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近红外二区图像的毛细血管分割及其在缺血性脑卒中的应用。

Capillaries segmentation of NIR-II images and its application in ischemic stroke.

机构信息

Shanghai Institute of Technical Physics of the Chinese Academy of Sciences, Shanghai, 200083, China; University of Chinese Academy of Sciences, Beijing, 100049, China.

Molecular Imaging Center, Shanghai Institute of Materia Medica, Chinese Academy of Sciences, Shanghai, 201203, China.

出版信息

Comput Biol Med. 2022 Aug;147:105742. doi: 10.1016/j.compbiomed.2022.105742. Epub 2022 Jun 16.

Abstract

Fluorescence imaging in the second near-infrared window (NIR-II) offers μm resolution blood vessel information noninvasively, which is crucial for the diagnosis and surgery treatment of some blood vessel-related diseases. However, only a few blood vessel segmentation algorithms have been done for the NIR-II images so far. Here, we proposed a vessel segmentation algorithm that used multi-scale enhancement and fractional differential to enhance capillaries, and then segmented vessels based on the blood vessels' tubular characteristics. Experimental results showed that this method could effectively suppress the point and lump tissue noise influence during vascular segmentation. The accuracy of vessel identification by other algorithms dropped below 30%, while our algorithm still achieved an accuracy of around 50% in deep vessel segmentation experiments with the 6.5 mm Intralipid. So it had the advantage of accurately detecting deep and dim blood capillaries. Meanwhile, the vascular density quantization algorithm had been successfully applied to the mice's ischemic stroke evaluations for the first time. In addition, this algorithm can provide the quantified vessel features under physiological or pathological conditions, which could be used to accurately evaluate the stroke drugs' therapeutic effect in the future.

摘要

近红外二区(NIR-II)荧光成像是一种无创的微米分辨率血管信息成像技术,对于一些血管相关疾病的诊断和手术治疗至关重要。然而,到目前为止,只有少数血管分割算法应用于 NIR-II 图像。在这里,我们提出了一种血管分割算法,该算法使用多尺度增强和分数阶微分来增强毛细血管,然后基于血管的管状特征对血管进行分割。实验结果表明,该方法可以有效地抑制血管分割过程中点状和块状组织噪声的影响。在使用 6.5mm 脂肪乳进行深层血管分割实验中,其他算法的血管识别准确率下降到 30%以下,而我们的算法仍能达到约 50%的准确率。因此,它具有准确检测深层和暗淡血管的优势。同时,血管密度量化算法首次成功应用于小鼠缺血性中风评估。此外,该算法可以提供生理或病理条件下的量化血管特征,未来可用于准确评估中风药物的治疗效果。

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