Non-invasive skin oxygenation imaging using a multi-spectral camera system: Effectiveness of various concentration algorithms applied on human skin

被引:6
|
作者
Klaessens, John H. G. M. [1 ]
Noordmans, Herke Jan [1 ]
de Roode, Rowland [1 ]
Verdaasdonk, Rudolf M. [1 ]
机构
[1] Univ Med Ctr Utrecht, Dept Med Technol & Clin Phys, Utrecht, Netherlands
来源
OPTICAL TOMOGRAPHY AND SPECTROSCOPY OF TISSUE VIII | 2009年 / 7174卷
关键词
Spectroscopy; Near Infrared; Algorithm; 2D; Skin; Methods; Hemoglobin; Oxygen; ELECTRON-PARAMAGNETIC-RESONANCE; PRINCIPLES; ABSORPTION; SPECTRA; TISSUE;
D O I
10.1117/12.808707
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
This study describes noninvasive noncontact methods to acquire and analyze functional information from the skin. Multispectral images at several selected wavelengths in the visible and near infrared region are collected and used in mathematical methods to calculate concentrations of different chromophores in the epidermis and dermis of the skin. This is based on the continuous wave Near Infrared Spectroscopy method, which is a well known non-invasive technique for measuring oxygenation changes in the brain and in muscle tissue. Concentration changes of hemoglobin (dO(2)Hb, dHHb and dtHb) can be calculated from light attenuations using the modified Lambert Beer equation. We applied this technique on multi-spectral images taken from the skin surface using different algorithms for calculating changes in O(2)Hb, HHb and tHb. In clinical settings, the imaging of local oxygenation variations and/or blood perfusion in the skin can be useful for e. g. detection of skin cancer, detection of early inflammation, checking the level of peripheral nerve block anesthesia, study of wound healing and tissue viability by skin flap transplantations. Images from the skin are obtained with a multi-spectral imaging system consisting of a 12-bit CCD camera in combination with a Liquid Crystal Tunable Filter. The skin is illuminated with either a broad band light source or a tunable multi wavelength LED light source. A polarization filter is used to block the direct reflected light. The collected multi-spectral imaging data are images of the skin surface radiance; each pixel contains either the full spectrum (420 - 730 nm) or a set of selected wavelengths. These images were converted to reflectance spectra. The algorithms were validated during skin oxygen saturation changes induced by temporary arm clamping and applied to some clinical examples. The initial results with the multi-spectral skin imaging system show good results for detecting dynamic changes in oxygen concentration. However, the optimal algorithm needs to be determined. Multi-spectral skin imaging shows to be a promising technique for various clinical applications were the local distribution of oxygenation is of major importance.
引用
收藏
页数:13
相关论文
共 9 条
  • [1] Non-invasive skin oxygenation imaging using a multi-spectral imaging system, Effectiveness of different concentration algorithms applied on human skin
    Klaessens, J. H. G. M.
    Noordmans, H. J.
    de Roode, R.
    Verdaasdonk, R. M.
    WORLD CONGRESS ON MEDICAL PHYSICS AND BIOMEDICAL ENGINEERING, VOL 25, PT 2 - DIAGNOSTIC IMAGING, 2009, 25 : 725 - 728
  • [2] Non-invasive investigation of skin local hypothermia influence upon local oxygenation and hemoglobin concentration
    Yu, DA
    Kessler, M
    Kakihana, Y
    Krug, A
    OPTICAL TOMOGRAPHY AND SPECTROSCOPY OF TISSUE: THEORY, INSTRUMENTATION, MODEL, AND HUMAN STUDIES II, PROCEEDINGS OF, 1997, 2979 : 375 - 377
  • [3] An upgraded camera-based imaging system for mapping venous blood oxygenation in human skin tissue
    Li, Jun
    Zhang, Xiao
    Qiu, Lina
    Leotta, Daniel E.
    OPTICS COMMUNICATIONS, 2016, 370 : 276 - 282
  • [4] Multi-Wavelength Diffuse Reflectance Plots for Mapping Various Chromophores in Human Skin for Non-Invasive Diagnosis
    Prince, Shanthi
    Malarvizhi, S.
    13TH INTERNATIONAL CONFERENCE ON BIOMEDICAL ENGINEERING, VOLS 1-3, 2009, 23 (1-3): : 323 - 326
  • [5] Linking visual appearance of skin to the underlying optical properties using multi-spectral imaging.
    Choudhury, Niloy
    Samatham, Ravikant
    Jacques, Steven L.
    PHOTONIC THERAPEUTICS AND DIAGNOSTICS VI, 2010, 7548
  • [6] Analysis of microparticle penetration into human and porcine skin: non-invasive imaging with multiphoton excitation microscopy
    Mulholland, WJ
    Kendall, MAF
    Bellhouse, BJ
    White, N
    MULTIPHOTON MICROSCOPY IN THE BIOMEDICAL SCIENCES II, 2002, 4620 : 113 - 122
  • [7] Towards real-time non contact spatial resolved oxygenation monitoring using a multi spectral filter array camera in various light conditions
    Bauer, Jacob R.
    van Beekum, Karlijn
    Klaessens, John
    Noordmans, Herke Jan
    Boer, Christa
    Hardeberg, Jon Y.
    Verdaasdonk, Rudolf M.
    OPTICAL BIOPSY XVI: TOWARD REAL-TIME SPECTROSCOPIC IMAGING AND DIAGNOSIS, 2018, 10489
  • [8] Non-invasive SARS-CoV-2 RNA detection and human transcriptome analysis using skin surface lipids
    Kuwano, Tetsuya
    Kanno, Takayuki
    Tobiume, Minoru
    Hirata, Yuichiro
    Katano, Harutaka
    Koga, Michiko
    Nagai, Hiroyuki
    Tsutsumi, Takeya
    Yoshikawa, Noritada
    Yotsuyanagi, Hiroshi
    Kutsuna, Satoshi
    Miyazato, Yusuke
    Kinoshita-Iwamoto, Noriko
    Ohmagari, Norio
    Kobayashi, Taiichiro
    Fukushima, Kazuaki
    Tanaka, Masaru
    Imamura, Akifumi
    Ueda, Yui
    Iwamura, Maeko
    Takada, Naoto
    Inoue, Takayoshi
    Matano, Tetsuro
    Kawana-Tachikawa, Ai
    Suzuki, Tadaki
    SCIENTIFIC REPORTS, 2024, 14 (01):
  • [9] Non-Invasive Skin Imaging Assessment of Human Stress During Head-Down Bed Rest Using a Portable Handheld Two-Photon Microscope
    Wang, Junjie
    Zhen, Zhen
    Wang, Yanqing
    Wu, Runlong
    Hu, Yanhui
    Fu, Qiang
    Li, Yongzhi
    Xin, Bingmu
    Song, Jinping
    Li, Jianwei
    Ren, Yafei
    Feng, Lishuang
    Cheng, Heping
    Wang, Aimin
    Hu, Liming
    Ling, Shukuan
    Li, Yingxian
    FRONTIERS IN PHYSIOLOGY, 2022, 13