Satpathy Jagnyesh K, Yadav Rolly, Bagha Umesh K, Kumar Devesh, Sastri Chivukula V, de Visser Sam P
Department of Chemistry, Indian Institute of Technology, Guwahati 781039, Assam, India.
Department of Applied Physics, Babasaheb Bhimrao Ambedkar University, School for Physical Sciences, Vidya Vihar, Rae Bareilly Road, Lucknow 226025, UP, India.
Inorg Chem. 2024 Apr 15;63(15):6752-6766. doi: 10.1021/acs.inorgchem.4c00070. Epub 2024 Mar 29.
Sulfur ligation in metalloenzymes often gives the active site unique properties, whether it is the axial cysteinate ligand in the cytochrome P450s or the equatorial sulfur/thiol ligation in nonheme iron enzymes. To understand sulfur ligation to iron complexes and how it affects the structural, spectroscopic, and intrinsic properties of the active species and the catalysis of substrates, we pursued a systematic study and compared sulfur with amine-ligated iron(IV)-oxo complexes. We synthesized and characterized a biomimetic NS-ligated iron(IV)-oxo complex and compared the obtained results with an analogous N-ligated iron(IV)-oxo complex. Our work shows that the amine for sulfur replacement in the equatorial ligand framework leads to a rate enhancement for oxygen atom and hydrogen atom transfer reactions. Moreover, the sulfur-ligated iron(IV)-oxo complex reacts through a different reaction mechanism as compared to the N-ligated iron(IV)-oxo complex, where the former reacts through hydride transfer with the latter reacting via radical pathways. We show that the reactivity differences are caused by a dramatic change in redox potential between the two complexes. Our studies highlight the importance of implementing a sulfur ligand into the equatorial ligand framework of nonheme iron(IV)-oxo complexes and how it affects the physicochemical properties of the oxidant and its reactivity.
金属酶中的硫配位通常赋予活性位点独特的性质,无论是细胞色素P450中的轴向半胱氨酸配体,还是非血红素铁酶中的赤道硫/硫醇配位。为了理解硫与铁配合物的配位以及它如何影响活性物种的结构、光谱和固有性质以及底物的催化作用,我们进行了一项系统研究,并将硫与胺配位的铁(IV)-氧配合物进行了比较。我们合成并表征了一种仿生NS配位的铁(IV)-氧配合物,并将所得结果与类似的N配位铁(IV)-氧配合物进行了比较。我们的工作表明,在赤道配体框架中用胺取代硫会导致氧原子和氢原子转移反应的速率提高。此外,与N配位的铁(IV)-氧配合物相比,硫配位的铁(IV)-氧配合物通过不同的反应机制进行反应,前者通过氢化物转移反应,而后者通过自由基途径反应。我们表明,反应性差异是由两种配合物之间氧化还原电位的显著变化引起的。我们的研究强调了在非血红素铁(IV)-氧配合物的赤道配体框架中引入硫配体的重要性,以及它如何影响氧化剂的物理化学性质及其反应性。