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Curr Opin Cell Biol
2022 Aug 01;77:102105. doi: 10.1016/j.ceb.2022.102105.
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Development of a multiciliated cell.
Mahjoub MR
,
Nanjundappa R
,
Harvey MN
.
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Multiciliated cells (MCC) are evolutionary conserved, highly specialized cell types that contain dozens to hundreds of motile cilia that they use to propel fluid directionally. To template these cilia, each MCC produces between 30 and 500 basal bodies via a process termed centriole amplification. Much progress has been made in recent years in understanding the pathways involved in MCC fate determination, differentiation, and ciliogenesis. Recent studies using mammalian cell culture systems, mice, Xenopus, and other model organisms have started to uncover the mechanisms involved in centriole and cilia biogenesis. Yet, how MCC progenitor cells regulate the precise number of centrioles and cilia during their differentiation remains largely unknown. In this review, we will examine recent findings that address this fundamental question.
Figure 1. Variability in centriole and cilia abundance of multiciliated cells. (a) Scanning Electron Microscopy images of mouse respiratory (trachea) and ependymal (brain ventricle) MCC. (b) Fluorescent microscopy images of cultured mouse airway basal progenitor cells and mature airway MCC (left and center), and en face image of ventricular ependymal MCC from mouse brain. (c) Schematic of the proliferation and differentiation steps of multiciliated epithelia. The key stages of centriole amplification from parental centrioles and deuterosomes (dark spheres) are depicted. (d) Quantification of centriole number and cell surface area of mouse airway MCC in vitro and in vivo., highlighting a linear relationship between the two. Data reproduced and modified from Ref. [27].
Al Jord,
Calibrated mitotic oscillator drives motile ciliogenesis.
2017, Pubmed
Al Jord,
Calibrated mitotic oscillator drives motile ciliogenesis.
2017,
Pubmed
Al Jord,
Centriole amplification by mother and daughter centrioles differs in multiciliated cells.
2014,
Pubmed
Antoniades,
Making the connection: ciliary adhesion complexes anchor basal bodies to the actin cytoskeleton.
2014,
Pubmed
Azimzadeh,
Centrosome loss in the evolution of planarians.
2012,
Pubmed
Boon,
MCIDAS mutations result in a mucociliary clearance disorder with reduced generation of multiple motile cilia.
2014,
Pubmed
,
Xenbase
Boutin,
Biology of multiciliated cells.
2019,
Pubmed
,
Xenbase
Brooks,
Multiciliated cells.
2014,
Pubmed
Chan,
How cells know the size of their organelles.
2012,
Pubmed
Ching,
Centrioles are amplified in cycling progenitors of olfactory sensory neurons.
2020,
Pubmed
Collins,
Centriole Number and the Accumulation of Microtubules Modulate the Timing of Apical Insertion during Radial Intercalation.
2020,
Pubmed
,
Xenbase
Cuschieri,
The development of the olfactory mucosa in the mouse: electron microscopy.
1975,
Pubmed
Goehring,
Organelle growth control through limiting pools of cytoplasmic components.
2012,
Pubmed
Hansen,
Development of the olfactory organ in the zebrafish, Brachydanio rerio.
1993,
Pubmed
Herawati,
Multiciliated cell basal bodies align in stereotypical patterns coordinated by the apical cytoskeleton.
2016,
Pubmed
Kalnins,
Centriole replication during ciliogenesis in the chick tracheal epithelium.
1969,
Pubmed
Kim,
A role for Cep70 in centriole amplification in multiciliated cells.
2021,
Pubmed
,
Xenbase
Kim,
Actin remodelling factors control ciliogenesis by regulating YAP/TAZ activity and vesicle trafficking.
2015,
Pubmed
Klos Dehring,
Deuterosome-mediated centriole biogenesis.
2013,
Pubmed
,
Xenbase
Kramer-Zucker,
Cilia-driven fluid flow in the zebrafish pronephros, brain and Kupffer's vesicle is required for normal organogenesis.
2005,
Pubmed
Kulkarni,
Mechanical stretch scales centriole number to apical area via Piezo1 in multiciliated cells.
2021,
Pubmed
,
Xenbase
Kulkarni,
WDR5 Stabilizes Actin Architecture to Promote Multiciliated Cell Formation.
2018,
Pubmed
,
Xenbase
Lewis,
Transcriptional regulation of multiciliated cell differentiation.
2021,
Pubmed
Mahjoub,
Cep120 is asymmetrically localized to the daughter centriole and is essential for centriole assembly.
2010,
Pubmed
Mahuzier,
Ependymal cilia beating induces an actin network to protect centrioles against shear stress.
2018,
Pubmed
Marshall,
Cell Geometry: How Cells Count and Measure Size.
2016,
Pubmed
Marshall,
Scaling of Subcellular Structures.
2020,
Pubmed
Mercey,
Dynamics of centriole amplification in centrosome-depleted brain multiciliated progenitors.
2019,
Pubmed
Mercey,
Massive centriole production can occur in the absence of deuterosomes in multiciliated cells.
2019,
Pubmed
,
Xenbase
Meunier,
Multiciliated Cells in Animals.
2016,
Pubmed
Mofatteh,
Autonomous clocks that regulate organelle biogenesis, cytoskeletal organization, and intracellular dynamics.
2021,
Pubmed
Mori,
Cytoplasmic E2f4 forms organizing centres for initiation of centriole amplification during multiciliogenesis.
2017,
Pubmed
Nanjundappa,
Regulation of cilia abundance in multiciliated cells.
2019,
Pubmed
Nigg,
Once and only once: mechanisms of centriole duplication and their deregulation in disease.
2018,
Pubmed
Núnez-Ollé,
Constitutive Cyclin O deficiency results in penetrant hydrocephalus, impaired growth and infertility.
2017,
Pubmed
Pan,
RhoA-mediated apical actin enrichment is required for ciliogenesis and promoted by Foxj1.
2007,
Pubmed
Revinski,
CDC20B is required for deuterosome-mediated centriole production in multiciliated cells.
2018,
Pubmed
,
Xenbase
Roberson,
A comparative study of the turnover of multiciliated cells in the mouse trachea, oviduct, and brain.
2020,
Pubmed
Sedzinski,
RhoA regulates actin network dynamics during apical surface emergence in multiciliated epithelial cells.
2017,
Pubmed
,
Xenbase
Shahid,
Emerging Picture of Deuterosome-Dependent Centriole Amplification in MCCs.
2018,
Pubmed
Sorokin,
Reconstructions of centriole formation and ciliogenesis in mammalian lungs.
1968,
Pubmed
Spassky,
The development and functions of multiciliated epithelia.
2017,
Pubmed
Steinman,
An electron microscopic study of ciliogenesis in developing epidermis and trachea in the embryo of Xenopus laevis.
1968,
Pubmed
,
Xenbase
Tang,
Centriole biogenesis in multiciliated cells.
2013,
Pubmed
Tateishi,
Three-dimensional Organization of Layered Apical Cytoskeletal Networks Associated with Mouse Airway Tissue Development.
2017,
Pubmed
Tu,
Protein localization screening in vivo reveals novel regulators of multiciliated cell development and function.
2018,
Pubmed
,
Xenbase
van Soldt,
Yap and its subcellular localization have distinct compartment-specific roles in the developing lung.
2019,
Pubmed
Vladar,
Cyclin-dependent kinase control of motile ciliogenesis.
2018,
Pubmed
Vladar,
Microtubules enable the planar cell polarity of airway cilia.
2012,
Pubmed
Vladar,
Molecular characterization of centriole assembly in ciliated epithelial cells.
2007,
Pubmed
Walentek,
Signaling Control of Mucociliary Epithelia: Stem Cells, Cell Fates, and the Plasticity of Cell Identity in Development and Disease.
2022,
Pubmed
,
Xenbase
Wallmeier,
Motile ciliopathies.
2020,
Pubmed
Wallmeier,
Mutations in CCNO result in congenital mucociliary clearance disorder with reduced generation of multiple motile cilia.
2014,
Pubmed
,
Xenbase
Werner,
Actin and microtubules drive differential aspects of planar cell polarity in multiciliated cells.
2011,
Pubmed
,
Xenbase
Wesley,
Organelle size scaling over embryonic development.
2020,
Pubmed
,
Xenbase
Zhao,
Parental centrioles are dispensable for deuterosome formation and function during basal body amplification.
2019,
Pubmed
Zhao,
The Cep63 paralogue Deup1 enables massive de novo centriole biogenesis for vertebrate multiciliogenesis.
2013,
Pubmed
,
Xenbase
Zhao,
Yap tunes airway epithelial size and architecture by regulating the identity, maintenance, and self-renewal of stem cells.
2014,
Pubmed
Zhou,
Gmnc Is a Master Regulator of the Multiciliated Cell Differentiation Program.
2015,
Pubmed
,
Xenbase