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

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.