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Acajjaoui, S.

Publications and source records attributed to Acajjaoui, S..

2 recordsLinked to original sources

The structural mechanism of MCIA complex assembly links mitochondrial redox pathways

The mitochondrial Complex I assembly (MCIA) complex is an essential player in the biogenesis of respiratory Complex I (CI), the multiprotein complex responsible for the initiation of oxidative phosphorylation (OXPHOS). It is not well understood how MCIA facilitates the assembly of CI. Here we report the structural basis of the complex formation between the MCIA subunits ECSIT and ACAD9. ECSIT binding induces a major conformational change in the FAD-binding loop of ACAD9, resulting in efflux of the FAD cofactor and redeployment of ACAD9 from fatty acid {beta}-oxidation (FAO) to CI assembly. We identify an adjacent -helix as a key structural element that specifically enables the CI assembly functionality of ACAD9, distinguishing it from its closely related VLCAD counterpart. Furthermore, we show that ECSIT is phosphorylated in vitro and ex cellulo and provide evidence that phosphorylation downregulates its association with ACAD9. Interestingly, ECSIT has previously been linked to the pathogenesis of Alzheimers disease and here we show that ECSIT phosphorylation in neuronal cells is reduced upon exposure to amyloid-{beta} (A{beta}) oligomers. These findings shed light on the assembly of the MCIA complex and implicate ECSIT as a potential reprogrammer of bioenergetic metabolic pathways that can be altered when mitochondria are affected by A{beta} toxicity, a hallmark of Alzheimers disease.

molecular biology↗

Structural analysis of Red1 as a conserved scaffold of the RNA-targeting MTREC/PAXT complex

To eliminate specific or aberrant transcripts, eukaryotic cells use nuclear RNA-targeting complexes that deliver them to the exosome for degradation. S. pombe MTREC complex, and its human counterpart PAXT, are key players in this mechanism. Red1 and hZFC3H1 function as scaffolds of these respective complexes. Here, we present an NMR structure of a helix-turn-helix domain of Red1 in complex with the N-terminus of Iss10 and show this interaction is required for proper cellular growth and meiotic mRNA degradation. We also report a crystal structure of a Red1-Ars2 complex that explains the mutually exclusive interactions of hARS2 with various "ED/EGEI/L" motif-possessing RNA regulators such as hZFC3H1, hFLASH or hNCBP3. Finally, we show that both Red1 and hZFC3H1 homo-dimerize via their coiled-coil regions indicating that MTREC and PAXT likely function as dimers. Our results, combining structures of three Red1 binding interfaces with in vivo studies, provide mechanistic insights into conserved features of MTREC/PAXT architecture.

biochemistry↗