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Published on: August 7, 2015
Development of TRIB3-Based Therapy as a Gene-Independent Approach to Treat Retinal Degenerative Disorders
Trong Thuan Ung1, Christopher R Starr1, Assylbek Zhylkibayev1
1Department of Optometry and Vision Science, University of Alabama at Birmingham, Birmingham, AL 35233, USA.
Abstract:
Inherited retinal degeneration (RD) constitutes a heterogeneous group of genetic retinal degenerative disorders. The molecular mechanisms underlying RD encompass a diverse spectrum of cellular signaling, with the unfolded protein response (UPR) identified as a common signaling pathway chronically activated in degenerating retinas. TRIB3 has been recognized as a key mediator of the PERK UPR arm, influencing various metabolic pathways, such as insulin signaling, lipid metabolism, and glucose homeostasis, by acting as an AKT pseudokinase that prevents the activation of the AKT → mTOR axis. This study aimed to develop a gene-independent approach targeting the UPR TRIB3 mediator previously tested by our group using a genetic approach in mice with RD. The goal was to validate a therapeutic approach targeting TRIB3 interactomes through the pharmacological targeting of EGFR-TRIB3 and delivering cell-penetrating peptides targeting TRIB3 → AKT. The study employed rd10 and P23H RHO mice, with afatinib treatment conducted in p15 rd10 mice through daily intraperitoneal injections. P15 P23H RHO mice received intraocular injections of cell-penetrating peptides twice at a 2-week interval. Our study revealed that both strategies successfully targeted TRIB3 interactomes, leading to an improvement in scotopic A- and B-wave ERG recordings. Additionally, the afatinib-treated mice manifested enhanced photopic ERG amplitudes accompanied by a delay in photoreceptor cell loss. The treated rd10 retinas also showed increased PDE6β and RHO staining, along with an elevation in total PDE activity in the retinas. Consequently, our study demonstrated the feasibility of a gene-independent strategy to target common signaling in degenerating retinas by employing a TRIB3-based therapeutic approach that delays retinal function and photoreceptor cell loss in two RD models.
Insights
This study shows a new gene-independent therapy targeting TRIB3 can improve vision and slow cell loss in inherited retinal degeneration (RD). The approach uses drugs to target TRIB3 interactomes, offering hope for treating common signaling pathways in RD.
Area of Science:
- Ophthalmology
- Genetics
- Molecular Biology
Background:
- Inherited retinal degeneration (RD) involves diverse genetic causes but shares a common pathway: chronic activation of the unfolded protein response (UPR).
- TRIB3 acts as a key mediator in the PERK-UPR pathway, influencing metabolic signaling by inhibiting the AKT → mTOR axis.
- Existing treatments for RD are often gene-specific, highlighting the need for gene-independent therapeutic strategies.
Purpose of the Study:
- To develop and validate a gene-independent therapeutic strategy targeting the UPR mediator TRIB3 in mouse models of RD.
- To investigate the efficacy of targeting TRIB3 interactomes via pharmacological inhibition of EGFR-TRIB3 and cell-penetrating peptides targeting TRIB3 → AKT.
Main Methods:
- Utilized rd10 and P23H RHO mouse models of inherited retinal degeneration.
- Administered afatinib (EGFR-TRIB3 inhibitor) via intraperitoneal injection to p15 rd10 mice.
- Delivered cell-penetrating peptides (TRIB3 → AKT targeting) via intraocular injection to P15 P23H RHO mice.
Main Results:
- Both afatinib and cell-penetrating peptide treatments successfully targeted TRIB3 interactomes.
- Electoretinogram (ERG) recordings showed improved scotopic A- and B-wave amplitudes in treated mice.
- Afatinib treatment enhanced photopic ERG amplitudes and delayed photoreceptor cell loss; rd10 retinas showed increased PDE6β and RHO staining and elevated PDE activity.
Conclusions:
- A gene-independent therapeutic approach targeting TRIB3 is feasible for treating inherited retinal degeneration.
- Pharmacological targeting of TRIB3 interactomes effectively delays retinal dysfunction and photoreceptor cell loss in distinct RD models.
- This TRIB3-based strategy offers a promising avenue for addressing common signaling defects in various forms of RD.
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