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Published on: September 30, 2019
Labeling and distribution of linear peptides identified using in vivo phage display selection for tumors
S J Kennel1, S Mirzadeh, G B Hurst
1Division of Life Sciences, Oak Ridge, Tennessee 37831-6101, USA. sj9@ornl.gov
Abstract:
To develop targeting molecules to be used for vascular targeting of short half-lived alpha-emitters for radioimmunotherapy, linear peptide phage display libraries were selected in vivo for binding to IC-12 rat tracheal tumors growing in severe combined immune deficient mice. After three rounds of selection, 15 phage clones were analyzed for DNA sequence, and the deduced translation products of cDNA inserts were compared. Three consensus sequences were chosen from three separate experimental selection series and peptides of these sequences with added -gly-gly-tyr were obtained. Peptides were radiolabeled on tyrosine with (125)I and the biodistribution in tumor-bearing mice was determined. The radioiodinated peptides were stable in vitro and when injected in tumor-bearing mice approximately 3.0 %ID/g accumulated in the tumor; however, much of the (125)I was found in the gastrointestinal tract and thyroid, indicative of dehalogenation of the labeled peptide. Radiolabeling peptide 2 with N-succinimidyl-3-(125)I-iodobenzoate resulted in faster excretion, which in turn resulted in lower levels in tumor and other organs, especially thyroid and gastrointestinal tract. Peptide 2 was derivatized with the bifunctional isothiocyanates of cyclohexyl-B diethylenetriaminepentaacetic acid (DTPA) or CHX-A" DTPA by direct conjugation or with a hydroxylamine derivative of 1B4M-DTPA (2-(p-[O-(carboxamylmethyl)hydroxylamine]benzyl)-6-methyl-diethylenetriamine-N,N,N',N",N"-pentaacetic acid ) coupled at the N-terminus. The primary molecular species in the conjugated products were shown by mass spectrometry to have one DTPA per peptide. Peptide chelate conjugates were radiolabeled with (213)Bi and the products tested for biodistribution in tumor-bearing mice. The data show that chelation of (213)Bi to peptides was accomplished by both the direct method of DTPA attachment and by the method using the linker at the N-terminus. Only small amounts of peptide accumulated at tumor sites. We conclude that phage display is a powerful tool to select peptides with restricted binding specificity; however, the peptides isolated to date do not bind with high retention to tumor sites in vivo.
Insights
Phage display identified peptides for vascular targeting in radioimmunotherapy. While peptides showed tumor accumulation, issues with dehalogenation and retention limited their effectiveness in vivo.
Area of Science:
- Biotechnology
- Molecular Biology
- Radiopharmaceutical Chemistry
Background:
- Developing effective targeting molecules is crucial for radioimmunotherapy, particularly for short half-lived alpha-emitters.
- Vascular targeting strategies aim to deliver therapeutic radioisotopes specifically to tumor sites.
Purpose of the Study:
- To identify and develop linear peptides using phage display for in vivo vascular targeting of tumors.
- To evaluate the biodistribution and efficacy of radiolabeled peptides and their chelates for potential radioimmunotherapy applications.
Main Methods:
- In vivo phage display selection against IC-12 rat tracheal tumors in immunodeficient mice.
- DNA sequencing of selected phage clones and synthesis of consensus peptides.
- Radiolabeling of peptides with iodine-125 (125I) and bismuth-213 (213Bi) using diethylenetriaminepentaacetic acid (DTPA) chelates.
- Biodistribution studies in tumor-bearing mice to assess peptide and radioisotope localization and retention.
Main Results:
- Phage display yielded peptides that bound to tumors in vivo, with approximately 3.0 %ID/g accumulating in the tumor.
- Initial radioiodination led to dehalogenation, observed as accumulation in the gastrointestinal tract and thyroid.
- Alternative radiolabeling and chelation with DTPA improved excretion but resulted in limited tumor accumulation.
- Peptide-chelate conjugates successfully complexed with 213Bi, but in vivo retention at tumor sites was minimal.
Conclusions:
- Phage display is a potent method for selecting peptides with specific binding properties.
- The identified peptides, despite initial tumor binding, exhibit insufficient retention for effective in vivo radioimmunotherapy.
- Further optimization of peptide design and conjugation strategies is necessary to enhance tumor retention and therapeutic efficacy.

