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Mesothelin-targeted alpha therapy in PDAC with [225Ac]Ac-Macropa-PEG6-Amatuximab
Syed Qaiser Shah1, Ralph Santos-Oliveira2, Madeeha Shabnam1
1Nuclear Medicine Research Laboratory, Institute of Chemical Sciences University of Peshawar, Peshawar, 25120 K.P, Pakistan.
Abstract:
Pancreatic ductal adenocarcinoma (PDAC) continues to be deadly and resistant to traditional treatments. Overexpressed in >80% of PDACs, mesothelin is an ideal target for antibody-based α-therapy. Actinium-225 (225Ac) produces high-LET α-particles leading to irreparable DNA damage, but its utility has been compromised by unstable chelation with traditional ligands. Here, we engineered a Macropa-enabled, site-specifically [225Ac]Ac-Macropa-PEG6-Amatuximab, a radioimmunoconjugate against mesothelin. Conjugation and labeling were characterized by MALDI-TOF and SEC-HPLC. In vitro stability, immunoreactivity, and kinetics of binding were tested in mesothelin-positive AsPC-1 cells and subsequently in vivo biodistribution, dosimetry, and therapy in AsPC-1 xenograft-bearing nude mice. Conjugation had an average ratio of 3.6 ± 0.1 for chelator per antibody, radiolabeling efficiency of 96.3 ± 1.1%, and radiochemical purity ≥98%. The radioconjugate was >92% stable after 168 h in serum, with immunoreactivity (82.2 ± 2.8%) and affinity (Kd = 4.3 ± 0.9 nM). It exhibited specific, time-dependent internalization in AsPC-1 cells and minimal nonspecific uptake. In vivo, [225Ac]Ac-Macropa-PEG6-Amatuximab exhibited prolonged circulation, specific tumor localization (3.9 ± 0.5 to 16.3 ± 2.1% ID/g, 1-168 h), and enhanced tumor-to-blood ratios (0.21-3.40). Blocking with unlabeled Amatuximab decreased tumor uptake by >60%. The tumor absorbed dose (1.82 ± 0.14 Gy/MBq) was 4-20-fold greater than doses to normal organs. Therapeutically, it caused dose-dependent tumor regression (TGI: 58% at 50 kBq; 92% at 150 kBq) and prolonged survival (>60 days vs. 0-1% in controls, p < 0.001). [225Ac]Ac-Macropa-PEG6-Amatuximab is stable, selective, and therapeutically effective, demonstrating Macropa-based 225Ac chelation as a stable platform for targeted α-therapy of PDAC.
Insights
A novel radioimmunoconjugate, [225Ac]Ac-Macropa-PEG6-Amatuximab, shows promise for pancreatic cancer therapy. This targeted alpha therapy demonstrates stability, selectivity, and significant tumor regression in preclinical models.
Area of Science:
- Nuclear medicine
- Oncology
- Radiopharmaceutical chemistry
Background:
- Pancreatic ductal adenocarcinoma (PDAC) is a deadly cancer resistant to conventional treatments.
- Mesothelin is overexpressed in PDAC and serves as a viable target for antibody-based alpha-therapy.
- Traditional chelators for Actinium-225 (225Ac) exhibit instability, limiting its therapeutic application.
Purpose of the Study:
- To engineer a stable and effective Actinium-225-based radioimmunoconjugate for mesothelin-targeted alpha therapy in PDAC.
- To evaluate the in vitro and in vivo characteristics of the novel radioconjugate [225Ac]Ac-Macropa-PEG6-Amatuximab.
Main Methods:
- Development of a Macropa-enabled, site-specifically labeled radioimmunoconjugate, [225Ac]Ac-Macropa-PEG6-Amatuximab.
- Characterization of conjugation and radiolabeling efficiency using MALDI-TOF and SEC-HPLC.
- In vitro assessment of stability, immunoreactivity, and binding kinetics in mesothelin-positive AsPC-1 cells.
- In vivo evaluation of biodistribution, dosimetry, and therapeutic efficacy in AsPC-1 xenograft mouse models.
Main Results:
- The radioconjugate demonstrated high radiolabeling efficiency (>96%) and radiochemical purity (≥98%).
- High stability (>92% after 168h in serum) and potent immunoreactivity (82.2%) with nanomolar affinity (Kd=4.3 nM) were observed.
- In vivo studies showed specific tumor localization, prolonged circulation, favorable dosimetry, significant tumor regression (up to 92% TGI), and prolonged survival in mice.
Conclusions:
- Macropa-based 225Ac chelation provides a stable platform for targeted alpha therapy.
- [225Ac]Ac-Macropa-PEG6-Amatuximab is a stable, selective, and therapeutically effective agent for PDAC.
- This approach holds significant potential for improving outcomes in pancreatic cancer treatment.
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