Albumin Binding as a Strategy for Improving Tumor Targeting of Radiolabeled Compounds

Mohammad Rahmati1,2, Seyed Jalal Hosseinimehr1

  • 1Department of Radiopharmacy, Faculty of Pharmacy, Mazandaran University of Medical Sciences, Sari 48471-93698, Iran.

Molecular Pharmaceutics
|August 15, 2025
PubMed

Insights

Albumin-binding moieties enhance radiopharmaceutical tumor accumulation by slowing clearance. This review examines how different albumin binders affect pharmacokinetic properties for improved cancer imaging and therapy.

Area of Science:

  • Radiopharmaceutical chemistry
  • Molecular imaging
  • Cancer therapy

Background:

  • Radiolabeled compounds target cancer receptors (SSTR2, PSMA, HER2).
  • Rapid blood clearance of radiopharmaceuticals limits efficacy and tumor accumulation.
  • Kidney clearance is a major factor in radiopharmaceutical circulation time.

Purpose of the Study:

  • To review the impact of albumin-binding moieties on radiopharmaceutical pharmacokinetics.
  • To evaluate various albumin-binding strategies for enhanced tumor targeting.
  • To analyze effects on circulation time and tumor accumulation in preclinical and clinical studies.

Main Methods:

  • Literature review of studies on radiolabeled compounds with albumin-binding moieties.
  • Analysis of pharmacokinetic data from animal and human studies.
  • Comparison of different albumin-binding groups (e.g., Evans blue, iodophenyl, palmitic acid, scaffold proteins).

Main Results:

  • Albumin binding increases radiopharmaceutical molecule size, slowing kidney clearance.
  • Incorporation of albumin-binding moieties lengthens in vivo biological half-life.
  • Elevated tumor accumulation was observed, but with potential for increased background noise.

Conclusions:

  • Albumin-binding moieties represent a viable strategy to improve radiopharmaceutical tumor uptake.
  • Careful selection of albumin binders is crucial to balance efficacy and background signal.
  • Further research is needed to optimize albumin-binding radiopharmaceuticals for clinical translation.

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