redox centers
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Author(s):  
Corina Hagel ◽  
Bärbel Blaum ◽  
Thorsten Friedrich ◽  
Johann Heider

AbstractEthylbenzene dehydrogenase (EbDH), the initial enzyme of anaerobic ethylbenzene degradation from the beta-proteobacterium Aromatoleumaromaticum, is a soluble periplasmic molybdenum enzyme consisting of three subunits. It contains a Mo-bis-molybdopterin guanine dinucleotide (Mo-bis-MGD) cofactor and an 4Fe–4S cluster (FS0) in the α-subunit, three 4Fe–4S clusters (FS1 to FS3) and a 3Fe–4S cluster (FS4) in the β-subunit and a heme b cofactor in the γ-subunit. Ethylbenzene is hydroxylated by a water molecule in an oxygen-independent manner at the Mo-bis-MGD cofactor, which is reduced from the MoVI to the MoIV state in two subsequent one-electron steps. The electrons are then transferred via the Fe–S clusters to the heme b cofactor. In this report, we determine the midpoint redox potentials of the Mo-bis-MGD cofactor and FS1–FS4 by EPR spectroscopy, and that of the heme b cofactor by electrochemically induced redox difference spectroscopy. We obtained relatively high values of > 250 mV both for the MoVI–MoV redox couple and the heme b cofactor, whereas FS2 is only reduced at a very low redox potential, causing magnetic coupling with the neighboring FS1 and FS3. We compare the results with the data on related enzymes and interpret their significance for the function of EbDH. Graphical abstract


2021 ◽  
pp. 2106469
Author(s):  
Yi Zhao ◽  
Yongxin Huang ◽  
Feng Wu ◽  
Renjie Chen ◽  
Li Li

Small Methods ◽  
2021 ◽  
pp. 2100573
Author(s):  
Xuan Sun ◽  
Xiuxiu Zhang ◽  
Yuanli Li ◽  
Yanzhi Xu ◽  
Hui Su ◽  
...  

2021 ◽  
Vol 7 (35) ◽  
pp. eabg6314
Author(s):  
Zejing Lin ◽  
Minglei Mao ◽  
Chenxing Yang ◽  
Yuxin Tong ◽  
Qinghao Li ◽  
...  

The strong electrostatic interaction between Al3+ and close-packed crystalline structures, and the single-electron transfer ability of traditional cationic redox cathodes, pose challenged for the development of high-performance rechargeable aluminum batteries. Here, to break the confinement of fixed lattice spacing on the diffusion and storage of Al-ion, we developed a previously unexplored family of amorphous anion-rich titanium polysulfides (a-TiSx, x = 2, 3, and 4) (AATPs) with a high concentration of defects and a large number of anionic redox centers. The AATP cathodes, especially a-TiS4, achieved a high reversible capacity of 206 mAh/g with a long duration of 1000 cycles. Further, the spectroscopy and molecular dynamics simulations revealed that sulfur anions in the AATP cathodes act as the main redox centers to reach local electroneutrality. Simultaneously, titanium cations serve as the supporting frameworks, undergoing the evolution of coordination numbers in the local structure.


ChemSusChem ◽  
2021 ◽  
Author(s):  
Zhaolei Wang ◽  
Qiaoyan Qi ◽  
Weize Jin ◽  
Xin Zhao ◽  
Xiaoyu Huang ◽  
...  
Keyword(s):  

2021 ◽  
Vol 118 (25) ◽  
pp. 253901
Author(s):  
Andrey Gunawan ◽  
Pilarisetty Tarakeshwar ◽  
Vladimiro Mujica ◽  
Daniel A. Buttry ◽  
Patrick E. Phelan

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