Fang Ya-Yin, Claussen Craig A, Lipkowitz Kenny B, Long Eric C
Department of Chemistry & Chemical Biology, Purdue School of Science, Indiana University-Purdue University Indianapolis, Indianapolis, Indiana 46202-3274, USA.
J Am Chem Soc. 2006 Mar 15;128(10):3198-207. doi: 10.1021/ja0569757.
Site-selective DNA cleavage by diastereoisomers of Ni(II) x Gly-Gly-His-derived metallopeptides was investigated through high-resolution gel analyses and molecular dynamics simulations. Ni(II) x L-Arg-Gly-His and Ni(II) x D-Arg-Gly-His (and their respective Lys analogues) targeted A/T-rich regions; however, the L-isomers consistently modified a subset of available nucleotides within a given minor groove site, while the D-isomers differed in both their sites of preference and their ability to target individual nucleotides within some sites. In comparison, Ni(II) x L-Pro-Gly-His and Ni(II) x D-Pro-Gly-His were unable to exhibit a similar diastereoselectivity. Simulations of the above systems, along with Ni(II) x Gly-Gly-His, indicated that the stereochemistry of the amino-terminal amino acid produces either an isohelical metallopeptide that associates stably at individual DNA sites (L-Arg or L-Lys) or, with D-Arg and D-Lys, a noncomplementary metallopeptide structure that cannot fully employ its side chain nor amino-terminal amine as positional stabilizing moieties. In contrast, amino-terminal Pro-containing metallopeptides of either stereochemistry, lacking an extended side chain directed toward the minor groove, did not exhibit a similar diastereoselectivity. While the identity and stereochemistry of amino acids located in the amino-terminal peptide position influenced DNA cleavage, metallopeptide diastereoisomers containing L- and D-Arg (or Lys) within the second peptide position did not exhibit diastereoselective DNA cleavage patterns; simulations indicated that a positively charged amino acid in this location alters the interaction of the metallopeptide equatorial plane and the minor groove leading to an interaction similar to Ni(II) x Gly-Gly-His.
通过高分辨率凝胶分析和分子动力学模拟,研究了镍(II)×甘氨酸-甘氨酸-组氨酸衍生的金属肽非对映异构体对DNA的位点选择性切割。镍(II)×L-精氨酸-甘氨酸-组氨酸和镍(II)×D-精氨酸-甘氨酸-组氨酸(及其各自的赖氨酸类似物)靶向富含A/T的区域;然而,L-异构体始终修饰给定小沟位点内的一部分可用核苷酸,而D-异构体在其偏好位点以及在某些位点靶向单个核苷酸的能力方面均有所不同。相比之下,镍(II)×L-脯氨酸-甘氨酸-组氨酸和镍(II)×D-脯氨酸-甘氨酸-组氨酸无法表现出类似的非对映选择性。对上述系统以及镍(II)×甘氨酸-甘氨酸-组氨酸的模拟表明,氨基末端氨基酸的立体化学产生了一种在单个DNA位点稳定缔合的等螺旋金属肽(L-精氨酸或L-赖氨酸),或者与D-精氨酸和D-赖氨酸产生一种非互补的金属肽结构,该结构不能充分利用其侧链或氨基末端胺作为位置稳定基团。相反,两种立体化学的含氨基末端脯氨酸的金属肽,由于缺乏指向小沟的延伸侧链,未表现出类似的非对映选择性。虽然位于氨基末端肽位置的氨基酸的身份和立体化学影响DNA切割,但在第二个肽位置含有L-和D-精氨酸(或赖氨酸)的金属肽非对映异构体未表现出非对映选择性的DNA切割模式;模拟表明,该位置带正电荷的氨基酸会改变金属肽赤道平面与小沟的相互作用,导致产生类似于镍(II)×甘氨酸-甘氨酸-组氨酸的相互作用。