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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Investigating the effect of hydrogen bonding environments in amide cleavage reactions at zinc(II) complexes with intramolecular amide oxygen co-ordination
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Investigating the effect of hydrogen bonding environments in amide cleavage reactions at zinc(II) complexes with intramolecular amide oxygen co-ordination

机译:研究氢键环境对分子内酰胺氧配位的锌(II)配合物在酰胺裂解反应中的作用

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摘要

Amide oxygen co-ordination to a zinc(II) ion around a hydrogen bonding microenvironment is a common structural/functional feature of metalloproteases.We report two strategies to position hydrogen bonding groups in the proximity of a zinc(II)-bound amide oxygen,and we investigate their effect on the stability of the amide group.Polydentate tripodal ligands (6-R~1-2-pyridylmethyl)-R~2 (R~1 = NHCO~tBu,R~2 = N(CH,-py-6-X),X = H L~1,X = NH_2,H L~2,X = NH_2 L~3) form [(L)Zn]~(2+) cations (L = L~1,1;L~2,2;L~3,3) with intramolecular amide oxygen co-ordination (1-3),and intramolecular N-H ...O=C(amide) hydrogen bonding (2,3) rigidly fixed by the ligand framework.1-3 undergo cleavage of the tot-butyl amide upon addition of Me_4NOH-5H_2O (1 equiv.) in methanol at 50(1) deg C.Under these conditions the half-life,t_(1/2),of the amide bond is 0.4 h for 1,9 h for 2 and 320 h for 3.Mononuclear zinc(II) complexes of (6-NHCO~tBu-2-pyridylmethyl)-R~2 (R~2 = N(CH_2CH_2)_2S) L~4 and chelating N2 ligands without hydrogen bonding groups (1,10-phenanthroline L~5,2-(aminomethyl)pyridine L~6) as control compounds,and with an amino hydrogen bonding group (6-amino-2-(aminomethyl)pyridine L~7) have been synthesised.Amide cleavage is in this case faster at the zinc(II) complex with the amino hydrogen bonding group.Thus,hydrogen bonding environments can both accelerate and slow down amide bond cleavage reactions at zinc(n) sites.Importantly,the magnitude of the effect exerted by the hydrogen bonding environments was found to be significant;800-fold rate difference.This result highlights the importance of hydrogen bonding environments around metal centres in amide cleavage reactions,which may be relevant to the chemistry of natural metalloproteases and applicable to the design of more efficient artificial protein cleaving agents.
机译:酰胺键与氢键连接微环境周围的锌(II)离子配位是金属蛋白酶的常见结构/功能特征。我们报告了两种策略,可将氢键基团定位在与锌(II)键合的酰胺氧附近,并研究了它们对酰胺基团稳定性的影响。多齿三足配体(6-R〜1-2-吡啶甲基)-R〜2(R〜1 = NHCO〜tBu,R〜2 = N(CH,-py -6-X),X = HL〜1,X = NH_2,HL〜2,X = NH_2 L〜3)形成[(L)Zn]〜(2+)阳离子(L = L〜1,1; L 〜2,2; L〜3,3)具有分子内酰胺氧配位(1-3),且分子内NH ... O = C(酰胺)氢键(2,3)被配体骨架刚性固定。当在50(1)℃下在甲醇中添加Me_4NOH-5H_2O(1当量)时,1-3会裂解叔丁基酰胺。在这些条件下,酰胺的半衰期t_(1/2) (6-NHCO〜tBu-2-吡啶基甲基)-R〜2(R〜2 = N(CH_2CH_2)_2S)的单核锌(II)配合物,键为0.4 h持续1,9 h持续2 h,3持续320 h L〜4与N2配体螯合氢键基团(1,10-菲咯啉L〜5,2-(氨基甲基)吡啶L〜6)作为对照化合物,并带有氨基氢键基团(6-氨基-2-(氨基甲基)吡啶L〜7)在这种情况下,具有氨基氢键基团的锌(II)络合物的酰胺裂解速度更快。因此,氢键环境可以加速和减慢锌(n)位上的酰胺键裂解反应。氢键作用环境所产生的作用强度是显着的;速率差异为800倍。该结果突出了氢键环境在酰胺裂解反应中在金属中心周围的重要性,这可能与天然金属蛋白酶和适用于设计更有效的人工蛋白质裂解剂。

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