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Improving the quantitative accuracy of optical-emission computed tomography by incorporating an attenuation correction: application to HIF1 imaging

机译:通过合并衰减校正提高光发射计算机断层扫描的定量精度:在HIF1成像中的应用

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摘要

Optical computed tomography (optical-CT) and optical-emission computed tomography (optical-ECT) are new techniques for imaging the 3D structure and function (including gene expression) of whole unsectioned tissue samples. This work presents a method of improving the quantitative accuracy of optical-ECT by correcting for the ‘self’-attenuation of photons emitted within the sample. The correction is analogous to a method commonly applied in single-photon-emission computed tomography reconstruction. The performance of the correction method was investigated by application to a transparent cylindrical gelatin phantom, containing a known distribution of attenuation (a central ink-doped gelatine core) and a known distribution of fluorescing fibres. Attenuation corrected and uncorrected optical-ECT images were reconstructed on the phantom to enable an evaluation of the effectiveness of the correction. Significant attenuation artefacts were observed in the uncorrected images where the central fibre appeared ~24% less intense due to greater attenuation from the surrounding ink-doped gelatin. This artefact was almost completely removed in the attenuation-corrected image, where the central fibre was within ~4% of the others. The successful phantom test enabled application of attenuation correction to optical-ECT images of an unsectioned human breast xenograft tumour grown subcutaneously on the hind leg of a nude mouse. This tumour cell line had been genetically labelled (pre-implantation) with fluorescent reporter genes such that all viable tumour cells expressed constitutive red fluorescent protein and hypoxia-inducible factor 1 transcription-produced green fluorescent protein. In addition to the fluorescent reporter labelling of gene expression, the tumour microvasculature was labelled by a light-absorbing vasculature contrast agent delivered in vivo by tail-vein injection. Optical-CT transmission images yielded high-resolution 3D images of the absorbing contrast agent, and revealed highly inhomogeneous vasculature perfusion within the tumour. Optical-ECT emission images yielded high-resolution 3D images of the fluorescent protein distribution in the tumour. Attenuation-uncorrected optical-ECT images showed clear loss of signal in regions of high attenuation, including regions of high perfusion, where attenuation is increased by increased vascular ink stain. Application of attenuation correction showed significant changes in an apparent expression of fluorescent proteins, confirming the importance of the attenuation correction. In conclusion, this work presents the first development and application of an attenuation correction for optical-ECT imaging. The results suggest that successful attenuation correction for optical-ECT is feasible and is essential for quantitatively accurate optical-ECT imaging.
机译:光学计算机断层扫描(optical-CT)和光学计算机断层扫描(optical-ECT)是对整个未切开的组织样本的3D结构和功能(包括基因表达)进行成像的新技术。这项工作提出了一种通过校正样品中发射的光子的“自”衰减来提高光学ECT定量精度的方法。该校正类似于通常在单光子发射计算机断层摄影重建中应用的方法。通过应用于透明的圆柱形明胶体模,研究了校正方法的性能,该模型包含已知的衰减分布(中心掺墨明胶芯)和已知的荧光纤维分布。在体模上重建了经过衰减校正的和未校正的光学ECT图像,以评估校正的有效性。在未校正的图像中观察到明显的衰减伪影,其中由于周围的油墨掺杂明胶的衰减较大,中央纤维的强度降低了约24%。该伪像在衰减校正的图像中几乎被完全去除,其中中心光纤在其他光纤的约4%之内。成功的幻像测试能够将衰减校正应用于裸鼠后腿皮下生长的未切片的人类乳房异种移植肿瘤的光学ECT图像。该肿瘤细胞系已用荧光报告基因进行了基因标记(植入前),因此所有存活的肿瘤细胞均表达组成型红色荧光蛋白和缺氧诱导因子1转录产生的绿色荧光蛋白。除了基因表达的荧光报告基因标记外,肿瘤微血管还通过尾静脉注射在体内递送的吸光血管造影剂进行标记。光学CT透射图像产生了吸收性造影剂的高分辨率3D图像,并揭示了肿瘤内高度不均匀的脉管系统灌注。光学ECT发射图像产生了肿瘤中荧光蛋白分布的高分辨率3D图像。未经衰减的光学ECT图像在高衰减区域(包括高灌注区域)中显示出明显的信号丢失,在该区域中,由于血管墨水污渍增加,衰减增加。衰减校正的应用显示出荧光蛋白表观表达的显着变化,证实了衰减校正的重要性。总之,这项工作是光学ECT成像的衰减校正的首次开发和应用。结果表明,成功的光学ECT衰减校正是可行的,并且对于定量精确的光学ECT成像至关重要。

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