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D'Andrea, C.

Publications and source records attributed to D'Andrea, C..

2 recordsLinked to original sources

The distinct role of actin isoforms on mechanosensing-based maturation of hiPSC-derived neurons unveiled by isoform-specific mutations

Neuronal maturation is governed by the integration of intrinsic programs, such as gene regulation and cellular metabolism, with external mechanical cues. The conversion of mechanical forces into developmental responses (mechanotransduction) requires mechanical coupling of neurons to the extracellular matrix and neighboring cells. This coupling is mediated by the actin cytoskeleton and associated transmembrane protein complexes. However, the specific role of the {beta}- and {gamma}-actin isoforms in mechanotransduction, and the functional consequences of their pathogenic mutations, remain poorly understood. To address this question, we combined optical tweezers mechanics with immunofluorescence in human iPSC-derived neural progenitor cells (NPCs) and postmitotic neurons (NCs), both wild-type (WT) and carrying pathogenic mutations in {beta}-actin (R196H) or {gamma}-actin (T203M) associated with Baraitser-Winter cerebrofrontofacial (BWCFF) syndrome. Using membrane tether elongation as a proxy for early protrusion formation, we found that {gamma}-T203M NPCs require a fourfold lower force than WT NPCs and, upon differentiation, fail to develop the neurite-filopodia architecture retaining abundant immature protrusions In contrast, {beta}-R196H NPCs exhibit only reduction of cell surface tension associated with increased neuron fragility, without pronounced protrusion abnormalities. These results reveal non-redundant roles of {beta}- and {gamma}-actin isoforms in neuronal mechanotransduction and provide mechanistic insight into the pathogenesis of BWCFF syndrome.

neuroscience↗

Photosystem II monomeric antenna CP26 has a key role in Non-Photochemical Quenching in Chlamydomonas reinhardtii

O_LIThermal dissipation of the excitation energy harvested in excess, named non-photochemical quenching (NPQ), is one of the main photoprotective mechanisms evolved in oxygenic photosynthetic organisms. Here, the specific function in photoprotection and light harvesting of the monomeric Photosystem II antenna CP26, was investigated in Chlamydomonas, model organism for green algae C_LIO_LICRISPR/Cas9 genome editing and complementation strategies were applied to generate new cp26 knock-out mutants (named k6#) that differently from previous findings, did not negatively affected CP29 accumulation, allowing to compare mutants specifically deprived of CP26, CP29 or both C_LIO_LIThe absence of CP26 partially affected Photosystem II activity causing a reduced growth at low or medium light but not at high irradiances. However, the main phenotype observed in k6# mutants was a more than 70% reduction of NPQ compared to wild-type. This NPQ phenotype could be fully rescued by genetic complementation demonstrating that [~]50% of CP26 content compared to wild-type was sufficient to restore the NPQ capacity. C_LIO_LIOur findings demonstrate a pivotal role for CP26 in NPQ induction while CP29 has a crucial function for Photosystem II activity. The genetic engineering of these two proteins could be a promising strategy to regulate photosynthetic efficiency of microalgae under different light regimes. C_LI

plant biology↗