Line-field dynamic optical coherence tomography platform for volumetric assessment of biological tissues.
Keyu ChenStephanie SwansonKostadinka BizhevaPublished in: Biomedical optics express (2024)
Dynamic optical coherence tomography (dOCT) utilizes time-dependent signal intensity fluctuations to enhance contrast in OCT images and indirectly probe physiological processes in cells. Majority of the dOCT studies published so far are based on acquisition of 2D images (B-scans or C-scans) by utilizing point-scanning Fourier domain (spectral or swept-source) OCT or full-field OCT respectively, primarily due to limitations in the image acquisition rate. Here we introduce a novel, high-speed spectral domain line-field dOCT (SD-LF-dOCT) system and image acquisition protocols designed for fast, volumetric dOCT imaging of biological tissues. The imaging probe is based on an exchangeable afocal lens pair that enables selection of combinations of transverse resolution (from 1.1 µm to 6.4 µm) and FOV (from 250 × 250 µm 2 to 1.4 × 1.4 mm 2 ), suitable for different biomedical applications. The system offers axial resolution of ∼ 1.9 µm in biological tissue, assuming an average refractive index of 1.38. Maximum sensitivity of 90.5 dB is achieved for 3.5 mW optical imaging power at the tissue surface and maximum camera acquisition rate of 2,000 fps. Volumetric dOCT images acquired with the SD-LF-dOCT system from plant tissue (cucumber), animal tissue (mouse liver) and human prostate carcinoma spheroids allow for volumetric visualization of the tissues' cellular and sub-cellular structures and assessment of cellular motility.
Keyphrases
- optical coherence tomography
- high resolution
- high speed
- diabetic retinopathy
- deep learning
- optic nerve
- gene expression
- computed tomography
- prostate cancer
- atomic force microscopy
- convolutional neural network
- quantum dots
- randomized controlled trial
- oxidative stress
- escherichia coli
- signaling pathway
- cystic fibrosis
- induced pluripotent stem cells
- pi k akt