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Development of a nanobody-based immunoassay for the sensitive detection of fibrinogen-like protein 1
Wan-Ting Zhang1, Ting-Ting Liu2, Man Wu3
1School of Chemistry, Chemical Engineering and Life Sciences, Wuhan University of Technology, Wuhan, 420070, China.
Abstract:
Immune checkpoint inhibition is an important strategy in cancer therapy. Blockade of CTLA-4 and PD-1/PD-L1 is well developed in clinical practice. In the last few years, LAG-3 has received much interest as an emerging novel target in immunotherapy. It was recently reported that FGL1 is a major ligand of LAG-3, which is normally secreted by the liver but is upregulated in several human cancers. FGL1 is a crucial biomarker and target for cancer immunotherapy. As the efficacy of immunotherapy is limited to specific types of patients, the subset of patients needs to be selected appropriately to receive precise treatment according to different biomarkers. To date, there is no test to accurately assess FGL1 expression levels. Nanobodies have some outstanding features, such as high stability, solubility and affinity for diagnostic and therapeutic applications. Here, we report the development and validation of a rapid, sensitive, and cost-effective nanobody-based immunoassay for the detection of FGL1 in human serum. In this study, human FGL1 recombinant protein was expressed and purified for the first time as an immunized antigen. Then, we constructed a nanobody phage display library and screened several nanobodies that bind FGL1 with high affinity. We selected two nanobodies targeting different epitopes of FGL1, one as a capture and the other conjugated with HRP as a probe. The double nanobody-based sandwich ELISA to detect the concentration of FGL1 showed a good response relationship in the range of 15.625-2000 ng/mL, and the recoveries from the spiked sample were in the range of 78% and 100%. This assay could be used as a potential approach for evaluating FGL1 expression for patient stratification and for predicting the therapeutic efficacy of targeting the LAG3/FGL1 axis.
Insights
Researchers developed a novel nanobody immunoassay to detect FGL1, a key biomarker for cancer immunotherapy. This sensitive assay aids in identifying patients who will benefit from treatments targeting the LAG3/FGL1 pathway.
Area of Science:
- Immunology
- Oncology
- Biotechnology
Background:
- Immune checkpoint inhibitors like CTLA-4 and PD-1/PD-L1 are established cancer therapies.
- LAG-3 is an emerging immunotherapy target, with FGL1 identified as its major ligand, often upregulated in cancers.
- Accurate assessment of FGL1 expression is crucial for patient stratification in immunotherapy but lacks reliable tests.
Purpose of the Study:
- To develop and validate a rapid, sensitive, and cost-effective nanobody-based immunoassay for detecting FGL1 in human serum.
- To establish a tool for evaluating FGL1 as a biomarker for patient selection and predicting immunotherapy efficacy.
Main Methods:
- Recombinant human FGL1 protein was expressed and purified as an antigen.
- A nanobody phage display library was constructed and screened for high-affinity FGL1 binders.
- A double nanobody-based sandwich ELISA was developed using distinct FGL1-targeting nanobodies for capture and detection.
Main Results:
- The developed ELISA demonstrated a good response in the FGL1 concentration range of 15.625-2000 ng/mL.
- Spiked samples showed high recovery rates, ranging from 78% to 100%.
- The assay is sensitive, rapid, and cost-effective.
Conclusions:
- The nanobody-based immunoassay provides a reliable method for quantifying FGL1 in human serum.
- This assay can potentially be used for patient stratification and predicting therapeutic response in LAG3/FGL1-targeted immunotherapies.

