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Deficient adaptation to centrosome duplication defects in neural progenitors causes microcephaly and subcortical heterotopias
José González-Martínez, Andrzej W. Cwetsch, Diego Martínez-Alonso, Luis R. López-Sainz, Jorge Almagro, Anna Melati, Jesús Gómez, Manuel Pérez-Martínez, Diego Megías, Jasminka Boskovic, Javier Gilabert-Juan, Osvaldo Graña-Castro, Alessandra Pierani, Axel Behrens, Sagrario Ortega, Marcos Malumbres
José González-Martínez, Andrzej W. Cwetsch, Diego Martínez-Alonso, Luis R. López-Sainz, Jorge Almagro, Anna Melati, Jesús Gómez, Manuel Pérez-Martínez, Diego Megías, Jasminka Boskovic, Javier Gilabert-Juan, Osvaldo Graña-Castro, Alessandra Pierani, Axel Behrens, Sagrario Ortega, Marcos Malumbres
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Research Article Cell biology Development

Deficient adaptation to centrosome duplication defects in neural progenitors causes microcephaly and subcortical heterotopias

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Abstract

Congenital microcephaly (MCPH) is a neurodevelopmental disease associated with mutations in genes encoding proteins involved in centrosomal and chromosomal dynamics during mitosis. Detailed MCPH pathogenesis at the cellular level is still elusive, given the diversity of MCPH genes and lack of comparative in vivo studies. By generating a series of CRISPR/Cas9-mediated genetic KOs, we report here that — whereas defects in spindle pole proteins (ASPM, MCPH5) result in mild MCPH during development — lack of centrosome (CDK5RAP2, MCPH3) or centriole (CEP135, MCPH8) regulators induces delayed chromosome segregation and chromosomal instability in neural progenitors (NPs). Our mouse model of MCPH8 suggests that loss of CEP135 results in centriole duplication defects, TP53 activation, and cell death of NPs. Trp53 ablation in a Cep135-deficient background prevents cell death but not MCPH, and it leads to subcortical heterotopias, a malformation seen in MCPH8 patients. These results suggest that MCPH in some MCPH patients can arise from the lack of adaptation to centriole defects in NPs and may lead to architectural defects if chromosomally unstable cells are not eliminated during brain development.

Authors

José González-Martínez, Andrzej W. Cwetsch, Diego Martínez-Alonso, Luis R. López-Sainz, Jorge Almagro, Anna Melati, Jesús Gómez, Manuel Pérez-Martínez, Diego Megías, Jasminka Boskovic, Javier Gilabert-Juan, Osvaldo Graña-Castro, Alessandra Pierani, Axel Behrens, Sagrario Ortega, Marcos Malumbres

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Figure 7

Partial depletion of Trp53 exacerbates the presence of cortical heterotopias in Cep135-mutant newborns but not in other MCPH models.

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Partial depletion of Trp53 exacerbates the presence of cortical heteroto...
(A) Confocal imaging of a E14.5 Cep135(Δ8/Δ8); Tp53(+/–) neocortex stained with the indicated antibodies. Arrowheads indicate regions of cortical malformations with aberrant folding. Scale bar: 100 μm. (B) Histological Nissl staining of P0 cortices from newborns of the indicated genotypes, showing heterotopias in Cep135(Δ8/Δ8); Trp53(+/–) double mutant newborns (arrowheads). Scale bar: 100 μm. (C) Immunostaining of E14.5 embryonic brain in seriated sagittal sections with the indicated antibodies. Arrowheads in upper confocal images depict regions of cortical malformations (also showed in A). Squared regions depict a cortical heterotopia, showed in higher magnification in lower panels. Scale bars: 100 μm. (D) Higher-magnification confocal images of specific cells from the previous panels showing aberrant and polylobulated nuclei (top arrowheads) and abnormally large nuclei (bottom arrowheads) cells in double mutant heterotopias. A normal nucleus (asterisk) is shown for comparison. Scale bar: 10 μm. (E) Immunostaining of P0 neocortices of the indicated genotypes against SATB2 (layers II–V), CTIP2 (layer V), and TBR1 (layer VI). Note the presence of CTIP2+, TBR1+, SATB2– subcortical heterotopias. Scale bar: 100 μm (left panels) and 50 μm (higher-magnification panels to the right).

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