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Schmelter, F.

Publications and source records attributed to Schmelter, F..

2 recordsLinked to original sources

A dynamic displacement mechanism drives protein import into mitochondria

Most mitochondrial proteins are produced in the cytosol and imported through the translocase of the outer mitochondrial membrane (TOM) to reach their final destination. Although this protein entry gate has been structurally characterized, it remains unclear how precursor proteins are handed off from the cytosolic receptor domains to the translocation pore. Here we show that the cytosolic domain of Tom22--traditionally viewed as the central TOM receptor--acts not as a structured scaffold but as a largely disordered, flexible segment that plays an active role in precursor transfer. Atomic-level structural techniques and in vivo experiments identified a conserved short linear motif that forms a transient !-helical element within this disordered domain. By binding to the canonical precursor protein binding sites of the receptors Tom20 and Tom70, this critical -helical segment acts as a precursor protein displacement element (PPDE). This competitive interaction facilitates the release of preproteins directly above the import pore, and thereby drives translocation across the outer mitochondrial membrane. These findings reveal that flexibility, rather than rigid structure, underlies the central transfer step of mitochondrial outermembrane protein translocation. Our results point to a versatile mechanism for ligand displacement in chaperone, receptor, and transport systems that must balance selective binding with efficient release.

cell biology↗

Decreased ATP synthase activity is linked to altered spatiotemporal organisation of ATP Synthase in a cellular cardiomyocyte senescent model

Heart disease is the leading cause of death in the elderly population and the heart is a highly energy-consuming tissue. Aging-related heart failure is often driven by energy depletion in cardiomyocytes (CM), which rely on their abundant, cristae-dense mitochondria for ATP production. ATP synthase, localized along the cristae rims, plays a critical role in energy conversion, but the connection between its organization and function remains unclear. Here, we explored the spatiotemporal organization of ATP synthase in senescent CM at the level of individual complexes. Using single-molecule localization and tracking microscopy, we observed reduced enzyme mobility within the cristae, coinciding with decreased ATP synthase activity, despite a stable resting mitochondrial membrane potential. This reduction in activity was independent of changes in ATP synthase expression or dimerization. Electron tomography revealed an increased prevalence of curved inner membranes and fenestrated cristae in senescent CM, explaining the reduced enzyme mobility. Senescent CM displayed irregular autonomous and paced beating patterns. These abnormalities suggest that impaired cardiac function is directly driven by disrupted energy metabolism, rooted in the suboptimal organization and function of ATP synthase in altered cristae.

cell biology↗