Suppr超能文献

双核硫醇配体铁(II)配合物的氧气活化。

Dioxygen activation by a dinuclear thiolate-ligated Fe(ii) complex.

机构信息

Department of Chemistry, National Changhua University of Education, Changhua 50058, Taiwan.

出版信息

Dalton Trans. 2019 Jan 2;48(2):379-386. doi: 10.1039/c8dt04491k.

Abstract

Dioxygen activation by FeII thiolate complexes is relatively rare in biological and chemical systems because the sulfur site is at least as vulnerable as the iron site to oxidative modification. O2 activation by FeII-SR complexes with thiolate bound trans to the O2 binding site generally affords the FeIV[double bond, length as m-dash]O intermediate and oxidized thiolate. On the other hand, O2 activation by Fe(ii)-SR complexes with thiolate bound cis to the O2 binding site generates FeIII-O-FeIII or S-oxygenated complexes. The postulated FeIV[double bond, length as m-dash]O intermediate has only been identified in isopenicillin N synthase recently. We demonstrated here that O2 activation by a dinuclear FeII thiolate-rich complex produces a mononuclear FeIII complex and water with a supply of electron donors. The thiolate is bound cis to the postulated dioxygen binding site, and no FeIII-O-FeIII or S-oxygenated complex was observed. Although we have not detected the transient intermediate by spectroscopic measurements, the FeIV[double bond, length as m-dash]O intermediate is suggested to exist by theoretical calculation, and P-oxidation and hydride-transfer experiments. In addition, an unprecedented FeIII-O2-FeIII complex supported by thiolates was observed during the reaction by using a coldspray ionization time-of-flight mass (CSI-TOF MS) instrument. This is also supported by low-temperature UV-vis measurements. The intramolecular NHO[double bond, length as m-dash]FeIV hydrogen bonding, calculated by DFT, probably fine tunes the O2-activation process for intramolecular hydrogen abstraction, avoiding the S-oxygenation at cis-thiolate.

摘要

二价铁硫醇配合物对氧气的活化在生物和化学体系中相对较少见,因为硫原子与铁原子一样容易受到氧化修饰。与氧结合位点相邻的反位硫醇配体的二价铁硫醇配合物通常能使 O2 活化,生成 FeIV[双键,长度 as m-dash]O 中间产物和氧化态的硫醇。另一方面,与氧结合位点顺式结合的硫醇配体的二价铁硫醇配合物生成 FeIII-O-FeIII 或 S-氧合配合物。最近在青霉素 N 合酶中才鉴定出所假定的 FeIV[双键,长度 as m-dash]O 中间产物。我们在此证明,富二价铁硫醇的双核配合物能使 O2 活化,生成单核 FeIII 配合物和水,同时提供电子供体。硫醇配体与所假定的氧结合位点顺式结合,没有观察到 FeIII-O-FeIII 或 S-氧合配合物。尽管我们尚未通过光谱测量检测到瞬态中间产物,但通过理论计算、P-氧化和氢转移实验,提出了 FeIV[双键,长度 as m-dash]O 中间产物的存在。此外,在反应过程中使用冷喷雾电离飞行时间质谱(CSI-TOF MS)仪器观察到前所未有的由硫醇稳定的 FeIII-O2-FeIII 配合物。这也得到低温 UV-vis 测量的支持。通过 DFT 计算出的分子内 NHO[双键,长度 as m-dash]FeIV 氢键,可能对分子内氢提取的 O2 活化过程进行微调,避免顺式硫醇的 S-氧化。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验