Targeted radionuclide therapy with A 177Lu-labeled anti-HER2 nanobody

Matthias D'Huyvetter1, Cécile Vincke2, Catarina Xavier3

  • 11. Radiobiology Unit, Molecular and Cellular Biology Expert Group, Belgian Nuclear Research Center (SCK•CEN), Mol, Belgium. ; 2. In vivo Cellular and Molecular Imaging Laboratory (ICMI), Vrije Universiteit Brussel (VUB), Brussels, Belgium.

Theranostics
|June 3, 2014
PubMed

Insights

Modifying nanobody C-terminal tags significantly reduces kidney retention, a key challenge in targeted radionuclide therapy. This optimization enhances safety and efficacy for cancer treatment, particularly for minimal residual disease.

Area of Science:

  • Oncology
  • Radiochemistry
  • Nanotechnology

Background:

  • Targeted radionuclide therapy (TRT) shows promise for cancer treatment but faces challenges with tumor penetration and pharmacokinetics of targeting vehicles.
  • Radiolabeled antibody fragments and peptides offer specific tumor accumulation with low healthy tissue uptake, except for the kidneys.
  • Nanobodies, the smallest antigen-binding fragments, are being explored for TRT due to their favorable characteristics.

Purpose of the Study:

  • To investigate the impact of C-terminal amino acid tags on the kidney retention of nanobodies.
  • To develop a strategy to reduce kidney accumulation of radiolabeled nanobodies without compromising tumor targeting.
  • To evaluate the therapeutic efficacy and safety of optimized nanobody-based TRT in a preclinical cancer model.

Main Methods:

  • Three nanobodies with different C-terminal tags (Myc-His, His, untagged) were produced and radiolabeled.
  • Dynamic planar imaging in rats and mice assessed kidney and tumor accumulation of radiolabeled nanobodies.
  • Pharmacokinetic studies included coinfusion with plasma expander Gelofusin.
  • Therapeutic efficacy was evaluated in HER2-positive tumor xenografted mice.
  • Histology and dosimetry analyses were performed.

Main Results:

  • Untagged nanobodies showed significantly reduced kidney accumulation (70-95%) compared to tagged versions.
  • Coinfusion with Gelofusin further reduced kidney retention by up to 95% without affecting tumor targeting.
  • Nanobody-based TRT in mice led to significant tumor growth blockade and improved survival.
  • Optimized nanobodies delivered targeted radiation with minimal off-target toxicity to healthy tissues.
  • Histology confirmed no renal damage.

Conclusions:

  • The C-terminal amino acid tag composition predominantly dictates nanobody kidney retention.
  • A generic method involving untagged nanobodies and Gelofusin coinfusion effectively minimizes kidney accumulation.
  • Radiolabeled nanobodies are a promising therapeutic candidate for minimal residual and metastatic disease, offering improved safety and efficacy.