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Trapp, M.

Publications and source records attributed to Trapp, M..

2 recordsLinked to original sources

Paralemmin-1 controls the nanoarchitecture of the neuronal submembrane cytoskeleton

The Membrane-associated Periodic Skeleton (MPS) is a specialized submembrane cytoskeleton of neuronal cells, characterized by a highly ordered 190 nm periodic lattice, with emerging functions in mechanical resilience, inter- and intracellular signaling, and action potential transmission. Here, we identify Paralemmin-1 (Palm1) as a new component and regulator of the MPS. Palm1 binds to the N-terminal region of {beta}II-spectrin, a core MPS component, and is periodically organized along the axon in hippocampal neurons. Applying the 3D imaging power of MINFLUX, we locate Palm1 in close proximity (<20 nm) to the actin-capping protein and MPS component adducin. Functionally, Palm1 overexpression enhances the degree of periodicity of several MPS proteins ({beta}II-spectrin, adducin, and ankyrinB) without altering their local concentrations, while the knock-out severely compromises the MPS structure and modifies electrophysiological properties of neurons. Both the MPS-binding and remodelling activities of Palm1 are abolished by mutating a single amino acid (W54A) in the conserved Paralemmin sequence motif. Our findings identify Palm1 as the first protein specifically dedicated to organizing the MPS, and will advance the understanding of the regulation of MPS assembly and remodelling, as well as of the Paralemmin protein family.

cell biology↗

A signalling rheostat controls chromosome segregation fidelity during early lineage specification and neurogenesis by modulating DNA replication stress

The development and homeostasis of organisms rely on the correct replication, maintenance and segregation of their genetic blueprints. How these intracellular processes are monitored across generations of different human cellular lineages, and why the spatio-temporal distribution of mosaicism varies during development remain unknown. Here, we identify several lineage specification signals that regulate chromosome segregation fidelity in both human and mouse pluripotent stem cells. Through epistatic analyses, we find that that WNT, BMP and FGF form a signalling "rheostat" upstream of ATM that monitors replication fork velocity, origin firing and DNA damage during S-phase in pluripotency, which in turn controls spindle polymerisation dynamics and faithful chromosome segregation in the following mitosis. Cell signalling control of chromosome segregation fidelity declines together with ATM activity after pluripotency exit and specification into the three human germ layers, or further differentiation into meso- and endoderm lineages, but re-emerges during neuronal lineage specification. In particular, we reveal that a tug-of-war between FGF and WNT signalling in neural progenitor cells results in DNA damage and chromosome missegregation during cortical neurogenesis, which could provide a rationale for the high levels of mosaicism in the human brain. Our results highlight a moonlighting role of morphogens, patterning signals and growth factors in genome maintenance during pluripotency and lineage specification, which could have important implications for our understanding on how mutations and aneuploidy arise during human development and disease. One sentence summaryDevelopmental signals link genome maintenance to cell fate

cell biology↗