Skip to main content

TU‐E‐201C‐08: A Comprehensive Method for Optical ‐ Emission Computed Tomography

Publication ,  Conference
Thomas, A; Bowsher, J; Roper, J; Oldham, M
Published in: Medical Physics
January 1, 2010

Purpose: Optical‐CT and optical‐ECT are techniques with unique capability for high‐resolution 3D imaging of structure and function in tissue samples up to 4cc. In particular, 3D vasculature structure and distribution of fluorescent bio‐markers (e.g. green‐fluorescent protein GFP). Quantitative imaging of these markers with optical‐ECT is challenging due to attenuation within the sample which affects both emitted and excitation light. We present a novel method to implement a complete correction modeling the emission and excitation attenuation which also includes modeling the source strength variation. Method and Materials: Corrections were implemented by modeling physical parameters in the imaging setup within the framework of an ordered subsets expectation maximum (OSEM) iterative reconstruction algorithm. Excitation source strength distribution, excitation and emission attenuation were modeled. The accuracy of the correction was investigated by imaging phantoms containing known distributions of attenuation and fluorophores. The correction was then applied to imaging a cleared mouse brain with GFP labeled vasculature and a cleared 4T1 xenograft flank tumor with constitutive RFP (red‐fluorescent‐protein). Reconstructions were compared to corresponding slices imaged with a fluorescent dissection microscope. Results: Significant attenuation artifacts were observed in the uncorrected phantom images and appeared up to 80% less intense than the verification image in the central region. The corrected phantom images showed excellent agreement with the verification image with only slight variations. The corrected tissue sample reconstructions showed general agreement between the verification images. Conclusion: Comprehensive modeling in optical‐ECT imaging was successfully implemented creating quantitatively accurate 3D fluorophore distributions. This work represents the 1st successful attempt encompassing such a complete set of corrections. This method provides a means to accurately obtain 3D fluorophore distributions with the potential to better understand tumor biology and treatment responses. © 2010, American Association of Physicists in Medicine. All rights reserved.

Duke Scholars

Published In

Medical Physics

DOI

ISSN

0094-2405

Publication Date

January 1, 2010

Volume

37

Issue

6

Start / End Page

3406

Related Subject Headings

  • Nuclear Medicine & Medical Imaging
  • 5105 Medical and biological physics
  • 4003 Biomedical engineering
  • 1112 Oncology and Carcinogenesis
  • 0903 Biomedical Engineering
  • 0299 Other Physical Sciences
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Thomas, A., Bowsher, J., Roper, J., & Oldham, M. (2010). TU‐E‐201C‐08: A Comprehensive Method for Optical ‐ Emission Computed Tomography. In Medical Physics (Vol. 37, p. 3406). https://doi.org/10.1118/1.3469310
Thomas, A., J. Bowsher, J. Roper, and M. Oldham. “TU‐E‐201C‐08: A Comprehensive Method for Optical ‐ Emission Computed Tomography.” In Medical Physics, 37:3406, 2010. https://doi.org/10.1118/1.3469310.
Thomas A, Bowsher J, Roper J, Oldham M. TU‐E‐201C‐08: A Comprehensive Method for Optical ‐ Emission Computed Tomography. In: Medical Physics. 2010. p. 3406.
Thomas, A., et al. “TU‐E‐201C‐08: A Comprehensive Method for Optical ‐ Emission Computed Tomography.” Medical Physics, vol. 37, no. 6, 2010, p. 3406. Scopus, doi:10.1118/1.3469310.
Thomas A, Bowsher J, Roper J, Oldham M. TU‐E‐201C‐08: A Comprehensive Method for Optical ‐ Emission Computed Tomography. Medical Physics. 2010. p. 3406.

Published In

Medical Physics

DOI

ISSN

0094-2405

Publication Date

January 1, 2010

Volume

37

Issue

6

Start / End Page

3406

Related Subject Headings

  • Nuclear Medicine & Medical Imaging
  • 5105 Medical and biological physics
  • 4003 Biomedical engineering
  • 1112 Oncology and Carcinogenesis
  • 0903 Biomedical Engineering
  • 0299 Other Physical Sciences