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Biology subjects

Reymann, A.-C.

Publications and source records attributed to Reymann, A.-C..

2 recordsLinked to original sources

Classification of human actin pathological variants using C. elegans CRISPR-generated models

Actin plays a crucial role in diverse physiological processes by forming dynamic networks that determine cellular shape and mechanical properties. Non-Muscle Actinopathies (NMA) are rare diseases caused by de novo variants in human cytoskeletal {beta}-actin (ACTB) and {gamma}-actin (ACTG1) genes, ranging from missense mutations to whole gene deletions. Currently, the high clinical variability and genotype-phenotype correlations in NMA remain largely unresolved. To address this concern, we inserted nine mutations identified in patients in the C. elegans cytoplasmic actin orthologue act-2 and performed a quantitative multiscale characterization of these animal models. We uncovered various perturbations including micro-scale actin network defects, cell-scale abnormalities, morphogenesis failure, and weaker behavioural phenotypes. Notably, the severity of the observed defects correlates with the severity of patients symptoms. Thus, we provide evidence that such C. elegans models are relevant to investigate the mechanisms underlying NMA physiopathology and could ultimately be used to screen for therapeutic strategies.

cell biology↗

The kinesin Kif21b regulates radial migration of cortical projection neurons through a noncanonical function on actin cytoskeleton.

Completion of neuronal migration is critical for brain development. Kif21b is a plus-end directed kinesin motor protein that promotes intracellular transport and controls microtubule dynamics in neurons. Here we report a physiological function of Kif21b during radial migration of projection neurons in the mouse developing cortex. In vivo analysis in mouse and live imaging on cultured slices demonstrate that Kif21b regulates the radial glia-guided locomotion of new-born neurons independently of its motility on microtubules. Unexpectedly we show that Kif21b directly binds and regulates the actin cytoskeleton both in vitro and in vivo in migratory neurons. We establish that Kif21b-mediated regulation of actin cytoskeleton dynamics influences branching and nucleokinesis during neuronal locomotion. Altogether, our results reveal atypical roles of Kif21b on the actin cytoskeleton during migration of cortical projection neurons.

neuroscience↗