Department of Chemistry, University of Wisconsin-Madison , Madison, Wisconsin 53706, United States.
Biochemistry. 2013 Sep 3;52(35):6040-51. doi: 10.1021/bi400825c. Epub 2013 Aug 23.
Cysteine dioxygenase (CDO) is a mononuclear nonheme iron(II)-dependent enzyme critical for maintaining appropriate cysteine (Cys) and taurine levels in eukaryotic systems. Because CDO possesses both an unusual 3-His facial ligation sphere to the iron center and a rare Cys-Tyr cross-link near the active site, the mechanism by which it converts Cys and molecular oxygen to cysteine sulfinic acid is of broad interest. However, as of yet, direct experimental support for any of the proposed mechanisms is still lacking. In this study, we have used NO as a substrate analogue for O2 to prepare a species that mimics the geometric and electronic structures of an early reaction intermediate. The resultant unusual S = (1)/2 {FeNO}(7) species was characterized by magnetic circular dichroism, electron paramagnetic resonance, and electronic absorption spectroscopies as well as computational methods including density functional theory and semiempirical calculations. The NO adducts of Cys- and selenocysteine (Sec)-bound Fe(II)CDO exhibit virtually identical electronic properties; yet, CDO is unable to oxidize Sec. To explore the differences in reactivity between Cys- and Sec-bound CDO, the geometries and energies of viable O2-bound intermediates were evaluated computationally, and it was found that a low-energy quintet-spin intermediate on the Cys reaction pathway adopts a different geometry for the Sec-bound adduct. The absence of a low-energy O2 adduct for Sec-bound CDO is consistent with our experimental data and may explain why Sec is not oxidized by CDO.
半胱氨酸双加氧酶 (CDO) 是一种单核非血红素铁(II)依赖性酶,对维持真核系统中半胱氨酸 (Cys) 和牛磺酸的适当水平至关重要。由于 CDO 具有独特的 3-His 面配体到铁中心和靠近活性位点的罕见 Cys-Tyr 交联,因此它将 Cys 和分子氧转化为半胱氨酸亚磺酸的机制引起了广泛关注。然而,到目前为止,任何提议的机制都缺乏直接的实验支持。在这项研究中,我们使用 NO 作为 O2 的底物类似物来制备一种模拟早期反应中间体的几何和电子结构的物种。所得的不寻常的 S = (1)/2 {FeNO}(7) 物种通过磁圆二色性、电子顺磁共振和电子吸收光谱以及包括密度泛函理论和半经验计算在内的计算方法进行了表征。Cys- 和硒代半胱氨酸 (Sec)-结合 Fe(II)CDO 的 NO 加合物表现出几乎相同的电子性质;然而,CDO 无法氧化 Sec。为了探索 Cys- 和 Sec-结合的 CDO 之间反应性的差异,通过计算评估了可行的 O2 结合中间体的几何形状和能量,发现 Cys 反应途径上的低能五重态中间体对于 Sec-结合加合物采用不同的几何形状。Sec-结合的 CDO 中不存在低能 O2 加合物与我们的实验数据一致,这可能解释了为什么 Sec 不能被 CDO 氧化。