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Updated: Oct 21, 2025

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Published on: February 3, 2023
Imaging of Cancer γ-Secretase Activity Using an Inhibitor-Based PET Probe
Pengju Nie1,2, Teja Kalidindi3, Veronica L Nagle2,4
1Chemical Biology Program, Memorial Sloan Kettering Cancer Center, New York, New York.
Purpose:
Abnormal Notch signaling promotes cancer cell growth and tumor progression in various cancers. Targeting γ-secretase, a pivotal regulator in the Notch pathway, has yielded numerous γ-secretase inhibitors (GSIs) for clinical investigation in the last 2 decades. However, GSIs have demonstrated minimal success in clinical trials in part due to the lack of specific and precise tools to assess γ-secretase activity and its inhibition in vivo.
Experimental Design:
We designed an imaging probe based on GSI Semagacestat structure and synthesized the radioiodine-labeled analogues [131I]- or [124I]-PN67 from corresponding trimethyl-tin precursors. Both membrane- and cell-based ligand-binding assays were performed using [131I]-PN67 to determine the binding affinity and specificity for γ-secretase in vitro. Moreover, we evaluated [124I]-PN67 by PET imaging in mammary tumor and glioblastoma mouse models.
Results:
The probe was synthesized through iodo-destannylation using chloramine-T as an oxidant with a high labeling yield and efficiency. In vitro binding results demonstrate the high specificity of this probe and its ability for target replacement study by clinical GSIs. PET imaging studies demonstrated a significant (P < 0.05) increased in the uptake of [124I]-PN67 in tumors versus blocking or sham control groups across multiple mouse models, including 4T1 allograft, MMTV-PyMT breast cancer, and U87 glioblastoma allograft. Ex vivo biodistribution and autoradiography corroborate these results, indicating γ-secretase specific tumor accumulation of [124I]-PN67.
Conclusions:
[124I]-PN67 is a novel PET imaging agent that enables assessment of γ-secretase activity and target engagement of clinical GSIs.
Insights
A new imaging probe, [124I]-PN67, allows for precise assessment of gamma-secretase activity in tumors. This tool aids in evaluating the effectiveness of gamma-secretase inhibitors (GSIs) for cancer therapy.
Area of Science:
- Biomedical Imaging
- Radiochemistry
- Molecular Oncology
Background:
- Abnormal Notch signaling drives cancer progression.
- Gamma-secretase inhibitors (GSIs) target this pathway but face clinical challenges.
- Lack of precise tools hinders assessment of GSI efficacy in vivo.
Purpose of the Study:
- To develop a novel imaging probe for assessing gamma-secretase activity.
- To evaluate the probe's specificity and efficacy in preclinical cancer models.
- To enable in vivo assessment of gamma-secretase inhibition by clinical GSIs.
Main Methods:
- Synthesis of radioiodine-labeled PN67 ([131I]- or [124I]-PN67) based on GSI Semagacestat.
- In vitro binding assays using [131I]-PN67 to determine affinity and specificity for gamma-secretase.
- Positron Emission Tomography (PET) imaging with [124I]-PN67 in mouse models of breast cancer and glioblastoma.
Main Results:
- High labeling yield and efficiency in synthesizing [124I]-PN67.
- In vitro studies confirmed high specificity and target engagement by clinical GSIs.
- PET imaging showed significant [124I]-PN67 uptake in tumors across multiple models.
- Ex vivo studies corroborated specific tumor accumulation of the probe.
Conclusions:
- [124I]-PN67 is a novel PET imaging agent for gamma-secretase.
- Enables assessment of gamma-secretase activity in vivo.
- Facilitates evaluation of target engagement for clinical GSIs in cancer research.
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