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van den Broucke, J.-B.

Publications and source records attributed to van den Broucke, J.-B..

2 recordsLinked to original sources

Super-resolution complexome of human mitochondria elucidates translocase, morphology and OXPHOS networks

Mitochondria function as cellular powerhouses and central hubs in metabolism, redox and stress reactions, signaling and apoptosis1-5. Defects of mitochondria lead to numerous human diseases1,6-8. The integration of mitochondrial proteins into complexes and networks is crucial for their function. Whereas the composition of the human mitochondrial proteome has been studied8,9, only limited information is available on the organization of the proteome into protein complexes and assemblies. Here we present a systematic mapping of the human mitochondrial complexome from HEK293T cells at super-resolution, resolving more than 7,000 abundance profile peaks of mitochondrial proteins. Proteins functioning in signaling, cell stress, protein biogenesis, turnover and membrane dynamics display particularly high complexities. High resolution and precise quantification enable discrimination between canonical constituents and non-stoichiometric regulatory interactors of the ATP synthase, major metabolite channels and import translocases. The complexome reveals membrane-spanning networks of protein insertase and morphology machinery, and co-assembly of protein import and export components at the major respiratory supercomplex, unraveling a multifunctional organization of mitochondrial machineries. This complexome represents a fully interactive resource for the systematic analysis of human mitochondrial machineries and interaction networks.

biochemistry↗

A ternary Neurexin-T178-PTPR complex represents a core-module of neuronal synapse organization

The organization of cell-cell contacts is fundamental for multi-cellular life and operation of organs. Synapses, prototypic contact sites for neuronal communication, are key to brain function and work over the last decades identified multiple synaptic cell adhesion molecules (sCAMs) that drive their organization. Whether these sCAMs operate independently or in coordination through yet unknown linker proteins remained elusive. Here, we used a systematic large-scale multi-epitope affinity-purification approach combined with quantitative mass spectrometry and immuno-EM to comprehensively map trans-synaptic protein networks in the mouse brain. We discover a presynaptic core-module assembled from the two major sCAM families, Neurexins1-3 and LAR-type receptor protein tyrosine phosphatases (PTPRD,S,F), and the previously uncharacterized tetraspanin proteins T178A, B. These ternary Neurexin-T178-PTPR complexes form through their trans-membrane domains and assemble during biogenesis in the ER. Loss of T178B results in module dissociation, strong reduction of LAR-PTPRs and re-distribution of synaptic Neurexins. At synapses, the Neurexin-T178-PTPR module recruits stable and extended trans-synaptic protein networks with defined pre- and post-synaptic partners and secreted extracellular linkers. The network architecture robustly interlinks the distinct functional modules/machineries of the presynaptic active zone and establishes tight associations with XKR-type lipid scramblases and postsynaptic GABAergic and glutamatergic neurotransmitter receptors. Our data identify a universal presynaptic core-module for synaptic adhesion and trans-synaptic signaling in the mammalian brain.

neuroscience↗