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Biology subjects

Murari, A.

Publications and source records attributed to Murari, A..

2 recordsLinked to original sources

Resting mitochondrial complex I from Drosophila melanogaster adopts a helix-locked state.

Respiratory complex I is a proton-pumping oxidoreductase key to bioenergetic metabolism. Biochemical studies have found a divide in the behavior of complex I in metazoans that aligns with the evolutionary split between Protostomia and Deuterostomia. Complex I from Deuterostomia including mammals can adopt an off-pathway "deactive" state, whereas complex I from Protostomia cannot. The presence of off-pathway states complicates the interpretation of structural results and has led to considerable mechanistic debate. Here we report the structure of mitochondrial complex I from the thoracic muscles of the model protostomian Drosophila melanogaster. We show that, although D. melanogaster complex I (Dm-CI) does not deactivate the resting state of Dm-CI adopts multiple conformations. We identify a new helix-locked open state in which an N-terminal -helix on the NDUFS4 subunit wedges between the peripheral and membrane arms. Comparison of the Dm-CI structure and conformational states to those observed in bacteria, yeast and mammals provides insight into the roles of subunits across organisms, explains why Dm-CI does not deactivate and reveals incompatibilities with current mechanistic models of complex I turnover. Additionally, the Dm-CI structure and novel regulatory mechanism will allow for the development of more selective pesticides for agriculture and human disease.

biochemistry↗

A Ferroptosis-mediated regulation of the biogenesis of the oxidative phosphorylation system

Several subunits in the matrix domain of mitochondrial complex I (CI) have been posited to be redox sensors for CI; but how elevated levels of reactive oxygen species (ROS) impinge on CI assembly is unknown. We report that when the mitochondrial NADPH-generating enzyme - Isocitrate Dehydrogenase 2 - is genetically disrupted, ROS levels are elevated and assembly of the oxidative phosphorylation system (OXPHOS) is impaired. Mechanistically, this begins with a ROS-mediated inhibition of biosynthesis of the matrix domain of CI, which progresses to a point where ferroptotic signals are induced, the mitochondrial unfolded protein response is activated and multiple OXPHOS complexes are impaired. Disruption of other enzymes that eliminate hydrogen peroxide, but not those that eliminate the superoxide radical, recapitulates the phenotype; implicating hydrogen peroxide as the signaling molecule involved. Thus, the redox status of the mitochondrion modulates the assembly of the matrix domain of CI and ultimately that of the entire OXPHOS.

cell biology↗