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Genes and Molecular Pathways Underpinning Ciliopathies

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Date 2017 Jul 13
PMID 28698599
Citations 721
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Abstract

Motile and non-motile (primary) cilia are nearly ubiquitous cellular organelles. The dysfunction of cilia causes diseases known as ciliopathies. The number of reported ciliopathies (currently 35) is increasing, as is the number of established (187) and candidate (241) ciliopathy-associated genes. The characterization of ciliopathy-associated proteins and phenotypes has improved our knowledge of ciliary functions. In particular, investigating ciliopathies has helped us to understand the molecular mechanisms by which the cilium-associated basal body functions in early ciliogenesis, as well as how the transition zone functions in ciliary gating, and how intraflagellar transport enables cargo trafficking and signalling. Both basic biological and clinical studies are uncovering novel ciliopathies and the ciliary proteins involved. The assignment of these proteins to different ciliary structures, processes and ciliopathy subclasses (first order and second order) provides insights into how this versatile organelle is built, compartmentalized and functions in diverse ways that are essential for human health.

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References
1.
Hori A, Toda T . Regulation of centriolar satellite integrity and its physiology. Cell Mol Life Sci. 2016; 74(2):213-229. PMC: 5219025. DOI: 10.1007/s00018-016-2315-x. View

2.
Jensen V, Carter S, Sanders A, Li C, Kennedy J, Timbers T . Whole-Organism Developmental Expression Profiling Identifies RAB-28 as a Novel Ciliary GTPase Associated with the BBSome and Intraflagellar Transport. PLoS Genet. 2016; 12(12):e1006469. PMC: 5145144. DOI: 10.1371/journal.pgen.1006469. View

3.
Koefoed K, Veland I, Pedersen L, Larsen L, Christensen S . Cilia and coordination of signaling networks during heart development. Organogenesis. 2013; 10(1):108-25. PMC: 4049888. DOI: 10.4161/org.27483. View

4.
Foley K . Model network: Canadian program aims to generate models for rare disease. Nat Med. 2015; 21(11):1242-3. DOI: 10.1038/nm1115-1242. View

5.
Sanchez G, Alkhori L, Hatano E, Schultz S, Kuzhandaivel A, Jafari S . Hedgehog Signaling Regulates the Ciliary Transport of Odorant Receptors in Drosophila. Cell Rep. 2016; 14(3):464-470. DOI: 10.1016/j.celrep.2015.12.059. View