Optical pretargeting of tumor with fluorescent MORF oligomers

Jiang He1, Mary Rusckowski, Yi Wang

  • 1Department of Radiology, University of California San Francisco, San Francisco, CA 94143, USA,

Abstract

Insights

This study demonstrates optical pretargeting using DNA analogues for enhanced in vivo imaging. The developed method significantly improves tumor visualization by reducing background fluorescence, offering a promising tool for optical detection.

Area of Science:

  • Biotechnology
  • Molecular Imaging
  • Oligonucleotide Chemistry

Background:

  • Pretargeting with radioactivity improves tumor-to-normal tissue ratios in imaging.
  • Phosphorodiamidate morpholinos (MORFs) are investigated for pretargeting.
  • Oligomer hybridization offers potential for fluorescence-based pretargeting.

Purpose of the Study:

  • To investigate the use of linear fluorophore-conjugated oligomer duplexes for pretargeting with optical detection.
  • To develop a system where fluorescence is inhibited until target binding, enabling specific tumor visualization.
  • To demonstrate proof of concept for optical pretargeting using MORF/cDNA systems.

Main Methods:

  • Designed a Cy5.5-conjugated MORF (Cy5.5-MORF25) and a BHQ3-conjugated complementary DNA (BHQ3-cDNA18) where hybridization inhibits fluorescence.
  • Utilized a longer complementary MORF (cMORF25) to displace BHQ3-cDNA18 from Cy5.5-MORF25 at the target site, releasing fluorescence.
  • Evaluated duplex dissociation in vitro using Surface Plasmon Resonance (SPR) and in vivo in SKH-1 mice.

Main Results:

  • SPR confirmed rapid capture of MORF25 by immobilized cDNA18, forming a stable duplex.
  • cMORF25 successfully dissociated the heteroduplex, releasing Cy5.5-MORF25.
  • In vivo imaging showed minimal background fluorescence and clear visualization of the target thigh within 5 minutes after administration of the Cy5.5-MORF25/BHQ3-cDNA18 duplex.

Conclusions:

  • Optical pretargeting using oligomer hybridization is feasible and effective for in vivo imaging.
  • This approach significantly enhances target visualization compared to single-chain fluorophore administration.
  • Oligomer chain length and sequence can be optimized for tailored pretargeting and optical imaging applications.

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