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The Connecting Cilium Inner Scaffold Provides a Structural Foundation That Protects Against Retinal Degeneration

Overview
Journal PLoS Biol
Specialty Biology
Date 2022 Jun 16
PMID 35709082
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Abstract

Inherited retinal degeneration due to loss of photoreceptor cells is a leading cause of human blindness. These cells possess a photosensitive outer segment linked to the cell body through the connecting cilium (CC). While structural defects of the CC have been associated with retinal degeneration, its nanoscale molecular composition, assembly, and function are barely known. Here, using expansion microscopy and electron microscopy, we reveal the molecular architecture of the CC and demonstrate that microtubules are linked together by a CC inner scaffold containing POC5, CENTRIN, and FAM161A. Dissecting CC inner scaffold assembly during photoreceptor development in mouse revealed that it acts as a structural zipper, progressively bridging microtubule doublets and straightening the CC. Furthermore, we show that Fam161a disruption in mouse leads to specific CC inner scaffold loss and triggers microtubule doublet spreading, prior to outer segment collapse and photoreceptor degeneration, suggesting a molecular mechanism for a subtype of retinitis pigmentosa.

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References
1.
Karlstetter M, Sorusch N, Caramoy A, Dannhausen K, Aslanidis A, Fauser S . Disruption of the retinitis pigmentosa 28 gene Fam161a in mice affects photoreceptor ciliary structure and leads to progressive retinal degeneration. Hum Mol Genet. 2014; 23(19):5197-210. DOI: 10.1093/hmg/ddu242. View

2.
Rohlich P . The sensory cilium of retinal rods is analogous to the transitional zone of motile cilia. Cell Tissue Res. 1975; 161(3):421-30. DOI: 10.1007/BF00220009. View

3.
Molday R, Moritz O . Photoreceptors at a glance. J Cell Sci. 2015; 128(22):4039-45. PMC: 4712787. DOI: 10.1242/jcs.175687. View

4.
Rachel R, Li T, Swaroop A . Photoreceptor sensory cilia and ciliopathies: focus on CEP290, RPGR and their interacting proteins. Cilia. 2013; 1(1):22. PMC: 3563624. DOI: 10.1186/2046-2530-1-22. View

5.
Gambarotto D, Zwettler F, Le Guennec M, Schmidt-Cernohorska M, Fortun D, Borgers S . Imaging cellular ultrastructures using expansion microscopy (U-ExM). Nat Methods. 2018; 16(1):71-74. PMC: 6314451. DOI: 10.1038/s41592-018-0238-1. View