THE FIRST CRYSTAL-STRUCTURE OF A RHODIUM COMPLEX WITH THE ANTILEUKEMIC DRUG PURINE-6-THIONE - SYNTHESIS AND MOLECULAR-ORBITAL INVESTIGATIONOF NEW ORGANORHODIUM(III) COMPOUNDS
A. Cavaglioni et R. Cini, THE FIRST CRYSTAL-STRUCTURE OF A RHODIUM COMPLEX WITH THE ANTILEUKEMIC DRUG PURINE-6-THIONE - SYNTHESIS AND MOLECULAR-ORBITAL INVESTIGATIONOF NEW ORGANORHODIUM(III) COMPOUNDS, Journal of the Chemical Society. Dalton transactions, (7), 1997, pp. 1149-1158
Reactions of [(RhCl2Ph)-Cl-III(SbPh3)(3)] 1 with an excess of purine-6
-thione (C5H4N4S) or 1,3-thiazole (C3H3NS) in absolute ethanol gave cr
ystalline [(RhCl2Ph)-Cl-III(C5H4N4S)(SbPh3)] 2 (S trans to Sb), [(RhCl
2Ph)-Cl-III(SbPh3)(C3H3NS)(2)] 3 and [(RhCl2Ph)-Cl-III(SbPh3)(2)(C3H3N
S)] 4. The crystal structure of complex 2 has been determined. Two dif
ferent rotamers, which differ in the orientation of the phenyl ligand
around the Rh-C bond axis, are present. The co-ordination geometry of
both molecules is pseudo-octahedral and the neutral, N-1 and N-9 proto
nated, purine ligand behaves as bidentate through S and N-7. The Rh-N-
7 bonding interaction is much weakened [average 2.262(7) Angstrom] by
the high trans influence of the phenyl ligand. The H-8 atom of both pu
rine systems points towards the centre of a phenyl ring of SbPh3. The
geometrical parameters of the SbPh3 molecules show that an attractive
interaction between H-8 and the phenyl ring is operative for each rota
mer. The H-1 NMR spectrum of 2, in DCON(CD3)(2) shows an upfield shift
of 1.37 ppm for H-8, consistent with a shielding effect from a phenyl
ring of SbPh3. Therefore, the H-8 ... Ph(Sb) attractive interaction e
xists also in solution. The crystal structure of 3 has also been deter
mined. The co-ordination geometry is pseudo-octahedral, the metal bein
g linked to two trans chloride ions, one antimony donor from SbPh3 , o
ne carbon atom from the phenyl ligand and two nitrogen atoms from thia
zole ligands, one of which is trans to Ph [Rh-N 2.245(5) Angstrom]. Th
e H-1 NMR spectrum shows that the solid-state structure is maintained
in CDCl3 solution. The signals of the H-2 and H-5 protons of the thiaz
ole ligands are shifted downfield by 0.65 and 0.63 and 0.45 and 0.45 p
pm for the molecules trans and cis to the C donor, respectively, upon
complexation. The H-1 HMR spectrum of 4 is in agreement with the prese
nce of a thiazole ligand trans to Ph. An interaction between the chlor
ide ligands and some protons of the phenyl rings of SbPh3 is resposibl
e for a downfield chemical shift of about 0.2 ppm for the relevant H-1
NMR signals in compounds 1-4. Molecular mechanics analysis based on t
he crystal structures of 2 and 3 made it possible to set up force-fiel
d parameters suitable for this class of molecules. In the case of 3 th
e rotation of the SbPh3 molecule around the Rh-Sb bond is highly hinde
red; the lowest barrier between minima is higher than 125 kJ mol(-1).
The rotations of the thiazole ligands have minima consistent with the
crystal structure.