Literature DB >> 10090789

Glutathione-mediated metabolism of technetium-99m SNS/S mixed ligand complexes: a proposed mechanism of brain retention.

B A Nock1, T Maina, D Yannoukakos, I C Pirmettis, M S Papadopoulos, E Chiotellis.   

Abstract

Two series of [99mTc](SNS/S) mixed ligand complexes each carrying the N-diethylaminoethyl or the N-ethyl-substituted bis(2-mercaptoethyl)amine ligand (SNS) are produced at tracer level using tin chloride as reductant and glucoheptonate as transfer ligand. The identity of [99mTc](SNS/S) complexes is established by high-performance liquid chromatographic (HPLC) comparison with authentic rhenium samples. The para substituent R on the phenylthiolate coligand (S) ranges from electron-donating (-NH2) to electron-withdrawing (-NO2) groups, to study complex stability against nucleophiles as a result of N- and R-substitution. The relative resistance of [99mTc](SNS/S) complexes against nucleophilic attack of glutathione (GSH), a native nucleophilic thiol of 2 mM intracerebral concentration, is investigated in vitro by HPLC. The reaction of [99mTc](SNS/S) complexes with GSH is reversible and advances via substitution of the monothiolate ligand by GS- and concomitant formation of the hydrophilic [99mTc](SNS/GS) daughter compound. The N-diethylaminoethyl complexes are found to be more reactive against GSH as compared to the N-ethyl ones. Complex reactivity as a result of R-substitution follows the sequence -NO2 >> -H > -NH2. These in vitro findings correlate well with in vivo distribution data in mice. Thus, brain retention parallels complex susceptibility to GSH attack. Furthermore, isolation of the hydrophilic [99mTc](SNS/GS) metabolite from biological fluids and brain homogenates provides additional evidence that the brain retention mechanism of [99mTc](SNS/S) complexes is GSH-mediated.

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Year:  1999        PMID: 10090789     DOI: 10.1021/jm980174f

Source DB:  PubMed          Journal:  J Med Chem        ISSN: 0022-2623            Impact factor:   7.446


  4 in total

1.  Schiff base chemistry of the rhenium(V)-oxo core with '3+2' ligand donor sets.

Authors:  Xiaoyuan Chen; Frank J Femia; John W Babich; Jon Zubieta
Journal:  Inorganica Chim Acta       Date:  2001-05       Impact factor: 2.545

2.  Exploring oxorhenium '3+1' mixed-ligand complexes carrying the S-benzyl-3-[(2-hydroxyphenyl)methylene]dithiocarbazate [ONS]/monothiol [S] donor set: synthesis and characterization.

Authors:  Xiaoyuan Chen; Frank J Femia; John W Babich; Jon Zubieta
Journal:  Inorganica Chim Acta       Date:  2000-09-11       Impact factor: 2.545

3.  The syntheses and structures of '3+2' and '2+2+1' oxorhenium mixed-ligand complexes employing 8-hydroxy-5-nitroquinoline as the bidentate N,O donor ligand.

Authors:  Xiaoyuan Chen; Frank J Femia; John W Babich; Jon Zubieta
Journal:  Inorganica Chim Acta       Date:  2000-10-20       Impact factor: 2.545

4.  Synthesis and characterization of oxorhenium(V)-'3+1' mixed thiolate [SNS]/[S] and [ONS]/[S] complexes. Crystal and molecular structures of [ReO(eta-SCH(2)C(5)H(3)NCH(2)S)(eta-C(6)H(4)Br-4-S)], [ReO(eta-SCH(2)C(5)H(3)NCH(2)O)(eta-C(6)H(4)X-4-S)] (X=Cl, OMe), [ReO(eta-SCH(2)C(5)H(3)NCH(2)O)(eta-C(6)H(4)OCH(3)-4-CH(2)S)] and [ReO(eta-SCH(2)C(5)H(3)NCH(2)S)(eta-C(5)H(4)NH-2-S)][Cl].

Authors:  Xiaoyuan Chen; Frank J Femia; John W Babich; Jon Zubieta
Journal:  Inorganica Chim Acta       Date:  2000-09-01       Impact factor: 2.545

  4 in total

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