机译:通常进行眼内注射以在人中递送抗VEGF和抗炎疗法。尽管还可以在小鼠中进行这些注射以开发新的眼科疾病模型并筛选新的治疗剂,但注射位置和体积仍不能很好地控制和再现。我们通过开发多模态,长工作距离,非接触式光学相干断层扫描(OCT)和荧光共聚焦扫描激光检眼镜(cSLO)系统来在注射前后进行视网膜成像,克服了传统注射方法的局限性。 OCT能够对注射位置和体积进行定量分析,而互补cSLO可以提高鉴定荧光标记的注射化合物和转基因细胞的特异性。通常进行眼内注射以在人中递送抗VEGF和抗炎疗法。尽管还可以在小鼠中进行这些注射以开发新的眼科疾病模型并筛选新的治疗剂,但注射位置和体积仍不能很好地控制和再现。我们通过开发多模态,长工作距离,非接触式光学相干断层扫描(OCT)和荧光共聚焦扫描激光检眼镜(cSLO)系统来在注射前后进行视网膜成像,克服了传统注射方法的局限性。我们的OCT + cSLO系统将定制的光谱域OCT引擎(875±85 nm)和125 kHz的线速与改进的商用cSLO结合在一起,最大的帧频为30 fps(512×512像素)。该系统设计用于1.1毫米的重叠OCT + cSLO视场,距瞳孔的工作距离为7.76毫米。 cSLO激发光源和滤光片针对GFP和tdTomato同步成像进行了优化。 OCT的横向分辨率为3.02μm,cSLO的横向分辨率为2.74μm。在C57BL / 6小鼠中人工眼内注射Alex Fluor 488 5%,10%和20%脂质体内注射。注射后成像显示与视网膜穿刺有关的结构变化,包括注射轨迹,视网膜高程和后玻璃体脱落。 OCT能够对注射位置和体积进行定量分析,而互补cSLO可以提高鉴定荧光标记的注射化合物和转基因细胞的特异性。我们的非接触式OCT + cSLO系统的长工作距离特别适合与眼内注射同时进行成像,并可应用于眼科手术动力学成像和实时图像引导的注射。

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