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Development of a 68Gallium-Labeled D-Peptide PET Tracer for Imaging Programmed Death-Ligand 1 Expression
Published on: February 3, 2023
Multiscale imaging of therapeutic anti-PD-L1 antibody localization using molecularly defined imaging agents
Iris M Hagemans1,2, Peter J Wierstra3, Kas Steuten1,2
1Department of Tumor Immunology, Radboud Institute for Molecular Life Sciences, Radboud University Medical Center, Nijmegen, The Netherlands.
Background:
While immune checkpoint inhibitors such as anti-PD-L1 antibodies have revolutionized cancer treatment, only subgroups of patients show durable responses. Insight in the relation between clinical response, PD-L1 expression and intratumoral localization of PD-L1 therapeutics could improve patient stratification. Therefore, we present the modular synthesis of multimodal antibody-based imaging tools for multiscale imaging of PD-L1 to study intratumoral distribution of PD-L1 therapeutics.
Results:
To introduce imaging modalities, a peptide containing a near-infrared dye (sulfo-Cy5), a chelator (DTPA), an azide, and a sortase-recognition motif was synthesized. This peptide and a non-fluorescent intermediate were used for site-specific functionalization of c-terminally sortaggable mouse IgG1 (mIgG1) and Fab anti-PD-L1. To increase the half-life of the Fab fragment, a 20 kDa PEG chain was attached via strain-promoted azide-alkyne cycloaddition (SPAAC). Biodistribution and imaging studies were performed with 111In-labeled constructs in 4T1 tumor-bearing mice. Comparing our site-specific antibody-conjugates with randomly conjugated antibodies, we found that antibody clone, isotype and method of DTPA conjugation did not change tumor uptake. Furthermore, addition of sulfo-Cy5 did not affect the biodistribution. PEGylated Fab fragment displayed a significantly longer half-life compared to unPEGylated Fab and demonstrated the highest overall tumor uptake of all constructs. PD-L1 in tumors was clearly visualized by SPECT/CT, as well as whole body fluorescence imaging. Immunohistochemistry staining of tumor sections demonstrated that PD-L1 co-localized with the fluorescent and autoradiographic signal. Intratumoral localization of the imaging agent could be determined with cellular resolution using fluorescent microscopy.
Conclusions:
A set of molecularly defined multimodal antibody-based PD-L1 imaging agents were synthesized and validated for multiscale monitoring of PD-L1 expression and localization. Our modular approach for site-specific functionalization could easily be adapted to other targets.
Insights
Researchers developed novel imaging agents to visualize programmed cell death ligand 1 (PD-L1) in tumors. These agents enable multiscale monitoring of PD-L1 expression and localization, potentially improving cancer patient stratification for immunotherapy.
Area of Science:
- Immunology
- Oncology
- Bioconjugation Chemistry
Background:
- Immune checkpoint inhibitors like anti-PD-L1 antibodies have transformed cancer therapy, but response rates vary.
- Understanding PD-L1 expression and therapeutic localization is crucial for patient stratification.
- Novel imaging tools are needed to study PD-L1 dynamics within tumors.
Purpose of the Study:
- To develop and validate multimodal antibody-based imaging agents for multiscale PD-L1 visualization.
- To investigate the intratumoral distribution of PD-L1 therapeutics.
- To create tools for improved patient stratification in cancer immunotherapy.
Main Methods:
- Modular synthesis of antibody conjugates with imaging modalities (near-infrared dye, chelator, azide).
- Site-specific functionalization of anti-PD-L1 antibodies (mIgG1 and Fab) using sortase technology.
- PEGylation of Fab fragments to enhance half-life; biodistribution and imaging studies in tumor-bearing mice (SPECT/CT, fluorescence microscopy).
Main Results:
- Site-specific antibody conjugates successfully visualized PD-L1 in tumors.
- PEGylated Fab fragments showed longer half-life and highest tumor uptake.
- Imaging agents co-localized with PD-L1, enabling cellular-resolution localization studies.
Conclusions:
- A set of molecularly defined, multimodal antibody-based PD-L1 imaging agents were synthesized and validated.
- These agents allow for multiscale monitoring of PD-L1 expression and localization.
- The modular, site-specific functionalization approach is adaptable to other therapeutic targets.
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