Chemiluminescence-Driven Tyramide Amplification for High-Sensitivity and Long-Term Immunofluorescence Imaging
Fang Zhao1, Jingya Xiao1, Hao He2
1Guangdong Provincial Key Laboratory of Advanced Biomaterials, Department of Biomedical Engineering, Southern University of Science and Technology, Shenzhen 518055, China.
Insights
ChemTIF, a novel chemiluminescence-triggered immunofluorescence (IF) method, overcomes limitations of traditional IF by reducing photodamage and enhancing signal. This technique enables high-fidelity imaging for spatial proteomics and biomedical research.
Area of Science:
- Biotechnology
- Microscopy
- Molecular Biology
Background:
- Immunofluorescence (IF) is crucial for visualizing biomolecules but suffers from photobleaching, photodamage, and autofluorescence.
- These limitations hinder the detection of low-abundance targets and long-term imaging.
- Conventional IF relies on strong external light excitation, causing signal degradation.
Purpose of the Study:
- To introduce ChemTIF, a chemiluminescence-triggered IF method.
- To overcome the limitations of conventional IF imaging.
- To enable high-fidelity longitudinal imaging in spatial proteomics and biomedical research.
Main Methods:
- ChemTIF integrates horseradish peroxidase (HRP)-catalyzed tyramide signal amplification with luminol-based chemiluminescence.
- It utilizes localized chemiluminescence resonance energy transfer to excite fluorophores, eliminating strong external light excitation.
- The method was tested in cellular and tissue models for static and dynamic imaging.
Main Results:
- ChemTIF achieved up to 25-fold signal amplification in cells and 12-fold in tissues.
- It demonstrated significantly reduced background noise and photodamage compared to conventional IF.
- Extended signal duration (up to 33 min in cells, 57 min in tissues) and minimal autofluorescence were observed.
Conclusions:
- ChemTIF offers superior sensitivity and signal duration, outperforming conventional IF.
- Its compatibility with cyclic imaging supports high-throughput applications with minimal photodamage.
- ChemTIF is a robust platform for high-fidelity longitudinal imaging in spatial proteomics and biomedical research.
Abstract:
Immunofluorescence (IF) staining serves as a fundamental technique for visualizing biomolecule localization. However, its sensitivity and effectiveness are often constrained by photobleaching, photodamage, and tissue autofluorescence, particularly in low-abundance targets or in long-term imaging. Here, we present ChemTIF, a chemiluminescence-triggered IF method that overcomes these intrinsic limitations by eliminating strong external light excitation. ChemTIF integrates horseradish peroxidase (HRP)-catalyzed tyramide signal amplification with luminol-based chemiluminescence, leveraging localized chemiluminescence resonance energy transfer to excite fluorophores at the target site. In contrast to conventional IF imaging that directly excites fluorophores with a strong laser, our method achieves up to 25-fold amplification in cells and 12-fold signal amplification in tissues under the same low-power illumination, while significantly reducing background noise and photodamage. In cellular and tissue models, ChemTIF demonstrated superior sensitivity, extended signal duration (up to 33 and 57 min for cells and tissues, respectively), and minimal autofluorescence, thereby outperforming the conventional IF technique (6-13 min for cells and tissues, respectively) in both static and dynamic imaging studies. Its compatibility with cyclic imaging further supports high-throughput applications with minimal photodamage for multiplex detection in tissues. Collectively, these capabilities position ChemTIF as a robust platform, enabling high-fidelity longitudinal imaging in spatial proteomics and biomedical research.
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