Technetium(I) Complexes Bearing l- or dAmino Acids as Tumor-Seeking Agents

Rúben D M Silva1, Cristina P Matos1, Catarina I G Pinto1

  • 1Centro de Ciências e Tecnologias Nucleares, Instituto Superior Técnico, Universidade de Lisboa, Estrada Nacional 10, 2695-066 Bobadela LRS, Portugal.

ACS Omega
|December 22, 2025
PubMed

Insights

New technetium-99m (99mTc) radiotracers targeting amino acids show promise for cancer theranostics. The β-[99mTc]-TcL5 complex demonstrated significant tumor uptake in lung cancer models, suggesting potential for targeted imaging and therapy.

Area of Science:

  • Radiochemistry
  • Nuclear Medicine
  • Oncology

Background:

  • Metabolic alterations in cancer cells offer targets for novel radiopharmaceuticals.
  • Amino acid (Aa)-based radiotracers are promising for cancer theranostics, but few metallic complexes have been explored.

Purpose of the Study:

  • To synthesize and biologically characterize novel [99mTc]-Tc-(I) complexes with pendant amino acids for SPECT imaging.
  • To evaluate the potential of these complexes as targeted cancer theranostics.

Main Methods:

  • Synthesis of novel fac-[M-(CO)3(k3-L)]+ complexes (M = Re, 99mTc) using pyrazolyl-diamine chelating units and various amino acids (Arg, Lys, His, Trp).
  • Characterization using NMR spectroscopy.
  • In vitro evaluation of cellular uptake and internalization in cancer cell lines.
  • In vivo biodistribution studies in mouse models with breast and lung cancer xenografts.

Main Results:

  • All novel [99mTc]-Tc-(I) complexes showed higher uptake in cancer cells compared to the control complex.
  • The [99mTc]-TcL5 and [99mTc]-TcL7 complexes exhibited the best performance.
  • The β-[99mTc]-TcL5 species showed approximately 3x higher uptake than the α-[99mTc]-TcL5 species.
  • β-[99mTc]-TcL5 demonstrated encouraging tumor accumulation and favorable tumor-to-nontarget-organ ratios in A549 lung cancer xenografts.

Conclusions:

  • The synthesized [99mTc]-Tc-(I) complexes show potential as SPECT imaging agents.
  • The β-isomer of [99mTc]-TcL5 exhibits promising tumor-targeting properties, particularly in lung cancer models.
  • The pyrazolyl-diamine moiety may possess unexplored biological properties relevant for targeted cancer theranostics.

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