alternative complex iii
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Author(s):  
Katarzyna Lorencik ◽  
Robert Ekiert ◽  
Yongtao Zhu ◽  
Mark J. McBride ◽  
Robert B. Gennis ◽  
...  

Energy conversion is a fundamental process of all organisms, realized by specialized protein complexes, one of which is alternative complex III (ACIII). ACIII is a functional analogue of well-known mitochondrial complex III, but operates according to a different, still unknown mechanism.


2021 ◽  
Vol 9 ◽  
Author(s):  
Filipa Calisto ◽  
Manuela M. Pereira

Several energy-transducing microbial enzymes have their peripheral subunits connected to the membrane through an integral membrane protein, that interacts with quinones but does not have redox cofactors, the so-called NrfD-like subunit. The periplasmic nitrite reductase (NrfABCD) was the first complex recognized to have a membrane subunit with these characteristics and consequently provided the family's name: NrfD. Sequence analyses indicate that NrfD homologs are present in many diverse enzymes, such as polysulfide reductase (PsrABC), respiratory alternative complex III (ACIII), dimethyl sulfoxide (DMSO) reductase (DmsABC), tetrathionate reductase (TtrABC), sulfur reductase complex (SreABC), sulfite dehydrogenase (SoeABC), quinone reductase complex (QrcABCD), nine-heme cytochrome complex (NhcABCD), group-2 [NiFe] hydrogenase (Hyd-2), dissimilatory sulfite-reductase complex (DsrMKJOP), arsenate reductase (ArrC) and multiheme cytochrome c sulfite reductase (MccACD). The molecular structure of ACIII subunit C (ActC) and Psr subunit C (PsrC), NrfD-like subunits, revealed the existence of ion-conducting pathways. We performed thorough primary structural analyses and built structural models of the NrfD-like subunits. We observed that all these subunits are constituted by two structural repeats composed of four-helix bundles, possibly harboring ion-conducting pathways and containing a quinone/quinol binding site. NrfD-like subunits may be the ion-pumping module of several enzymes. Our data impact on the discussion of functional implications of the NrfD-like subunit-containing complexes, namely in their ability to transduce energy.


2020 ◽  
Vol 6 (31) ◽  
pp. eaba2739 ◽  
Author(s):  
Yang Shi ◽  
Yueyong Xin ◽  
Chao Wang ◽  
Robert E. Blankenship ◽  
Fei Sun ◽  
...  

Alternative complex III (ACIII) is a multisubunit quinol:electron acceptor oxidoreductase that couples quinol oxidation with transmembrane proton translocation in both the respiratory and photosynthetic electron transport chains of bacteria. The coupling mechanism, however, is poorly understood. Here, we report the cryo-EM structures of air-oxidized and dithionite-reduced ACIII from the photosynthetic bacterium Roseiflexus castenholzii at 3.3- and 3.5-Å resolution, respectively. We identified a menaquinol binding pocket and an electron transfer wire comprising six hemes and four iron-sulfur clusters that is capable of transferring electrons to periplasmic acceptors. We detected a proton translocation passage in which three strictly conserved, mid-passage residues are likely essential for coupling the redox-driven proton translocation across the membrane. These results allow us to propose a previously unrecognized coupling mechanism that links the respiratory and photosynthetic functions of ACIII. This study provides a structural basis for further investigation of the energy transformation mechanisms in bacterial photosynthesis and respiration.


2020 ◽  
Vol 34 (S1) ◽  
pp. 1-1
Author(s):  
Robert Gennis ◽  
Chang Sun ◽  
Samir Benlekbir ◽  
Padmaja Venkatakrishnan ◽  
Yuhang Wang ◽  
...  

2019 ◽  
Vol 116 (3) ◽  
pp. 2a
Author(s):  
Chang Sun ◽  
Samir Benlekbir ◽  
Padmaja Venkatakrishnan ◽  
Yuhang Wang ◽  
Sangjin Hong ◽  
...  

2018 ◽  
Vol 1859 ◽  
pp. e69
Author(s):  
Janet Vonck ◽  
Joana S. Sousa ◽  
Filipa Calisto ◽  
Deryck J. Mills ◽  
Julian D. Langer ◽  
...  

2018 ◽  
Vol 1859 ◽  
pp. e18-e19
Author(s):  
Manuela M. Pereira ◽  
Joana S. Sousa ◽  
Filipa Calisto ◽  
Deryck J. Mills ◽  
Julian D. Langer ◽  
...  

Author(s):  
Robert B. Gennis ◽  
Chang Sun ◽  
Samir Benlekbir ◽  
Padmaja Venkatakrishnan ◽  
Yuhang Wang ◽  
...  

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