Mono‐, bi‐, or tridentate ligands? The labeling of peptides with 99mTc‐carbonyls
- 1 January 2004
- journal article
- review article
- Published by Wiley in Peptide Science
- Vol. 76 (4), 324-333
- https://doi.org/10.1002/bip.20129
Abstract
The labeling of targeting peptides with 99mTc is a useful concept for the diagnosis of various diseases such as cancer. Although in research for at least one decade, only a very few radiopharmaceuticals based on peptides are in clinical use. The difficulty of labeling, and the resulting authenticity of the new vector, is largely responsible for this observation. In this overview, we present an alternate strategy based on the organometallic fac-[99mTc(CO)3]+ core for introducing 99mTc in biomolecules in general and in peptides in particular. The three coordination sites available in [99mTc(OH2)3(CO)3]+ can be occupied with many different ligand types, pendant to a biomolecule and serving as the anchor group for labeling. This makes the appropriate choice difficult. We intend to present some useful concepts for the practice. Monodentate chelators are robust but bear the risk of multiple binding of biomolecules. Coordinating a bidentate ligand of choice prior to labeling bypasses this problem and enables a systematic drug discovery by variation of the bidentate ligand. Bidentate ligands attached to the biomolecule are stronger but occasionally require protection of the remaining site by a monodentate ligand. Both approaches refer to a mixed-ligand [2+1] approach. Tridentate chelators are the most efficient but need some protecting group chemistry in order to achieve selectivity for the coupling process. Examples with cysteine and histidine are presented. This article aims to provide versatile and reproducible approaches for the labeling of biomolecules while not focusing on particular systems. It should be left to the readers to derive a strategy for their own peptide. © 2004 Wiley Periodicals, Inc. Biopolymers (Pept Sci), 2004Keywords
This publication has 24 references indexed in Scilit:
- Detection of Acute Atrial Thrombus in a Porcine Model With Atrial Fibrillation With Tc 99m-ApcitideInvestigative Radiology, 2004
- Evolution of Tc-99m in diagnostic radiopharmaceuticalsSeminars in Nuclear Medicine, 2001
- Radiolabeled peptides in diagnosis and therapySeminars in Nuclear Medicine, 2001
- Potential Technetium Small Molecule RadiopharmaceuticalsChemical Reviews, 1999
- First Application of fac-[99mTc(OH2)3(CO)3]+ in Bioorganometallic Chemistry: Design, Structure, and in Vitro Affinity of a 5-HT1A Receptor Ligand Labeled with 99mTcJournal of the American Chemical Society, 1999
- The biomedical chemistry of technetium and rheniumChemical Society Reviews, 1998
- Labeling a Hydrazino Nicotinamide-Modified Cyclic IIb/IIIa Receptor Antagonist with 99mTc Using Aminocarboxylates as ColigandsBioconjugate Chemistry, 1996
- A simple single-step synthesis of [99Tc3H3(CO)12] from [99TcO4]–and its X-ray crystal structure. Application to the production of no-carrier added [188Re3H3(CO)12]Chemical Communications, 1996
- [99mTc]Tricine: a Useful Precursor Complex for the Radiolabeling of Hydrazinonicotinate Protein ConjugatesBioconjugate Chemistry, 1995
- Investigations of the technetium-hydrazido core. Synthesis and structural characterization of [(n-C4H9)4N][Tc2(NNPh2)2(C6Cl4O2)4].cntdot.CH2Cl2.cntdot.2CH3OH, a Tc(V)/Tc(VI) catecholate complex with the hydrazido ligands adopting the unusual *1 bridging modeInorganic Chemistry, 1991