Intraoperative microscopic autofluorescence detection and characterization in brain tumors using stimulated Raman histology and two-photon fluorescence

被引:14
作者
Fuertjes, Gina [1 ,2 ,3 ,4 ,5 ]
Reinecke, David [1 ]
von Spreckelsen, Niklas [1 ]
Meissner, Anna-Katharina [1 ]
Ruess, Daniel [6 ]
Timmer, Marco [1 ]
Freudiger, Christian [7 ]
Ion-Margineanu, Adrian [7 ]
Khalid, Florian [7 ]
Watrinet, Konstantin [8 ]
Mawrin, Christian [9 ]
Chmyrov, Andriy [2 ,3 ,4 ,5 ]
Goldbrunner, Roland [1 ]
Bruns, Oliver [2 ,3 ,4 ,5 ]
Neuschmelting, Volker [1 ]
机构
[1] Univ Hosp Cologne, Ctr Neurosurg, Dept Gen Neurosurg, Cologne, Germany
[2] Helmholtz Zentrum Munchen, Neuherberg, Germany
[3] Natl Ctr Tumor Dis NCT UCC, Dresden, Germany
[4] German Canc Res Ctr, Heidelberg, Germany
[5] Helmholtz Zentrum Dresden Rossendorf HZDR, Dresden, Germany
[6] Univ Hosp Cologne, Ctr Neurosurg, Dept Stereotaxy & Funct Neurosurg, Cologne, Germany
[7] Invenio Imaging Inc, Santa Clara, CA USA
[8] Heidelberg Univ, Med Fac, Heidelberg, Germany
[9] Univ Hosp Magdeburg, Inst Neuropathol, Magdeburg, Germany
来源
FRONTIERS IN ONCOLOGY | 2023年 / 13卷
关键词
brain tumor; autofluorescence; artificial intelligence; stimulated Raman histology; fluorescence-guided surgery (FGS); SPECTROSCOPY; LIPOFUSCIN;
D O I
10.3389/fonc.2023.1146031
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
IntroductionThe intrinsic autofluorescence of biological tissues interferes with the detection of fluorophores administered for fluorescence guidance, an emerging auxiliary technique in oncological surgery. Yet, autofluorescence of the human brain and its neoplasia is sparsely examined. This study aims to assess autofluorescence of the brain and its neoplasia on a microscopic level by stimulated Raman histology (SRH) combined with two-photon fluorescence. MethodsWith this experimentally established label-free microscopy technique unprocessed tissue can be imaged and analyzed within minutes and the process is easily incorporated in the surgical workflow. In a prospective observational study, we analyzed 397 SRH and corresponding autofluorescence images of 162 samples from 81 consecutive patients that underwent brain tumor surgery. Small tissue samples were squashed on a slide for imaging. SRH and fluorescence images were acquired with a dual wavelength laser (790 nm and 1020 nm) for excitation. In these images tumor and non-tumor regions were identified by a convolutional neural network that reliably differentiates between tumor, healthy brain tissue and low quality SRH images. The identified areas were used to define regions.of- interests (ROIs) and the mean fluorescence intensity was measured. ResultsIn healthy brain tissue, we found an increased mean autofluorescence signal in the gray (11.86, SD 2.61, n=29) compared to the white matter (5.99, SD 5.14, n=11, p<0.01) and in the cerebrum (11.83, SD 3.29, n=33) versus the cerebellum (2.82, SD 0.93, n=7, p<0.001), respectively. The signal of carcinoma metastases, meningiomas, gliomas and pituitary adenomas was significantly lower (each p<0.05) compared to the autofluorescence in the cerebrum and dura, and significantly higher (each p<0.05) compared to the cerebellum. Melanoma metastases were found to have a higher fluorescent signal (p<0.01) compared to cerebrum and cerebellum. DiscussionIn conclusion we found that autofluorescence in the brain varies depending on the tissue type and localization and differs significantly among various brain tumors. This needs to be considered for interpreting photon signal during fluorescence-guided brain tumor surgery.
引用
收藏
页数:12
相关论文
共 56 条
  • [1] CHROMATOGRAPHY AND SPECTROFLUOROMETRY OF BRAIN FLUOROPHORES IN NEURONAL CEROID LIPOFUSCINOSIS (NCL)
    ARMSTRONG, D
    WILHELM, J
    SMID, F
    ELLEDER, M
    [J]. MECHANISMS OF AGEING AND DEVELOPMENT, 1992, 64 (03) : 293 - 302
  • [2] Bauman MMJ, 2022, NEUROSURG FOCUS, V53, DOI 10.3171/2022.9.FOCUS22429
  • [3] Combining near-infrared-excited autofluorescence and Raman spectroscopy improves in vivo diagnosis of gastric cancer
    Bergholt, Mads Sylvest
    Zheng, Wei
    Lin, Kan
    Ho, Khek Yu
    Teh, Ming
    Yeoh, Khay Guan
    So, Jimmy Bok Yan
    Huang, Zhiwei
    [J]. BIOSENSORS & BIOELECTRONICS, 2011, 26 (10) : 4104 - 4110
  • [4] Development of a skin phantom of the epidermis and evaluation by using fluorescence techniques
    Bergmann, Thorsten
    Beer, Sebastian
    Maeder, Ulf
    Burg, Jan M.
    Schlupp, Peggy
    Schmidts, Thomas
    Runkel, Frank
    Fiebich, Martin
    [J]. OPTICAL DIAGNOSTICS AND SENSING XI: TOWARD POINT-OF-CARE DIAGNOSTICS AND DESIGN AND PERFORMANCE VALIDATION OF PHANTOMS USED IN CONJUNCTION WITH OPTICAL MEASUREMENT OF TISSUE III, 2011, 7906
  • [5] QUANTITATIVE-ANALYSIS OF INTRACELLULAR BEHAVIOR OF PORPHYRINS
    BOTTIROLI, G
    RAMPONI, R
    CROCE, AC
    [J]. PHOTOCHEMISTRY AND PHOTOBIOLOGY, 1987, 46 (05) : 663 - 667
  • [6] Next-generation in vivo optical imaging with short-wave infrared quantum dots
    Bruns, Oliver T.
    Bischof, Thomas S.
    Harris, Daniel K.
    Franke, Daniel
    Shi, Yanxiang
    Riedemann, Lars
    Bartelt, Alexander
    Jaworski, Frank B.
    Carr, Jessica A.
    Rowlands, Christopher J.
    Wilson, Mark W. B.
    Chen, Ou
    Wei, He
    Hwang, Gyu Weon
    Montana, Daniel M.
    Coropceanu, Igor
    Achorn, Odin B.
    Kloepper, Jonas
    Heeren, Joerg
    So, Peter T. C.
    Fukumura, Dai
    Jensen, Klavs F.
    Jain, Rakesh K.
    Bawendi, Moungi G.
    [J]. NATURE BIOMEDICAL ENGINEERING, 2017, 1 (04):
  • [7] Shortwave infrared fluorescence imaging with the clinically approved near-infrared dye indocyanine green
    Carr, Jessica A.
    Franke, Daniel
    Caram, Justin R.
    Perkinson, Collin F.
    Saif, Mari
    Askoxylakis, Vasileios
    Datta, Meenal
    Fukumura, Dai
    Jain, Rakesh K.
    Bawendi, Moungi G.
    Bruns, Oliver T.
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2018, 115 (17) : 4465 - 4470
  • [8] Real-time detection of breast cancer at the cellular level
    Carver, Gary E.
    Locknar, Sarah A.
    Weaver, Donald L.
    Stein, Janet L.
    Stein, Gary S.
    [J]. JOURNAL OF CELLULAR PHYSIOLOGY, 2019, 234 (05) : 5413 - 5419
  • [9] Comparison of the performance of linear multivariate analysis methods for normal and dyplasia tissues differentiation using autofluorescence spectroscopy
    Chu, Shou Chia
    Hsiao, Tzu-Chien Ryan
    Lin, Jen K.
    Wang, Chih-Yu
    Chiang, Huihua Kenny
    [J]. IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2006, 53 (11) : 2265 - 2273
  • [10] From molecular structure to tissue architecture: collagen organization probed by SHG microscopy
    Cicchi, Riccardo
    Vogler, Nadine
    Kapsokalyvas, Dimitrios
    Dietzek, Benjamin
    Popp, Juergen
    Pavone, Francesco Saverio
    [J]. JOURNAL OF BIOPHOTONICS, 2013, 6 (02) : 129 - 142