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Mora-Bermudez, F.

Publications and source records attributed to Mora-Bermudez, F..

2 recordsLinked to original sources

Cerebral organoids expressing mutant actin genes reveal cellular mechanism underlying microcephalic cortical malformation

Actins are structural cytoskeletal proteins playing crucial roles in multiple cellular processes. Mutations in the ACTB and ACTG1 genes, encoding the ubiquitous beta- and gamma- cytoskeletal actin isoforms, respectively, cause a broad spectrum of neurodevelopmental disorders, with microcephaly as the most frequent one. Here we used patient-derived cerebral organoids to gain insight into the pathogenesis underlying this cortical malformation. Cerebral organoids from induced pluripotent stem cells (iPSCs) of patients with the Baraitser-Winter- CerebroFrontoFacial syndrome (BWCFF-S), expressing either an ACTB or an ACTG1 missense mutation, are reduced in size, showing a thinner ventricular zone (VZ). This decrease in VZ progenitors is in turn associated with a striking change in the orientation of their cleavage plane from predominantly vertical (control) to predominantly horizontal (BWCFF-S), which is incompatible with increasing VZ progenitor abundance. Various cytoskeletal and morphological irregularities of BWCFF-S VZ progenitors, notably in the apical region of these cells, seemingly contribute to their predominantly horizontal cleavage plane orientation. Our results provide insight into the cell biological basis of the microcephaly associated with BWCFF-S caused by actin mutations.

neuroscience↗

Longer metaphase and fewer chromosome segregation errors in modern human than Neandertal brain development

Since the ancestors of modern humans separated from those of Neandertals, around one hundred amino acid substitutions spread to essentially all modern humans. The biological significance of these changes is largely unknown. Here, we examine all six such amino acid substitutions in the three proteins known to have key roles in kinetochore function and chromosome segregation and to be highly expressed in the stem cells of the developing neocortex. When we introduce these modern human-specific substitutions in the mouse, three substitutions in two of these proteins, KIF18a and KNL1, cause a prolongation of metaphase and a reduction in chromosome segregation errors in apical progenitors of the developing neocortex. Conversely, the ancestral substitutions cause a reduction in metaphase length and an increase in chromosome segregation errors in human brain organoids. Our data also show that, in these aspects, Neandertals were more similar to chimpanzees than to modern humans. Thus, the fidelity of chromosome segregation during neocortex development improved in modern humans after their divergence from Neandertals.

neuroscience↗