| Literature DB >> 33463523 |
Maria Maldonado1, Fei Guo1,2, James A Letts1.
Abstract
Mitochondrial complex III (CIII2) and complex IV (CIV), which can associate into a higher-order supercomplex (SC III2+IV), play key roles in respiration. However, structures of these plant complexes remain unknown. We present atomic models of CIII2, CIV, and SC III2+IV from Vigna radiata determined by single-particle cryoEM. The structures reveal plant-specific differences in the MPP domain of CIII2 and define the subunit composition of CIV. Conformational heterogeneity analysis of CIII2 revealed long-range, coordinated movements across the complex, as well as the motion of CIII2's iron-sulfur head domain. The CIV structure suggests that, in plants, proton translocation does not occur via the H channel. The supercomplex interface differs significantly from that in yeast and bacteria in its interacting subunits, angle of approach and limited interactions in the mitochondrial matrix. These structures challenge long-standing assumptions about the plant complexes and generate new mechanistic hypotheses.Entities:
Keywords: Vigna radiata; cryoEM; membrane protein; mitochondria; molecular biophysics; plant biology; respiration; structural biology; supercomplex
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Year: 2021 PMID: 33463523 PMCID: PMC7815315 DOI: 10.7554/eLife.62047
Source DB: PubMed Journal: Elife ISSN: 2050-084X Impact factor: 8.140