Application of enzyme-responsive fluorescent probes in the precise diagnosis of Hepatocellular Carcinoma
DOI:
https://doi.org/10.61173/e7dprh77Keywords:
Enzyme-activatable fluorescent probes, Hepatocellular carcinoma, Enzyme activity imaging, Near-infrared probes, Intraoperative navigationAbstract
Hepatocellular carcinoma (HCC) is a highly lethal malignacy with rising global incidence, where early diagnosis is essential for improving patient outcomes. However, conventional imaging techniques (ultrasound, CT, MRI) and serum biomarkers (e.g., AFP) remain limited in early-stage lesion localization, detection of micro-metastases, and real-time intraoperative navigation. In recent years, enzyme-activatable fluorescent probes, designed around the aberrant expression or activity of tumor-associated enzymes, have shown rapid advances and offer promising strategies for highly sensitive, realtime, and targeted molecular imaging. These probes exploit specific enzymatic activities within the tumor microenvironment, converting non-fluorescent or weakly fluorescent precursors into activated fluorophores or amplifying signals to achieve high-contrast imaging. Their molecular design integrates a recognition unit, fluorophore, and signal-modulation module, enabling switch-on or ratiometric outputs optimized for different enzymatic targets. Compared with traditional molecular imaging, these probes provide faster response, reduced background interference, and enhanced stability in vivo. Emerging developments, including multimodal imaging (e.g., photoacoustic–fluorescence) and dual-enzyme logic-gated systems, further improve diagnostic precision. This review summarizes the design principles, key enzymatic targets, and representative applications of enzyme-activatable fluorescent probes in HCC, and discusses future directions for multimodal integration and clinical translation.
References
T, Kobayashi H, Urano Y, 2015. Sensitive β-galactosidase-targeting fluorescence probe for visualizing small peritoneal metastatic tumours in vivo. Nature Communications, 6, 6463, doi: 10.1038/ncomms7463. Chen XX, Ren XX, Zhu YH, Fan ZY, Zhang LL, Liu
ZJ, Dong L, Hai ZJ, 2021. Cathepsin B-activated fluorescent and photoacoustic imaging of tumor. Analytical Chemistry, 93(27), 9304–9308, doi: 10.1021/acs.analchem.1c02145 Gao M, Lee SH, Kwon HY, Ciaramicoli LM, Jo E, Yu YH, Li FM, Kim B, Hong K, Lee JS, Kim N, Oh Y, Im
CY, Tan CSH, Ha HH, Chagn YT, 2024. A Pair of fluorescent probes enabling precise diagnosis of liver cancer by complementary imaging. ACS Central Science, 11(1), 76- 83. Doi: 10.1021/acscentsci.4c01822 Habibollahi P, Figueiredo JL, Heidari P, Dulak AM, Imamura Y, Bass AJ, Ogino S, Chan AT, Mahmood U, 2012. Optical imaging with a Cathepsin B activated probe for the enhanced detection of Esophageal Adenocarcinoma by dual channel fluorescent upper GI endoscopy. Theranostics, 2(2), 227-234, doi: 10.7150/thno.4088 Khatun S, Biswas S, Mahanta, AK, Joseph MM, Vidyalekshmi MS, Podder A, Maiti P, Maiti KK, Bhuniya S, 2020. Biocompatible fluorescent probe for detecting mitochondrial alkaline phosphatase activity in live cells. Journal of Photochemistry and Photbiology B: Biology, 212, 112043, doi: 10.1016/j.jphotobiol.2020.112043.
Lian J, Wang YP, Sun XM, Shi Q, Meng FD, 2022. Progress on multifunction enzyme-activated organic fluorescent probes for bioimaging. Frontiers in Chemistry, 10, doi: 10.3389/fchem.2022.935586. Liao YH, Pan gWL, Yang YC, Lu MY, Huang XX, Su XY, Chen SX, Hu JM, Deng JX, Li SQ, Luo XT, Yan ZM,
Lu FC, Yang MX, Liu Y, 2025. A dual-locked hepatic-targeting fluorescent probe for hepatocellular carcinoma imaging with HClO and β-galactosidase activation. Sensors and Actuators B: Chemical, 444(2), 138417, doi: 10.1016/ j.snb.2025.138417. Lu SB, Wei LY, He WJ, Bi ZY, Qian YH, Wang JH, Lei
HQ, Li K, 2022. Recent Advances in the Enzyme-Activatable Organic Fluorescent Probes: design principles and biomedical applications. ChemistryOpen, 11 (10), doi: 10.1002/open.202200137. Luo XZ, Hu EZ, Deng F, Zhagn CL, Xian YZ, 2025. A dual-enzyme activated fluorescent probe for precise identification of tumor senescence. Chemical Science, 16, 6507-6514, doi: 10.1039/D5SC00103J. Nakamura Y, Mochida A, Nagaya T, Okuyama S, Ogata
F, Choyke PL, Kobayashi H, 2017. A topically-sprayable, activatable fluorescent and retaining probe, SPiDER-βGal for detecting cancer: Advantages of anchoring to cellular proteins after activation. Oncotarget, 8(24), 39512-39521, 10.18632/oncotarget.17080. Ni YH, Hai ZJ, Zhagn T Wang YF, Yang YY, Zhang SS,
Liang GL, 2019. Cathepsin B turning bioluminescence “on” for tumor imaging. Analytical Chemistry, 91(23), 14834-14837, doi: 10.1021/acs.analchem.9b04254. Ryu JH, Na JH, Ko HK, You DG, Par S, Jun E, Yoem HJ, Seo DH, Park JH, Jeong SY, Kim USM Kim BS, Kwon
IC, Choi K, Kim K, 2014. Non-invasive optical imaging of cathepsin B with activatable fluorogenic nanoprobes in various metastatic models. Biomaterials, 35(7), 2302- Dean&Francis Youran Hou 2311, doi: 10.1016/j.biomaterials.2013.11.080. Xiao T, Chen DD, Peng L, Li ZX, Pan WM, Dong YP,
Zhang JX, Li M, 2025. Fluorescence-guided Surgery for Hepatocellular Carcinoma: From Clinical Practice to Laboratories. Journal of Clinical and Translational Hepatology, 13(3), 216-232, doi: 10.14218/jcth.2024.00375 Yan RQ, Hu YX, Liu F, Wei SX, Fang DQ, Schuhendler
AJ, Liu H, Chen HY, Ye DJ, 2019. Activatable NIR fluorescence/MRI bimodal probes for in vivo imaging by enzyme-mediated fluorogenic reaction and self-assembly. Journal of the American Chemical Society, 141(26), 10331-10341, doi: 10.1021/jacs.9b03649. Yuan M, Wu Y, Zhao CY, Chen ZX, Su LC, Yang HH,
Song JB, 2022. Activated molecular probes for enzyme recognition and biomedical applications. Theranostics, 12(3), 1459–1485, doi: 10.7150/thno.66676. Zhang XY, Chen XZ, Liu KZ, Zhang YY, Gao G, Huang
XQ, Hou SC, 2020. Near-infrared ratiometric probe with a self-immolative spacer for rapid and sensitive detection of alkaline phosphatase activity and imaging in vivo. Analytica Chimica Acta, 1094, 113-121, doi: 10.1016/ j.aca.2019.10.001. Zhou TJ, Li L, Zhu ZR, Chen XY, Wang Q, Zhu WH, 2023. Serum-based detection of liver pathology using a fluorogenic alkaline phosphatase probe. ChemBioChem, 24(18), e202300321, doi: 10.1002/cbic.202300321.
Downloads
Published
Issue
Section
License
Copyright (c) 2026 by the authors.

This work is licensed under a Creative Commons Attribution 4.0 International License.
