Journal:JBIC:29
From Proteopedia
(Difference between revisions)

Line 7: | Line 7: | ||
Trivalent chromium, a d<sup>3</sup> cation, is poorly taken up by living cells. The Cr<sup>3+</sup> ions are the final product of in vivo Cr<sup>6+</sup> metabolism. However, Cr<sup>3+</sup> in contrast to Cr<sup>6+</sup> can form coordination complexes with macromolecules in the cells. In vitro biochemical experiments have shown that exposure of cells to Cr6+ yields binary (DNA–Cr<sup>3+</sup>) and ternary (DNA–Cr<sup>3+</sup>–ligand) adducts, DNA crosslinks, as well as oxidative DNA lesions. Despite the interest in DNA–Cr<sup>3+</sup> interactions in biological systems, the existing literature provides detailed crystallographic structural data for only two, low-resolution DNA–Cr<sup>3+</sup>:DNA polymerase-β complexes, PDB [[1zqe]] (3.7 Å) ֵand [[1huz]] (2.6 ֵÅ). | Trivalent chromium, a d<sup>3</sup> cation, is poorly taken up by living cells. The Cr<sup>3+</sup> ions are the final product of in vivo Cr<sup>6+</sup> metabolism. However, Cr<sup>3+</sup> in contrast to Cr<sup>6+</sup> can form coordination complexes with macromolecules in the cells. In vitro biochemical experiments have shown that exposure of cells to Cr6+ yields binary (DNA–Cr<sup>3+</sup>) and ternary (DNA–Cr<sup>3+</sup>–ligand) adducts, DNA crosslinks, as well as oxidative DNA lesions. Despite the interest in DNA–Cr<sup>3+</sup> interactions in biological systems, the existing literature provides detailed crystallographic structural data for only two, low-resolution DNA–Cr<sup>3+</sup>:DNA polymerase-β complexes, PDB [[1zqe]] (3.7 Å) ֵand [[1huz]] (2.6 ֵÅ). | ||
- | Our work is part of our project aimed at characterizing metal-binding properties of left-handed Z-DNA helices. The three Cr3+ cations found in the asymmetric unit of the d(CGCGCG)<sub>2</sub>–Cr<sup>3+</sup> crystal structure do not form direct coordination bonds with either the guanine N/O atoms or the phosphate groups of the Z-DNA. <scene name='69/693575/Cv/6'>Note the alternate conformations</scene> (<span style="color:lime;background-color:black;font-weight:bold;">I, green</span>; <span style="color:orange;background-color:black;font-weight:bold;">II, orange</span>) along the DNA chains. <scene name='69/693575/Cv/7'>Click here to see the animation of this scene</scene>. <font color='darkmagenta'><b>Cr<sup>3+</sup> cations shown as purple spheres</b></font>. Instead, only water-mediated contacts between the nucleic acid and the Cr<sup>3+</sup> cations are observed. The coordination spheres of Cr<sup>3+</sup>(1) and Cr<sup>3+</sup>(2) contain six water molecules each. The Cr<sup>3+</sup>(1) and Cr<sup>3+</sup>(2) ions are bridged by three water molecules from their coordination spheres, one of which (Wat1) is split into two sites. The hydration patterns of Cr<sup>3+</sup>(1) and Cr<sup>3+</sup>(2) are | + | Our work is part of our project aimed at characterizing metal-binding properties of left-handed Z-DNA helices. The three Cr3+ cations found in the asymmetric unit of the d(CGCGCG)<sub>2</sub>–Cr<sup>3+</sup> crystal structure do not form direct coordination bonds with either the guanine N/O atoms or the phosphate groups of the Z-DNA. <scene name='69/693575/Cv/6'>Note the alternate conformations</scene> (<span style="color:lime;background-color:black;font-weight:bold;">I, green</span>; <span style="color:orange;background-color:black;font-weight:bold;">II, orange</span>) along the DNA chains. <scene name='69/693575/Cv/7'>Click here to see the animation of this scene</scene>. <font color='darkmagenta'><b>Cr<sup>3+</sup> cations shown as purple spheres</b></font>. Instead, only water-mediated contacts between the nucleic acid and the Cr<sup>3+</sup> cations are observed. The coordination spheres of Cr<sup>3+</sup>(1) and Cr<sup>3+</sup>(2) contain six water molecules each. The Cr<sup>3+</sup>(1) and Cr<sup>3+</sup>(2) ions are bridged by three water molecules from their coordination spheres, one of which (Wat1) is split into two sites. The hydration patterns of Cr<sup>3+</sup>(1) and Cr<sup>3+</sup>(2) are <scene name='69/693575/Cv/8'>irregular and difficult to define</scene> (<font color='red'><b>water molecules are represented by red spheres</b></font>). The Cr<sup>3+</sup>(3) cation has <scene name='69/693575/Cv/9'>distorted square pyramidal geometry</scene>. |
Revision as of 13:59, 4 February 2015
|
- ↑ REF
This page complements a publication in scientific journals and is one of the Proteopedia's Interactive 3D Complement pages. For aditional details please see I3DC.