-
Something wrong with this record ?
Cisplatin interaction with cysteine and methionine, a theoretical DFT study
T Zimmermann, M Zeizinger, JV Burda
Language English Country United States
Document type Comparative Study
- MeSH
- Biochemistry methods MeSH
- Cisplatin chemistry metabolism MeSH
- Cysteine chemistry metabolism MeSH
- Financing, Organized MeSH
- Methionine chemistry metabolism MeSH
- Platinum chemistry metabolism MeSH
- Static Electricity MeSH
- Hydrogen Sulfide metabolism MeSH
- Thermodynamics MeSH
- Computational Biology MeSH
- Publication type
- Comparative Study MeSH
Interactions of hydrated cisplatin complexes with sulphur-containing amino acids cysteine and methionine were explored. The square-planar cis-[Pt(NH3)2(H2O)X]+ complexes (where X=Cl- and OH-) were chosen as mono- and dihydrated reactants. Calculations using density functional theory (DFT) techniques with B3LYP functional were performed. The isolated molecules and the supermolecular approaches were employed for the determination of the reaction energies. Bond dissociation energies (BDE) were estimated in the model of isolated molecules and supermolecules were used for the determination of the association energies between the two interacting parts. Formation of monodentate complexes by replacing the aqua-ligand with the S, N, and O-sites of both amino acids represents an exothermic process. The highest BDE was found in cysteine structures for the Pt-S coordination. The bonding energy is about 114 kcal/mol, which is comparable with cisplatin-guanine adducts. Analogous BDE for methionine complexes is smaller by about 40 kcal/mol. This correlates well with the known fact that cysteine forms irreversible cisplatin adducts while similar adducts in the methionine case are reversible. The formation of chelate structures is an exothermic reaction only for the hydroxo-form of reactants in the supermolecular approach where additional association interactions between the released water and chelate molecules sufficiently stabilize the final product.
- 000
- 02986naa 2200385 a 4500
- 001
- bmc11003862
- 003
- CZ-PrNML
- 005
- 20121112125731.0
- 008
- 110302s2005 xxu e eng||
- 009
- AR
- 040 __
- $a ABA008 $b cze $c ABA008 $d ABA008 $e AACR2
- 041 0_
- $a eng
- 044 __
- $a xxu
- 100 1_
- $a Zimmermann, Tomáš. $7 _AN059897
- 245 10
- $a Cisplatin interaction with cysteine and methionine, a theoretical DFT study / $c T Zimmermann, M Zeizinger, JV Burda
- 314 __
- $a Department of Chemical Physics and Optics, Faculty of Mathematics and Physics, Charles University, Ke Karlovu 3, 121 16 Prague 2, Czech Republic.
- 520 9_
- $a Interactions of hydrated cisplatin complexes with sulphur-containing amino acids cysteine and methionine were explored. The square-planar cis-[Pt(NH3)2(H2O)X]+ complexes (where X=Cl- and OH-) were chosen as mono- and dihydrated reactants. Calculations using density functional theory (DFT) techniques with B3LYP functional were performed. The isolated molecules and the supermolecular approaches were employed for the determination of the reaction energies. Bond dissociation energies (BDE) were estimated in the model of isolated molecules and supermolecules were used for the determination of the association energies between the two interacting parts. Formation of monodentate complexes by replacing the aqua-ligand with the S, N, and O-sites of both amino acids represents an exothermic process. The highest BDE was found in cysteine structures for the Pt-S coordination. The bonding energy is about 114 kcal/mol, which is comparable with cisplatin-guanine adducts. Analogous BDE for methionine complexes is smaller by about 40 kcal/mol. This correlates well with the known fact that cysteine forms irreversible cisplatin adducts while similar adducts in the methionine case are reversible. The formation of chelate structures is an exothermic reaction only for the hydroxo-form of reactants in the supermolecular approach where additional association interactions between the released water and chelate molecules sufficiently stabilize the final product.
- 650 _2
- $a biochemie $x metody $7 D001671
- 650 _2
- $a cisplatina $x chemie $x metabolismus $7 D002945
- 650 _2
- $a výpočetní biologie $7 D019295
- 650 _2
- $a cystein $x chemie $x metabolismus $7 D003545
- 650 _2
- $a sulfan $x metabolismus $7 D006862
- 650 _2
- $a methionin $x chemie $x metabolismus $7 D008715
- 650 _2
- $a platina $x chemie $x metabolismus $7 D010984
- 650 _2
- $a statická elektřina $7 D055672
- 650 _2
- $a termodynamika $7 D013816
- 650 _2
- $a financování organizované $7 D005381
- 655 _2
- $a srovnávací studie $7 D003160
- 700 1_
- $a Zeizinger, Michal. $7 xx0306280
- 700 1_
- $a Burda, Jaroslav V. $7 _AN043272
- 773 0_
- $t Journal of Inorganic Biochemistry $w MED00006646 $g Roč. 99, č. 11 (2005), s. 2184-2196 $x 0162-0134
- 910 __
- $a ABA008 $b x $y 6
- 990 __
- $a 20110406103603 $b ABA008
- 991 __
- $a 20121112125745 $b ABA008
- 999 __
- $a ok $b bmc $g 831203 $s 695886
- BAS __
- $a 3
- BMC __
- $a 2005 $b 99 $c 11 $d 2184-2196 $i 0162-0134 $m Journal of inorganic biochemistry $n J Inorg Biochem $x MED00006646
- LZP __
- $a 2011-3B/irme