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Evans Blue Attachment Enhances Somatostatin Receptor Subtype-2 Imaging and Radiotherapy
Rui Tian1,2, Orit Jacobson2, Gang Niu2
1State Key Laboratory of Molecular Vaccinology and Molecular Diagnostics & Center for Molecular Imaging and Translational Medicine, School of Public Health, Xiamen University, Xiamen 361102 China.
Abstract:
Purpose: Radionuclide therapy directed against tumors that express somatostatin receptors (SSTRs) has proven effective for the treatment of advanced, low- to intermediate-grade neuroendocrine tumors in the clinic. In clinical usage, somatostatin peptide-based analogs, labeled with therapeutic radionuclides, provide an overall response rate of about 30%, despite the high cumulative activity injected per patient. We set out to improve the effectiveness of somatostatin radiotherapy by preparing a chemical analog that would clear more slowly through the urinary tract and, concomitantly, have increased blood circulation half-life and higher targeted accumulation in the tumors. Experimental Design: We conjugated a common, clinically-used SST peptide derivative, DOTA-octreotate, to an Evans blue analog (EB), which reversibly binds to circulating serum albumin. The resulting molecule was used to chelate 86Y and 90Y, a diagnostic and a therapeutic radionuclide, respectively. The imaging capabilities and the radiotherapeutic efficacy of the resulting radioligand was evaluated in HCT116/SSTR2, HCT116, and AR42J cell lines that express differing levels of SST2 receptors. Results: The synthesized radiopharmaceutical retained affinity and specificity to SSTR2. The new molecule also retained the high internalization rate of DOTA-octreotate, and therefore, showed significantly higher accumulation in SSTR2-positive tumors. Labeling of our novel EB-octreotate derivative with the therapeutic, pure beta emitter, 90Y, resulted in improved tumor response and survival rates of mice bearing SSTR2 xenografts and had long term efficacy when compared to DOTA-octreotate itself. Conclusions: The coupling of a targeted peptide, a therapeutic radionuclide, and the EB‑based albumin binding provides for effective treatment of SSTR2-containing tumors.
Insights
This study developed a novel radiopharmaceutical by combining a somatostatin analog with Evans blue, enhancing tumor accumulation and improving treatment outcomes for somatostatin receptor-positive neuroendocrine tumors.
Area of Science:
- Nuclear Medicine
- Oncology
- Radiopharmaceutical Chemistry
Background:
- Somatostatin receptor (SSTR)-targeted radionuclide therapy is effective for neuroendocrine tumors.
- Current therapies achieve ~30% response rates, necessitating improved efficacy.
- Limitations include rapid urinary clearance and short blood half-life of analogs.
Purpose of the Study:
- To enhance somatostatin radiotherapy effectiveness.
- To develop a radiopharmaceutical with slower urinary clearance and increased tumor accumulation.
- To improve blood circulation half-life and targeted tumor delivery.
Main Methods:
- Conjugated DOTA-octreotate with an Evans blue (EB) analog.
- Created a novel radioligand binding to serum albumin.
- Evaluated diagnostic and therapeutic efficacy using 86Y and 90Y in SSTR2-expressing cell lines and xenografts.
Main Results:
- The novel radiopharmaceutical retained SSTR2 affinity and specificity.
- Enhanced tumor accumulation due to albumin binding and high internalization.
- 90Y-labeled compound demonstrated improved tumor response and survival in SSTR2 xenografts.
Conclusions:
- Combining targeted peptides, radionuclides, and albumin binding (EB) offers effective SSTR2 tumor treatment.
- This strategy overcomes limitations of current somatostatin-based therapies.
- The developed radioligand shows promise for advanced neuroendocrine tumor treatment.
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