Dynamic imaging and quantification of subcellular motion with eigen-decomposition optical coherence tomography-based variance analysis

J Biophotonics. 2019 Oct;12(10):e201900076. doi: 10.1002/jbio.201900076. Epub 2019 Jul 9.

Abstract

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.

Keywords: OCT angiography; cerebral cortex; complex OCT signal; contrast to noise ratio; dynamic imaging; eigen decomposition; optical coherence tomography (OCT); phantom; subcellular motion; variance analysis; yeast cell.

Publication types

  • Research Support, N.I.H., Extramural
  • Research Support, Non-U.S. Gov't

MeSH terms

  • Algorithms
  • Analysis of Variance
  • Animals
  • Brain / cytology
  • Brain / diagnostic imaging
  • Image Processing, Computer-Assisted / methods*
  • Intracellular Space / metabolism*
  • Mice
  • Movement*
  • Signal-To-Noise Ratio
  • Tomography, Optical Coherence*
  • Yeasts / cytology