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Theoretical investigation of the high-spin 'fe-proximal oxygen' catalytic mechanism of rat cysteine dioxygenase

机译:大鼠半胱氨酸双加氧酶高自旋“近端氧”催化机理的理论研究

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摘要

Cysteine dioxygenase (CDO) catalyzes the oxidation of cysteine to cysteine sulfinate, which has crucial roles in the metabolism and bioconversion. The catalyzed reaction mechanism of CDO is currently disputed. Herein, a high-spin "Fe-proximal oxygen" catalytic mechanism of rat CDO is theoretically investigated with an energy barrier of 15.7 kcal?mol~(-1). In the mechanism, the Fe-proximal oxygen atom firstly attacks the sulfur atom of cysteine by the swing of O(1)-O(2) bond, and this makes the Fe-proximal oxygen atom O(1) accessible to S and Fe-terminal oxygen atom O(2) be closed to Fe. Then the generated seven-membered ring intermediate has smaller tension and could help the reaction take place easily. The reaction ends in the formation of the product cysteine sulfinic acid with the second oxygen atom O(2) transferred to S. This study gives an additional insight of the reaction mechanism of CDO, where the "Fe-proximal oxygen" and "Fe-terminal oxygen" mechanisms are both favorable in the catalytic process.
机译:半胱氨酸双加氧酶(CDO)催化将半胱氨酸氧化为半胱氨酸亚磺酸盐,这在代谢和生物转化中具有至关重要的作用。 CDO的催化反应机理目前存在争议。本文以15.7kcal?mol〜(-1)的能垒为理论研究了大鼠CDO的高自旋“ Fe近氧”催化机理。在该机理中,Fe邻近的氧原子首先通过O(1)-O(2)键的摆动攻击半胱氨酸的硫原子,这使得S和Fe可以接近Fe邻近的氧原子O(1) -末端氧原子O(2)对Fe封闭。这样产生的七元环中间体的张力较小,可以帮助反应容易进行。该反应以第二个氧原子O(2)转移至S的半胱氨酸亚磺酸产物的形成结束。本研究为CDO的反应机理提供了进一步的见解,其中“ Fe-近端氧”和“ Fe-末端氧”机制在催化过程中都是有利的。

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