ArticleThe Journal of clinical investigation2024
Modeling primary microcephaly with human brain organoids reveals fundamental roles of CIT kinase activity.
Article in The Journal of clinical investigation, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 9 papers.
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Who cites it
9 citing papers in PubMed.
- Citron Kinase, a mitotic kinase with increasing significance in cancer.Cell cycle (Georgetown, Tex.) · 2026Review
- Advances and applications of brain organoids in central nervous system disorders: Bridging the gap from laboratory to clinic.Neural regeneration research · 2026Article
- Rare genetic causes of primary microcephaly in two Saudi families identified via whole-exome sequencing: Genomic and phenotypic delineation of pathogenicMolecular genetics and metabolism reports · 2026Article
- Cytokinetic abscission failures in a polarized epithelium affect apical membrane size and cilia.Molecular biology of the cell · 2026Article
- Advances in the pathophysiological study of brain development: application of cerebral organoid combined with Spatial omics technology.Stem cell research & therapy · 2026Review
- Potentially Deleterious Nonsynonymous Single Nucleotide Polymorphisms (nsSNPs) in the HumanHuman mutation · 2026Article
- CITK modulates BRCA1 recruitment at DNA double strand breaks sites through HDAC6.Cell death & disease · 2025Article
- Remodeling of Mitochondria-Endoplasmic Reticulum Contact Sites Accompanies LUHMES Differentiation.Biomolecules · 2025Article
- Using cortical organoids to understand the pathogenesis of malformations of cortical development.Frontiers in neuroscience · 2024Review
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Authors and funding
22 authors.
Funding
Abstract
Brain size and cellular heterogeneity are tightly regulated by species-specific proliferation and differentiation of multipotent neural progenitor cells (NPCs). Errors in this process are among the mechanisms of primary hereditary microcephaly (MCPH), a group of disorders characterized by reduced brain size and intellectual disability. Biallelic citron rho-interacting serine/threonine kinase (CIT) missense variants that disrupt kinase function (CITKI/KI) and frameshift loss-of-function variants (CITFS/FS) are the genetic basis for MCPH17; however, the function of CIT catalytic activity in brain development and NPC cytokinesis is unknown. Therefore, we created the CitKI/KI mouse model and found that it did not phenocopy human microcephaly, unlike biallelic CitFS/FS animals. Nevertheless, both Cit models exhibited binucleation, DNA damage, and apoptosis. To investigate human-specific mechanisms of CIT microcephaly, we generated CITKI/KI and CITFS/FS human forebrain organoids. We found that CITKI/KI and CITFS/FS organoids lost cytoarchitectural complexity, transitioning from pseudostratified to simple neuroepithelium. This change was associated with defects that disrupted the polarity of NPC cytokinesis, in addition to elevating apoptosis. Together, our results indicate that both CIT catalytic and scaffolding functions in NPC cytokinesis are critical for human corticogenesis. Species differences in corticogenesis and the dynamic 3D features of NPC mitosis underscore the utility of human forebrain organoid models for understanding human microcephaly.
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