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Strohm, R.

Publications and source records attributed to Strohm, R..

2 recordsLinked to original sources

MINDNet: Proximity interactome of the MICOS complex revealing a multifaceted network orchestrating mitochondrial biogenesis

The Mitochondrial contact site and cristae organizing system (MICOS) complex is a multisubunit complex regulating mitochondrial inner membrane (IM) architecture, which is enriched at crista junctions (CJs) and required for cristae membrane dynamics. It modulates various mitochondrial processes including protein and lipid transport and is causally linked to a variety of human diseases. To gain a broad overview of the various pathways modulated by the MICOS complex, we examined its molecular neighbourhood. For this, we employed proximity biotinylation assays using APEX2 fused to four MICOS subunits (MIC10, MIC13, MIC26 and MIC27) in the respective mammalian knockout cells. These four MICOS-APEX2 fusion proteins integrated into the native MICOS complex and properly localised as revealed by electron microscopy combined with DAB staining and STED super-resolution nanoscopy. Here, we identify 119 common and 50 unique proteins, termed MICOS NanoDomain Network (MINDNet) encompassing the versatile proximity proteome of the MIC10/MIC13/MIC26/MIC27 subcomplex playing multifaceted mitochondrial functions. The MINDNet revealed a large number of OXPHOS proteins, protein translocases of the IM and OM, mitochondrial ribosomal proteins and solute carrier family transporters. Using the cues obtained from the proximity interaction studies, we investigated the role of all the MICOS proteins in modulating the function of the OXPHOS complexes. Among all the MICOS proteins, MIC10 and MIC60 consistently regulated the assembly and activity of the OXPHOS complexes. Overall, we propose that the MICOS complex integrates numerous spatial and temporal cues to regulate the dynamic microenvironment, along with IM architecture, which are involved in multiple pathways controlling mitochondrial biogenesis.

cell biology↗

SLP2 coordinates MICOS assembly and cristae morphogenesis via MIC13 and YME1L

The MICOS complex subunit MIC13 is essential for mitochondrial cristae organization. Mutations in MIC13 cause severe mitochondrial hepato-encephalopathy displaying defective cristae morphology and loss of the MIC10-subcomplex. Here we identified stomatin-like protein 2 (SLP2) as an interacting partner of MIC13 and decipher a critical role of SLP2 as an auxiliary MICOS subunit, modulating cristae morphology. SLP2 provides a large interaction hub for MICOS subunits and loss of SLP2 leads to drastic alterations in cristae morphology. Double deletion of SLP2 and MIC13 showed reduced assembly of core MICOS subunit, MIC60 into MICOS and dispersion of MIC60-specific puncta, demonstrating a critical role of SLP2-MIC13 in MICOS assembly and crista junction (CJ) formation. We further identified that the mitochondrial i-AAA protease YME1L in coordination either with MIC13 or SLP2 differentially regulates MICOS assembly pathways thereby interlinking MIC13-specific or scaffolding-specific role of SLP2 with quality control and assembly of the MICOS complex. YME1L- depletion in MIC13 KO could restore MIC10-subcomplex and reform the nascent CJ. Taken together, we propose seeder model for MICOS assembly and CJ formation, where SLP2- MIC13 seed the assembly of MIC60 into MICOS complex and promote the formation of CJ by regulating the quality and stability of MIC10-subcomplex.

biochemistry↗