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Noninvasive Imaging of Tumor PD-L1 Expression Using [99mTc]Tc-Labeled KN035 with SPECT/CT
Yingying Zhang1, Ying Ding1,2,3,4, Ning Li1
1Department of Nuclear Medicine, The Affiliated Cancer Hospital of Zhengzhou University & Henan Cancer Hospital, Zhengzhou 450008, China.
Abstract:
Programmed cell death protein-1/ligand-1 (PD-1/PD-L1) checkpoint blockade is a major breakthrough in cancer therapy, but identifying patients likely to benefit from this therapy remains challenging. Immunohistochemistry is not informative about PD-L1 expression heterogeneity because of the limitations of invasive tissue collection. Noninvasive SPECT imaging is an approach to patient selection and therapeutic monitoring by assessing the PD-L1 status throughout the whole body. Here, we radiolabeled a single-domain PD-L1 antibody with technetium-99m (99mTc) for immune-SPECT imaging to evaluate its feasibility of detecting PD-L1 expression. The radiochemical purity of [99mTc]Tc-HYNIC-KN035 was 99.40 ± 0.11% with a specific activity of 2.68 MBq/μg. [99mTc]Tc-HYNIC-KN035 displayed a high PD-L1 specificity both in vitro and in vivo and showed a high specific affinity for PD-L1 with an equilibrium dissociation constant (KD) of 31.04 nM. The binding of [99mTc]Tc-HYNIC-KN035 to H1975 cells (high expression of PD-L1) was much higher than to A549 cells (low expression of PD-L1). SPECT/CT imaging showed that H1975 tumors were visualized at 4 h post-injection and became clearer with time. However, mild tumor uptake was observed in A549 tumors and H1975 tumors of the blocking group at all time points. The uptake value of [99mTc]Tc-HYNIC-KN035 in H1975 tumors was increased continuously from 9.68 ± 0.91% ID/g at 4 h to 13.31 ± 2.23% ID/g at 24 h post-injection, which was higher than in A549 tumors with %ID/g of 4.59 ± 0.76 and 5.54 ± 0.28 at 4 and 24 h post-injection, respectively. These specific bindings were confirmed by blocking studies. [99mTc]Tc-HYNIC-KN035 can be synthesized easily and specifically targeted to PD-L1 in the tumor environment, allowing PD-L1 expression assessment noninvasively and dynamically with SPECT/CT imaging.
Insights
This study developed a novel technetium-99m (99mTc) labeled antibody for SPECT imaging to noninvasively assess Programmed cell death protein-1 ligand-1 (PD-1/PD-L1) expression in tumors. This approach can help identify cancer patients who will benefit from PD-1/PD-L1 checkpoint blockade therapy.
Area of Science:
- Nuclear medicine
- Oncology
- Immunotherapy
Background:
- Programmed cell death protein-1/ligand-1 (PD-1/PD-L1) checkpoint blockade is a vital cancer therapy.
- Identifying patients who will respond to PD-1/PD-L1 therapy is challenging due to limitations of current methods like immunohistochemistry.
Purpose of the Study:
- To develop and evaluate a noninvasive SPECT imaging agent for assessing PD-L1 expression throughout the body.
- To determine the feasibility of using radiolabeled antibodies for patient selection and therapeutic monitoring in PD-1/PD-L1 targeted cancer therapy.
Main Methods:
- Radiolabeling of a single-domain PD-L1 antibody (KN035) with technetium-99m (99mTc).
- In vitro and in vivo evaluation of the radiolabeled antibody's specificity and affinity for PD-L1.
- SPECT/CT imaging in tumor-bearing mice to assess PD-L1 expression in H1975 (high PD-L1) and A549 (low PD-L1) tumors.
Main Results:
- High radiochemical purity (>99%) and specific activity of [99mTc]Tc-HYNIC-KN035.
- Demonstrated high specificity and affinity (KD = 31.04 nM) for PD-L1 in vitro and in vivo.
- SPECT/CT imaging revealed significantly higher uptake in H1975 tumors compared to A549 tumors, with uptake increasing over time (9.68% ID/g at 4h to 13.31% ID/g at 24h in H1975 vs. 4.59% ID/g to 5.54% ID/g in A549).
- Blocking studies confirmed the specificity of tumor uptake.
Conclusions:
- [99mTc]Tc-HYNIC-KN035 can be easily synthesized and specifically targets PD-L1 in tumors.
- Noninvasive SPECT/CT imaging with [99mTc]Tc-HYNIC-KN035 allows for dynamic and whole-body assessment of PD-L1 expression.
- This imaging approach holds promise for improving patient selection and monitoring therapeutic response in PD-1/PD-L1 targeted cancer therapies.
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