Login / Signup

DOTP versus DOTA as Ligands for Lanthanide Cations: Novel Structurally Characterized Ce IV and Ce III Cyclen-Based Complexes and Clusters in Aqueous Solutions.

Gev DovratSvetlana PevznerEric MaimonRadion VainerOlga IliashevskyYeshayahu Ben-EliyahuPhilippe MoisyArmand BettelheimIsrael Zilbermann
Published in: Chemistry (Weinheim an der Bergstrasse, Germany) (2022)
The coordination and redox chemistry of aqueous Ce IV/III macrocyclic compounds were studied by using the ligands DOTA and DOTP (1,4,7,10-tetraazacyclododecane-1,4,7,10-tetrayl)tetraacetic acid and 1,4,7,10-tetraazacyclododecane-1,4,7,10-tetra(methylene phosphonic acid), respectively). The hydrolysis tendency of the tetravalent cation in the presence of DOTA is shown to result in the formation of a highly ordered, fluorite-like [Ce IV 6 (O) 4 (OH) 4 (H 2 O) 8 (DOTAH) 4 ] oxo-hydroxo structure both in solution and in the solid state. The lifetime of the analogous species formed in the presence of DOTP was found to be much shorter. Spectroscopic measurements of the latter suggest its similarity to the former. Its gradual decomposition in solution leads to the accumulation of the in-cage complexes [Ce IV DOTP] and [Ce III DOTP(H 2 O)], which were crystallographically characterized in this study. The redox energetics and spectroscopic characteristics for the transition between these two in-cage complexes in aqueous solutions were studied as well. Together with the crystallographic structures of the above-mentioned species, the in-cage [Ce IV DOTA(H 2 O)] complex structure is presented herein for the first time. An elaborative analysis of the X-ray crystallographic structural data obtained for the in-cage complexes studied herein and similar structures published previously suggests that hard-bonding cyclen-derived ligands are, counter-intuitively, better suited for encapsulating, and perhaps kinetically stabilize softer cations than harder ones with DOTP, marked as a possible adequate chelator for the study of the aqueous properties of Ln II and Ac III cations.
Keyphrases
  • solid state
  • energy transfer
  • ionic liquid
  • pet ct
  • pet imaging
  • high resolution
  • molecular docking
  • systematic review
  • magnetic resonance
  • electronic health record
  • single molecule
  • drug discovery
  • electron microscopy