APPLIED LASER, Volume. 44, Issue 7, 218(2024)
Classification of Human Normal and Carcinoma Colorectal Tissue Based on Fluorescence Lifetime
[1] [1] SUNG H, FERLAY J, SIEGELR L, et al. Global cancer statistics 2020: GLOBOCAN estimates of incidence and mortality worldwide for 36 cancers in 185 countries[J]. CA: A Cancer Journalfor Clinicians, 2021, 71(3): 209-249.
[3] [3] BORST J W, VISSER A J W G. Fluorescence lifetime imaging microscopy in life sciences[J]. Measurement Science and Technology, 2010, 21(10): 102002.
[4] [4] CHACKO J V, ELICEIRI K W. Autofluorescence lifetime imaging of cellular metabolism: Sensitivity toward cell density, pH, intracellular, and intercellular heterogeneity[J]. Cytometry Part A, 2019, 95(1): 56-69.
[5] [5] LAKOWICZ J R, SZMACINSKI H, NOWACZYK K, et al. Fluorescence lifetime imaging of free and protein-bound NADH[J]. Proceedings of the National Academy of Sciences of the United States of America, 1992, 89(4): 1271-1275.
[6] [6] WANG X Y, XIE Y H, HUANG M J, et al. Effect of fixation and mounting on fluorescence lifetime of cellular autofluorescence[J]. IEEE Journal of Selected Topics in Quantum Electronics, 2019, 25(1): 1-6.
[7] [7] AWASTHI K, MORIYA D, NAKABAYASHI T, et al. Sensitive detection of intracellular environment of normal and cancer cells by autofluorescence lifetime imaging[J]. Journal of Photochemistry and Photobiology B, Biology, 2016, 165: 256-265.
[10] [10] NAKANO K, HARADA Y, YAMAOKA Y, et al. Mucosal layer as major source of green autofluorescence in the colon under excitation by blue light[C]//SPIE Proceedings", "Biomedical Optical Spectroscopy. SanJose, CA. SPIE, 2008, 6853:279-284.
[11] [11] AGRAWAL A, PARKER C, QAZI T, et al. Sensitivity and robustness of methods for analyzing time-resolved fluorescence measurements of layered biological tissue[C]//SPIE Proceedings", "Advanced Biomedical and Clinical Diagnostic Systems V. SanJose, CA. SPIE, 2007, 643022: 1-8.
[12] [12] RICO-JIMENEZ J J, SERAFINO M J, SHRESTHA S, et al. Automated detection of superficial macrophages in atherosclerotic plaques using autofluorescence lifetime imaging[J]. Atherosclerosis, 2019, 285: 120-127.
[13] [13] TOZAR T, ANDREI I R, COSTIN R, et al. Laser induced autofluorescence lifetime to identify larynx squamous cell carcinoma: Short series ex vivo study[J]. Journal of Photochemistry and Photobiology B, Biology, 2020, 202: 111724.
[14] [14] RCK A, HAUSER C, MOSCH S, et al. Spectrally resolved fluorescence lifetime imaging to investigate cell metabolism in malignant and nonmalignant oral mucosa cells[J]. Journal of Biomedical Optics, 2014, 19(9): 96005.
[15] [15] ADUR J, PELEGATI V B, BIANCHI M, et al. Multimodal nonlinear optical microscopy used to discriminate human colon cancer[C]//SPIE Proceedings", "Multiphoton Microscopy in the Biomedical Sciences XIII. San Francisco, California, USA. SPIE, 2013, 85881J: 1-8.
[16] [16] GEORGAKOUDI I, QUINN K P. Label-free optical metabolic imaging in cells and tissues[J]. Annual Review of Biomedical Engineering, 2023, 25: 413-443.
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Liu Bingyang, Lin Cheng, Yan Huixian. Classification of Human Normal and Carcinoma Colorectal Tissue Based on Fluorescence Lifetime[J]. APPLIED LASER, 2024, 44(7): 218
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Received: Dec. 25, 2023
Accepted: Jan. 17, 2025
Published Online: Jan. 17, 2025
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