In-vivo validation of fluorescence lifetime imaging (FLIm) of coronary arteries in swine

被引:1
|
作者
Bec, Julien [1 ]
Ma, Dinglong [1 ]
Yankelevitch, Diego R. [1 ]
Gorpas, Dimitris [1 ]
Ferrier, William T. [2 ]
Southard, Jeffrey [3 ]
Marcu, Laura [1 ]
机构
[1] Univ Calif Davis, Dept Biomed Engn, Davis, CA 95616 USA
[2] Univ Calif Davis, Sch Med, Surg Res Facil, Davis, CA 95616 USA
[3] Univ Calif Davis, Med Ctr, Div Cardiovasc Med, Davis, CA 95817 USA
来源
PHOTONIC THERAPEUTICS AND DIAGNOSTICS XI | 2015年 / 9303卷
关键词
time resolved fluorescence spectroscopy; fluorescence lifetime imaging; intravascular catheter atherosclerosis;
D O I
10.1117/12.2079833
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
We report a scanning imaging system that enables high speed multispectral fluorescence lifetime imaging (FLIm) of coronary arteries. This system combines a custom low profile (3 Fr) imaging catheter using a 200 mu m core side viewing UV-grade silica fiber optic, an acquisition system able to measure fluorescence decays over four spectral bands at 20 kHz and a fast data analysis and display module. In vivo use of the system has been optimized, with particular emphasis on clearing blood from the optical pathway. A short acquisition time (5 seconds for a 20 mm long coronary segment) enabled data acquisition during a bolus saline solution injection through the 7 Fr catheter guide. The injection parameters were precisely controlled using a power injector and optimized to provide good image quality while limiting the bolus injection duration and volume (12 cc/s, 80 cc total volume). The ability of the system to acquire data in vivo was validated in healthy swine by imaging different sections of the left anterior descending (LAD) coronary. A stent coated with fluorescent markers was placed in the LAD and imaged, demonstrating the ability of the system to discriminate in vivo different fluorescent features and structures from the vessel background fluorescence using spectral and lifetime information. Intensity en face images over the four bands of the instrument were available within seconds whereas lifetime images were computed in 2 minutes, providing efficient feedback during the procedure. This successful demonstration of FLIm in coronaries enables future study of atherosclerotic cardiovascular diseases.
引用
收藏
页数:5
相关论文
共 32 条
  • [21] In vivo multiphoton tomography and fluorescence lifetime imaging of human brain tumor tissue
    Kantelhardt, Sven R.
    Kalasauskas, Darius
    Konig, Karsten
    Kim, Ella
    Weinigel, Martin
    Uchugonova, Aisada
    Giese, Alf
    JOURNAL OF NEURO-ONCOLOGY, 2016, 127 (03) : 473 - 482
  • [22] Using in vivo fluorescence lifetime imaging to detect HER2-positive tumors
    Yasaman Ardeshirpour
    Dan L. Sackett
    Jay R. Knutson
    Amir H. Gandjbakhche
    EJNMMI Research, 8
  • [23] Development of a time-gated fluorescence lifetime microscope for in vivo corneal metabolic imaging
    Silva, Susana F.
    Batista, Ana
    Ciutad Castejon, Olga
    Quadrado, Maria Joao
    Domingues, Jose Paulo
    Morgado, Miguel
    CLINICAL AND BIOMEDICAL SPECTROSCOPY AND IMAGING IV, 2015, 9537
  • [24] Using in vivo fluorescence lifetime imaging to detect HER2-positive tumors
    Ardeshirpour, Yasaman
    Sackett, Dan L.
    Knutson, Jay R.
    Gandjbakhche, Amir H.
    EJNMMI RESEARCH, 2018, 8
  • [25] Widefield fluorescence lifetime imaging of protoporphyrin IX for fluorescence-guided neurosurgery: An ex vivo feasibility study
    Erkkilae, Mikael T.
    Bauer, Bianca
    Hecker-Denschlag, Nancy
    Medina, Maria J. Madera
    Leitgeb, Rainer A.
    Unterhuber, Angelika
    Gesperger, Johanna
    Roetzer, Thomas
    Hauger, Christoph
    Drexler, Wolfgang
    Widhalm, Georg
    Andreana, Marco
    JOURNAL OF BIOPHOTONICS, 2019, 12 (06)
  • [26] Design, construction, and validation of a rotary multifunctional intravascular diagnostic catheter combining multispectral fluorescence lifetime imaging and intravascular ultrasound
    Bec, Julien
    Xie, Hongtao
    Yankelevich, Diego R.
    Zhou, Feifei
    Sun, Yang
    Ghata, Narugopal
    Aldredge, Ralph
    Marcu, Laura
    JOURNAL OF BIOMEDICAL OPTICS, 2012, 17 (10)
  • [27] Using multiphoton fluorescence lifetime imaging to characterize liver damage and fluorescein disposition in liver in vivo
    Thorling, Camilla A.
    Studier, Hauke
    Crawford, Darrell
    Roberts, Michael S.
    MULTIPHOTON MICROSCOPY IN THE BIOMEDICAL SCIENCES XVI, 2016, 9712
  • [28] Frequency-domain fluorescence lifetime imaging system (pco.flim) based on an in-pixel dual tap control CMOS image sensor
    Franke, Robert
    Holst, Gerhard A.
    IMAGING, MANIPULATION, AND ANALYSIS OF BIOMOLECULES, CELLS, AND TISSUES XIII, 2015, 9328
  • [29] Fluorescence lifetime imaging to differentiate bound from unbound ICG-cRGD both in vitro and in vivo
    Stegehuis, Paulien L.
    Boonstra, Martin C.
    de Rooij, Karien E.
    Powolny, Francois E.
    Sinisi, Riccardo
    Homulle, Harald
    Bruschini, Claudio
    Charbon, Edoardo
    van de Velde, Cornelis J. H.
    Lelieveldt, Boudewijn P. F.
    Vahrmeijer, Alexander L.
    Dijkstra, Jouke
    van de Giessen, Martijn
    ADVANCED BIOMEDICAL AND CLINICAL DIAGNOSTIC AND SURGICAL GUIDANCE SYSTEMS XIII, 2015, 9313
  • [30] Multiphoton microscopy and fluorescence lifetime imaging provide a novel method in studying drug distribution and metabolism in the rat liver in vivo
    Thorling, Camilla A.
    Dancik, Yuri
    Hupple, Clinton W.
    Medley, Gregory
    Liu, Xin
    Zvyagin, Andrei V.
    Robertson, Tom A.
    Burczynski, Frank J.
    Roberts, Michael S.
    JOURNAL OF BIOMEDICAL OPTICS, 2011, 16 (08)