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On the Wrong Track: Alterations of Ciliary Transport in Inherited Retinal Dystrophies
Laura Sánchez-Bellver1,2, Vasileios Toulis1,3, Gemma Marfany1,2,3
1Departament de Genètica, Microbiologia i Estadística, Universitat de Barcelona, Barcelona, Spain.
Abstract:
Ciliopathies are a group of heterogeneous inherited disorders associated with dysfunction of the cilium, a ubiquitous microtubule-based organelle involved in a broad range of cellular functions. Most ciliopathies are syndromic, since several organs whose cells produce a cilium, such as the retina, cochlea or kidney, are affected by mutations in ciliary-related genes. In the retina, photoreceptor cells present a highly specialized neurosensory cilium, the outer segment, stacked with membranous disks where photoreception and phototransduction occurs. The daily renewal of the more distal disks is a unique characteristic of photoreceptor outer segments, resulting in an elevated protein demand. All components necessary for outer segment formation, maintenance and function have to be transported from the photoreceptor inner segment, where synthesis occurs, to the cilium. Therefore, efficient transport of selected proteins is critical for photoreceptor ciliogenesis and function, and any alteration in either cargo delivery to the cilium or intraciliary trafficking compromises photoreceptor survival and leads to retinal degeneration. To date, mutations in more than 100 ciliary genes have been associated with retinal dystrophies, accounting for almost 25% of these inherited rare diseases. Interestingly, not all mutations in ciliary genes that cause retinal degeneration are also involved in pleiotropic pathologies in other ciliated organs. Depending on the mutation, the same gene can cause syndromic or non-syndromic retinopathies, thus emphasizing the highly refined specialization of the photoreceptor neurosensory cilia, and raising the possibility of photoreceptor-specific molecular mechanisms underlying common ciliary functions such as ciliary transport. In this review, we will focus on ciliary transport in photoreceptor cells and discuss the molecular complexity underpinning retinal ciliopathies, with a special emphasis on ciliary genes that, when mutated, cause either syndromic or non-syndromic retinal ciliopathies.
Insights
Ciliopathies, disorders of the cilium, cause retinal degeneration due to impaired protein transport. Specific gene mutations can lead to syndromic or non-syndromic retinal diseases, highlighting photoreceptor cilia specialization.
Area of Science:
- Cell Biology
- Genetics
- Ophthalmology
Background:
- Ciliopathies are inherited disorders stemming from dysfunctional cilia, essential organelles for cellular functions.
- Photoreceptor cells possess specialized cilia (outer segments) crucial for vision, requiring constant protein renewal.
- Mutations in ciliary genes cause diverse ciliopathies, affecting multiple organs or primarily the retina.
Purpose of the Study:
- To review the molecular mechanisms of ciliary transport in photoreceptor cells.
- To discuss the genetic basis of retinal ciliopathies.
- To explore how mutations in ciliary genes lead to syndromic versus non-syndromic retinal diseases.
Main Methods:
- Literature review focusing on ciliary transport and retinal ciliopathies.
- Analysis of genetic mutations associated with inherited retinal dystrophies.
- Discussion of photoreceptor-specific ciliary functions and transport.
Main Results:
- Over 100 ciliary genes are linked to retinal dystrophies, comprising ~25% of these rare diseases.
- Impaired intraflagellar transport or cargo delivery to cilia causes photoreceptor dysfunction and degeneration.
- The same ciliary gene mutation can result in syndromic or non-syndromic retinopathies, indicating specialized mechanisms.
Conclusions:
- Efficient ciliary transport is critical for photoreceptor health and vision.
- Photoreceptor cilia exhibit specialized functions and molecular mechanisms distinct from other ciliated cells.
- Understanding these specialized mechanisms is key to developing targeted therapies for retinal ciliopathies.
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