Department of Bioengineering, University of Washington, Seattle, Washington.
Department of Biology, University of Washington, Seattle, Washington.
J Biophotonics. 2019 Oct;12(10):e201900076. doi: 10.1002/jbio.201900076. Epub 2019 Jul 9.
The dynamic properties of subcellular organism are important biomarkers of the health. Imaging subcellular level dynamics provides effective solutions for evaluating cell metabolism and testing the responses of cells to pathogens and drugs in pharmaceutical engineering. In this paper, we demonstrate an innovative approach to contrast the subcellular motion by using eigen decomposition (ED)-based variance analysis of time-dependent complex optical coherence tomography signals. This method reveals a superior advantage of contrast to noise ratio when compared with the approach that employs intensity decorrelation. Furthermore, the eigen values derived from ED processing are calculated and applied to assess the power ratios of complex signal invariance that decreases exponentially along time dimension. The validation experiments are performed on the patterned samples of yeast powder mixed with gelatin/TiO2 water solution. Additionally, the proposed method is used to image mouse cerebral cortex in normal and pathological conditions, suggesting the practicality of variance power mapping in analyzing cortical neural activities. The technique promises efficient measurement of subcellular motions with high sensitivity and high throughput for in vivo and in situ applications.
亚细胞生物体的动态特性是健康的重要生物标志物。对亚细胞水平动态的成像为评估细胞代谢以及在药物工程中测试细胞对病原体和药物的反应提供了有效的解决方案。在本文中,我们展示了一种通过使用基于特征分解(ED)的时变复相干光层析信号方差分析来对比亚细胞运动的创新方法。与采用强度去相关的方法相比,该方法在对比度噪声比方面具有明显优势。此外,从 ED 处理中提取出的特征值可用于评估复信号不变性的功率比,该比值随时间维度呈指数衰减。该方法在与明胶/TiO2 水溶液混合的酵母粉末的图案化样本上进行了验证实验。此外,还将该方法用于正常和病理条件下的小鼠大脑皮层成像,表明方差功率映射在分析皮层神经活动方面具有实用性。该技术有望在体内和原位应用中实现对亚细胞运动的高效、高灵敏度和高通量测量。