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Grünewald, M.

Publications and source records attributed to Grünewald, M..

3 recordsLinked to original sources

Cytosolic factors govern vimentin network architecture and mechanics

Vimentin intermediate filaments are key cytoskeletal components forming networks with architectures distinct from other intermediate filament types, enabling specialized functions. Although assembly of individual filaments from soluble subunits is well characterized, dissecting how vimentin networks are organized has been challenging, as existing in vitro systems do not mimic the structures observed in cells. Thus, how cells establish higher-order vimentin organization remains unclear. Here, we reconstitute cell-like vimentin networks in vitro, using purified vimentin and extracts from mammalian and non-mammalian cells. Systematic variation of parameters reveals that cytosolic biomolecules, rather than intrinsic filament properties or generic ionic components, are the primary determinants of network architecture and mechanical behaviour. Importantly, network architecture is not universal but varies strongly according to the cell type from which the extract is derived, indicating that vimentin assemblies are tailored in a cell type-specific manner. Thus, this extract-based reconstitution system enables mechanistic dissection of intermediate filament regulation under near-native biochemical conditions, bridging the current gap between purified systems and the cellular environment. Our findings show that vimentin architecture and mechanics emerge primarily from cytosolic biomolecular factors that organize filaments into cell type-specific networks. These results establish cytosolic regulation as a central mechanism specifying intermediate filament network architecture and function.

cell biology↗

Kinesin-induced buckling reveals the limits of microtubule self-repair

Microtubules are stiff cytoskeletal polymers whose ability to rapidly switch between growth and disassembly relies on a metastable lattice. This metastability is also reflected in their sensitivity to environmental conditions and in intrinsic lattice dynamics, where spontaneous tubulin loss is balanced by tubulin incorporation from solution - a process that also enables microtubules to self-repair when damaged. Whether such intrinsic self-repair is sufficient to preserve microtubule integrity during dynamic molecular-motor induced buckling, which frequently occurs in cells, remains unclear. Here, we show that kinesin-driven microtubule buckling in vitro induces severe lattice damage, leading to extensive tubulin incorporation. In many cases, however, the damage exceeds the microtubules capacity for self-repair, resulting in breakage. In contrast, microtubules survive continuous buckling substantially longer in the presence of intracellular factors. Our results identify the limits of intrinsic microtubule self-repair and demonstrate that additional cellular mechanisms are essential to maintain microtubule integrity under sustained mechanical load.

biophysics↗

Tau accelerates tubulin exchange in the microtubule lattice

Microtubules are cytoskeletal filaments that exhibit dynamic tip instability and, as recent discoveries reveal, possess a dynamic lattice undergoing continuous tubulin loss and incorporation. In this study, we investigate the role of tau, a neuronal microtubule-associated protein (MAP) known for its stabilizing effects on microtubules, in modulating lattice dynamics. Using in vitro reconstitution, kinetic Monte Carlo modeling, and molecular dynamics simulations, we reveal that tau, despite lacking enzymatic activity, accelerates tubulin exchange within the lattice, particularly at topological defect sites. Tau appears to stabilize longitudinal tubulin-tubulin interactions while destabilizing lateral ones, thereby enhancing the mobility and repair of lattice defects. These results challenge the traditional view of tau as merely a stabilizer, uncovering its active role in dynamically modulating microtubule lattice structure.

biophysics↗