Periodic Reporting for period 1 - FORECAST (Fluorescence lifetime optical biopsy system)
Okres sprawozdawczy: 2017-01-01 do 2018-12-31
The FORECAST project sets the following list of key objectives (RO): broadening of the Fellow’s expertise in frequency domain lifetime fluorescence spectroscopy with a focus on medical applications; development of novel theoretical models for the registering fluorescence parameters in living epithelium tissue; design an advanced technique for registration of the fluorescence lifetime fluorescence intensity in a wide spectral range simultaneously with LDF and tissue blood oximetry measurements; expansion of experience in the field of the assessment of mitochondrial dysfunction according to the fluorescence parameters in tissues; expansion of experience in the field of medical monitoring for non-invasive fluorescence diagnosis of epithelium cancers.
WP2: Development of novel theoretical models for the fluorescence lifetime and intensity in the living epithelium tissue. Work performed: modelling of diagnostic volume for the fluorescence measurements for the different excitation wavelength for the parameters of the used optical fiber probe; modelling for the diagnostic volume for the LDF measurements; theoretical studies on impact of blood volume on the diffuse reflectance spectra of human skin; analysis of the component demixing using phasor analysis of the lifetime fluorescence; development of novel theoretical model for the artificial neural network aided blood volume fraction and the oxygen saturation reconstruction. Dissemination: JBO 22 (8), 085003; Photonics West 2017; Proc. Spie 104120H; Proc. Spie 104120G; Proc. SPIE 1071619. Conferences: European Conferences on Biomedical Optics 2017; Saratov Fall Meeting 2017.
WP3: The design an advanced technique for registration of the fluorescence lifetime and intensity of the emission in the wide spectral range. Work performed: setup development for measurements of the fluorescence intensity and lifetime in frequency domain using high speed lock-in amplifier; development of the diagnostic fibre optical probe; software for the blood influence compensation. Development of the VCSEL-based blood perfusion sensor. Tests with Ce3+-doped silica fiber at different pump wavelengths. Dissemination: Laser Physics Letters 14 (6), 065603; Laser Physics Letters 15 (10), 105601; Proc. 2018 ICLO, 133-133; Proc. SPIE 104931L; Proc. of SPIE Vol. 1006303-1. Conferences: Laser Optics 2018, Photonics West 2017, Photonics West 2018, 10th ESGCO 2018 (Invited talk).
WP4: Expansion of experience in the field of medical monitoring for non-invasive fluorescence diagnosis of epithelium tissues. Research protocol development, obtaining ethical approval. Studies on the influence of the blood microflow on the registered parameters of fluorescence. Dissemination: Microvascular Research, 120, pp. 13-20, 2018; Proc. Spie 104120W; 2018 International Conference Laser Optics (ICLO), 564-564; Proc. Spie 106854C; Proc. SPIE 1068532; Proc. SPIE 106854O. Conferences: Laser Optics 2018, European Conferences on Biomedical Optics 2017, ECBO 2018.
WP5: Expansion of experience in the field of the assessment of mitochondrial dysfunction according to the fluorescence parameters in the epithelium in vitro. Work performed: testing of the developed diagnostic technology on cultures of living tissue with inhibition of components of the electron transport in the respiratory chain; verification of NADH content measurements in slices of living brain tissue. Dissemination: Proc. SPIE 106854E; Proc. SPIE 106854R. Conference: Photonics Europe 2018, Rank Prize Symposium, 2018.
WP6: Expansion of experience in the field of medical monitoring of mitochondrial dysfunction by non-invasive fluorescence diagnosis during drug discovery of muscular dystrophy treatment. Research protocol development, experiment preparations and arrangements. Due to the cutting down of the Fellowship duration to launch the next research project, the work package 6 has not been developed completely.