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Kostic, C.

Publications and source records attributed to Kostic, C..

4 recordsLinked to original sources

Glutamylation imbalance leads to photoreceptor degeneration

The stereotypic structure of microtubules, assembled from conserved /{beta}-tubulin dimers is subject to a complex diversity of Post-translational Modifications (PTMs). PTMs are predicted to fine-tune microtubule properties and interactions with other proteins, thus allowing microtubules to perform specific functions. Cilia accumulate several types of tubulin PTMs, such as polyglutamylation, polyglycylation, detyrosination and acetylation, whose functions are not yet fully understood. Recently, mutations of AGBL5, coding for the deglutamylating enzyme CCP5, have been associated to retinitis pigmentosa, suggesting that perturbation of polyglutamylation leads to the degeneration of photoreceptor cells. However, the molecular mechanisms underlying this degeneration remain unknown. Here, using super-resolution Ultrastructure Expansion Microscopy in mouse and human photoreceptor cells, we found that most tubulin PTMs are accumulated at the level of the connecting cilium, a structure linking the outer and inner segments of photoreceptor cells. Using mouse models with increased glutamylation (Ccp5-/- and Ccp1-/-), or loss of tubulin acetylation (Atat1-/-), we demonstrated that aberrant glutamylation, but not loss of acetylation, resulted in perturbed molecular architecture of the outer segment, with the loss of the bulge region and destabilization of the distal axoneme. Concurrently, we observed a substantial impairment in tubulin glycylation and intraflagellar transport. Altogether our results indicate that glutamylation plays a crucial role in the maintenance of the molecular architecture of the outer segment and point to tubulin PTM imbalance as possible culprit in retinal degeneration.

cell biology↗

Modeling the critical MCOR-causing deletion in mouse unveils aberrant Sox21 expression in developing and adult iris and ciliary body, and implicates Tgfb2 in MCOR-associated glaucoma and myopia.

Congenital microcoria (MCOR) is a rare hereditary developmental defect of the iris dilator muscle, frequently associated with high axial myopia and high intraocular pressure (IOP) glaucoma. The condition is caused by submicroscopic rearrangements of chromosome 13q32.1. However, the mechanisms underlying the failure of iris development and the origin of associated features remain elusive. Here, we present a 3D architecture model of the 13q32.1 region, demonstrating that MCOR-related deletions consistently disrupt the boundary between two Topologically Associating Domains (TADs). Deleting the critical MCOR-causing region in mice reveals ectopic Sox21 expression precisely aligning with Dct, each located in one of the two neighbor TADs. This observation is consistent with the TADs boundary alteration and adoption of Dct regulatory elements by the Sox21 promoter. Additionally, we identify Tgfb2 as a target gene of SOX21 and show TGFB2 accumulation in the aqueous humor of a MCOR-affected subject. Accumulation of TGFB2 is recognized for its role in glaucoma and potential impact on axial myopia. Our results highlight the importance of SOX21-TGFB2 signaling in iris development and control of eye growth and IOP. Insights from MCOR studies may provide therapeutic avenues for this condition but also for glaucoma and high myopia conditions, affecting millions of people.

genetics↗

Fine-tuning FAM161A gene augmentation therapy to restore retinal function

In 15 years, inherited retinal diseases have seen gene therapy as a springboard to hope. Many preclinical investigations focused on vectors with maximal gene expression capabilities. But despite an efficient gene transfer, little physiological improvement was noted for certain ciliopathies. FAM161A is an essential protein for the structure of photoreceptor connecting cilium (CC). In the absence of FAM161A, cilia disorganize resulting in outersegment collapses and vision impairment. Within the human retina, FAM161A produces two isoforms: the long with exon 4, and the short, lacking it. To restore CC in Fam161a-deficient mice, we compared AAV vectors with different promoter activities, doses, and human isoforms injected subretinally in 14-days Fam161atm1b/tm1b mice, shortly after the onset of cilium disorganization. All vectors improved cell survival, but only combining both isoforms using the weak FCBR1-F0.4 promoter allowed precise FAM161A expression in the CC and enhanced retinal function. Our study on FAM161A gene replacement for RP28, a rod-cone-related disease, underscores the critical need for precise therapeutic gene regulation, appropriate vector dosing and delivery of both isoforms. Fine tuning of therapeutic gene expression, tailored to disease traits, is crucial for restoring retinal function. This precision is pivotal for secure gene therapy involving structural proteins like FAM161A.

neuroscience↗

The connecting cilium inner scaffold provides a structural foundation to maintain photoreceptor integrity

Retinal degeneration is a leading cause of human blindness due to progressive loss of ciliated photoreceptors cells. While this degradation can be associated with cohesion defects of the microtubule-based connecting cilium (CC) structure, the underlying mechanism is not understood. 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 (CC-IS) containing POC5, CENTRIN and FAM161A. Monitoring CC-IS assembly during photoreceptor development in mouse reveals that it acts as a structural zipper, progressively bridging microtubule doublets and straightening the CC. Consistently, Fam161a mutations lead to a specific CC-IS loss and trigger microtubule doublets spreading, prior to outer segment collapse and photoreceptor degeneration, providing a molecular mechanism for retinitis pigmentosa disease. One Sentence SummaryThe connecting cilium inner scaffold acts as a structural zipper granting photoreceptor integrity.

cell biology↗