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Sökning: WFRF:(Rohrbach Daniel)

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1.
  • Rohrbach, Daniel J., et al. (författare)
  • Characterization of nonmelanoma skin cancer for light therapy using spatial frequency domain imaging
  • 2015
  • Ingår i: Biomedical Optics Express. - : Optical Society of America. - 2156-7085. ; 6:5, s. 1761-1766
  • Tidskriftsartikel (refereegranskat)abstract
    • The dosimetry of light-based therapies critically depends on both optical and vascular parameters. We utilized spatial frequency domain imaging to quantify optical and vascular parameters, as well as estimated light penetration depth from 17 nonmelanoma skin cancer patients. Our data indicates that there exist substantial spatial variations in these parameters. Characterization of these parameters may inform understanding and optimization of the clinical response of light-based therapies.
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2.
  • Rohrbach, Daniel J., et al. (författare)
  • Preoperative Mapping of Nonmelanoma Skin Cancer Using Spatial Frequency Domain and Ultrasound Imaging
  • 2014
  • Ingår i: Academic Radiology. - : Elsevier. - 1076-6332 .- 1878-4046. ; 21:2, s. 263-270
  • Tidskriftsartikel (refereegranskat)abstract
    • Rationale and ObjectivesThe treatment of nonmelanoma skin cancer (NMSC) is usually by surgical excision or Mohs micrographic surgery and alternatively may include photodynamic therapy (PDT). To guide surgery and to optimize PDT, information about the tumor structure, optical parameters, and vasculature is desired.Materials and MethodsSpatial frequency domain imaging (SFDI) can map optical absorption, scattering, and fluorescence parameters that can enhance tumor contrast and quantify light and photosensitizer dose. High frequency ultrasound (HFUS) imaging can provide high-resolution tumor structure and depth, which is useful for both surgery and PDT planning.ResultsHere, we present preliminary results from our recently developed clinical instrument for patients with NMSC. We quantified optical absorption and scattering, blood oxygen saturation (StO2), and total hemoglobin concentration (THC) with SFDI and lesion thickness with ultrasound. These results were compared to histological thickness of excised tumor sections.ConclusionsSFDI quantified optical parameters with high precision, and multiwavelength analysis enabled 2D mappings of tissue StO2 and THC. HFUS quantified tumor thickness that correlated well with histology. The results demonstrate the feasibility of the instrument for noninvasive mapping of optical, physiological, and ultrasound contrasts in human skin tumors for surgery guidance and therapy planning.
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