The complementary value of intraoperative fluorescence imaging and Raman spectroscopy for cancer surgery: combining the incompatibles

被引:19
|
作者
Lauwerends, L. J. [1 ]
Abbasi, H. [1 ,2 ]
Schut, T. C. Bakker [2 ]
Van Driel, P. B. A. A. [3 ]
Hardillo, J. A. U. [1 ]
Santos, I. P. [4 ]
Barroso, E. M. [5 ]
Koljenovic, S. [6 ]
Vahrmeijer, A. L. [7 ]
de Jong, R. J. Baatenburg [1 ]
Puppels, G. J. [2 ]
Keereweer, S. [1 ]
机构
[1] Erasmus MC, Dept Otorhinolaryngol Head & Neck Surg, Canc Inst, Rotterdam, Netherlands
[2] Erasmus MC, Ctr Opt Diagnost & Therapy, Dept Dermatol, Canc Inst, Rotterdam, Netherlands
[3] Isala Hosp, Dept Orthoped Surg, Zwolle, Netherlands
[4] Univ Coimbra, Dept Chem, Mol Phys Chem R&D Unit, Coimbra, Portugal
[5] AlfaRim Med Holding, Delft, Netherlands
[6] Antwerp Univ, Dept Pathol, Antwerp Univ Hosp, Antwerp, Belgium
[7] Leiden Univ, Dept Surg, Med Ctr, Leiden, Netherlands
关键词
Raman spectroscopy; Fluorescence imaging; Image-guided surgery; Tumour differentiation; Resection margin assessment; Multimodal optical diagnostics; NEAR-INFRARED-FLUORESCENCE; POSITIVE SURGICAL MARGINS; RENAL-CELL CARCINOMA; INDOCYANINE GREEN; LUNG-CANCER; RADICAL PROSTATECTOMY; RESECTION MARGINS; LOCAL RECURRENCE; GUIDED RESECTION; OVARIAN-CANCER;
D O I
10.1007/s00259-022-05705-z
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
A clear margin is an important prognostic factor for most solid tumours treated by surgery. Intraoperative fluorescence imaging using exogenous tumour-specific fluorescent agents has shown particular benefit in improving complete resection of tumour tissue. However, signal processing for fluorescence imaging is complex, and fluorescence signal intensity does not always perfectly correlate with tumour location. Raman spectroscopy has the capacity to accurately differentiate between malignant and healthy tissue based on their molecular composition. In Raman spectroscopy, specificity is uniquely high, but signal intensity is weak and Raman measurements are mainly performed in a point-wise manner on microscopic tissue volumes, making whole-field assessment temporally unfeasible. In this review, we describe the state-of-the-art of both optical techniques, paying special attention to the combined intraoperative application of fluorescence imaging and Raman spectroscopy in current clinical research. We demonstrate how these techniques are complementary and address the technical challenges that have traditionally led them to be considered mutually exclusive for clinical implementation. Finally, we present a novel strategy that exploits the optimal characteristics of both modalities to facilitate resection with clear surgical margins.
引用
收藏
页码:2364 / 2376
页数:13
相关论文
共 50 条
  • [21] New Intraoperative Imaging Tools and Image-Guided Surgery in Gastric Cancer Surgery
    Knospe, Luise
    Gockel, Ines
    Jansen-Winkeln, Boris
    Thieme, Rene
    Niebisch, Stefan
    Moulla, Yusef
    Stelzner, Sigmar
    Lyros, Orestis
    Diana, Michele
    Marescaux, Jacques
    Chalopin, Claire
    Koehler, Hannes
    Pfahl, Annekatrin
    Maktabi, Marianne
    Park, Ji-Hyeon
    Yang, Han-Kwang
    DIAGNOSTICS, 2022, 12 (02)
  • [22] Intraoperative Targeted Optical Imaging: A Guide towards Tumor-Free Margins in Cancer Surgery
    Orbay, Hakan
    Bean, Jero
    Zhang, Yin
    Cai, Weibo
    CURRENT PHARMACEUTICAL BIOTECHNOLOGY, 2013, 14 (08) : 733 - 742
  • [23] Intraoperative fluorescence imaging to localize tumors and sentinel lymph nodes in rectal cancer
    Handgraaf, Henricus J. M.
    Boogerd, Leonora S. F.
    Verbeek, Floris P. R.
    Tummers, Quirijn R. J. G.
    Hardwick, James C. H.
    Baeten, Coen I. M.
    Frangioni, John V.
    van de Velde, Cornelis J. H.
    Vahrmeijer, Alexander L.
    MINIMALLY INVASIVE THERAPY & ALLIED TECHNOLOGIES, 2016, 25 (01) : 48 - 53
  • [24] Design and Testing of Augmented Reality-Based Fluorescence Imaging Goggle for Intraoperative Imaging-Guided Surgery
    Lee, Seung Hyun
    Quan, Yu Hua
    Kim, Min Sub
    Kwon, Ki Hyeok
    Choi, Byeong Hyeon
    Kim, Hyun Koo
    Kim, Beop-Min
    DIAGNOSTICS, 2021, 11 (06)
  • [25] Real-time fluorescence-enhanced imaging as an aid to surgery in ovarian cancer
    Longmire, Michelle R.
    Gunn, Andrew J.
    Morgan, Nicole Y.
    Smith, Paul D.
    Pohida, Thomas J.
    Koyama, Yoshinori
    Kobayashi, Hisataka
    Choyke, Peter L.
    IEEE JOURNAL OF SELECTED TOPICS IN QUANTUM ELECTRONICS, 2007, 13 (06) : 1602 - 1609
  • [26] Combining 5-Aminolevulinic Acid Fluorescence and Intraoperative Magnetic Resonance Imaging in Glioblastoma Surgery: A Histology-Based Evaluation
    Hauser, Sonja B.
    Kockro, Ralf A.
    Actor, Bertrand
    Sarnthein, Johannes
    Bernays, Rene-Ludwig
    NEUROSURGERY, 2016, 78 (04) : 475 - 483
  • [27] Raman Macroscopic Imaging System for Intraoperative Brain Cancer Detection
    Orsini, Patrick
    Desroches, Joannie
    Daoust, Francois
    Tavera, Hugo
    Dallaire, Frederick
    Savard, Keven
    Bismuth, Jacques
    Mckoy, Philippe
    Veilleux, Israel
    Petrecca, Kevin
    Leblond, Frederic
    MOLECULAR-GUIDED SURGERY, 2023, 12361
  • [28] Infrared intraoperative fluorescence imaging using indocyanine green in thoracic surgery
    Okusanya, Olugbenga T.
    Hess, Nicholas R.
    Luketich, James D.
    Sarkaria, Inderpal S.
    EUROPEAN JOURNAL OF CARDIO-THORACIC SURGERY, 2018, 53 (03) : 512 - 518
  • [29] Intraoperative fluorescence molecular imaging accelerates the coming of precision surgery in China
    Zeyu Zhang
    Kunshan He
    Chongwei Chi
    Zhenhua Hu
    Jie Tian
    European Journal of Nuclear Medicine and Molecular Imaging, 2022, 49 : 2531 - 2543
  • [30] "Bon mariage" of artificial intelligence and intraoperative fluorescence imaging for safer surgery
    Ishizawa, Takeaki
    ARTIFICIAL INTELLIGENCE SURGERY, 2023, 3 (03): : 163 - 165