Targeting prostate cancer cells in vivo using a rapidly internalizing novel human single-chain antibody fragment

Jiang He1, Yong Wang, Jinjin Feng

  • 1Department of Radiology and Biomedical Imaging, Center for Molecular and Functional Imaging, University of California at San Francisco, San Francisco, California 94143, USA. Jiang.He@radiology.ucsf.edu

Abstract

Insights

This study shows that the UA20 antibody fragment effectively targets and internalizes into prostate cancer cells, demonstrating its potential for improved cancer imaging and therapy.

Area of Science:

  • Oncology
  • Immunology
  • Radiopharmaceuticals

Background:

  • Human antibodies targeting prostate cancer cell surface epitopes offer potential for imaging and therapy.
  • Internalizing antibody fragments are being explored as small-size platforms for high-contrast tumor visualization.

Purpose of the Study:

  • To evaluate the tumor targeting and internalization of the UA20 single-chain antibody fragment (scFv) in a mouse model of human prostate carcinoma.
  • To assess the potential of UA20 scFv for prostate cancer imaging and targeted therapy.

Main Methods:

  • The UA20 scFv and a control scFv (N3M2) were labeled with technetium-99m ((99m)Tc).
  • In vitro studies assessed binding and rapid internalization into DU145 prostate cancer cells.
  • In vivo studies utilized athymic mice with DU145 xenografts, employing small-animal SPECT/CT imaging and biodistribution analysis.

Main Results:

  • Labeled UA20 scFv demonstrated specific uptake and rapid internalization (>93% within 1 hour) in prostate tumor cells.
  • SPECT/CT imaging revealed significant tumor uptake of UA20 scFv as early as 1 hour post-injection, with a tumor-to-blood ratio of 12:1 and tumor-to-muscle ratio of 70:1 at 3 hours.
  • Control antibody showed minimal tumor uptake, confirming UA20's specific tumor targeting.

Conclusions:

  • The UA20 scFv exhibits rapid, specific internalization in prostate tumor cells in vitro.
  • In vivo studies confirmed significant accumulation in prostate tumor xenografts, highlighting its potential for prostate cancer imaging and targeted therapy development.