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Quantifying the metabolic contribution to photoreceptor death in retinitis pigmentosa via a mathematical model
Erika T Camacho1, Claudio Punzo2, Stephen A Wirkus1
1School of Mathematical and Natural Sciences, Arizona State University, Glendale, AZ, USA.
Abstract:
Retinitis pigmentosa (RP) is a family of inherited retinal degenerative diseases that leads to blindness. In many cases the disease-causing allele encodes for a gene exclusively expressed in the night active rod photoreceptors. However, because rod death always leads to cone death affected individuals eventually lose their sight. Many theories have been proposed to explain the secondary loss of cones in RP; however, most fail to fully explain the different pathological transition stages seen in humans. Incorporating experimental data of rod and cone death kinetics from two mouse models of RP, we use a mathematical model to investigate the interplay and role of energy consumption and uptake of the photoreceptors as well as nutrient availability supplied through the retinal pigment epithelium (RPE) throughout the progression of RP. Our data driven mathematical model predicts that the system requires a total reduction of approximately 27-31% in nutrients available to result in the complete demise of all cones. Simulations utilizing retinal degeneration 1 (rd1) mouse cell count data in which cone death was delayed by altering cell metabolism in cones show that preventing a 1-2% decrease in nutrients available can permanently halt cone death even when 90% have already died. Our results also indicate that the ratio of energy consumption to uptake of cones, Dc, is mainly disrupted during the death wave of the rods with negligible changes thereafter and that the subsequent nutrient decrease is mainly responsible for the demise of the cones. The change in this ratio Dc highlights the compensation that the cones must undergo during rod death to meet the high metabolic demands of the entire photoreceptor population. Global sensitivity analysis confirms the results and suggests areas of focus for halting RP, even at later stages of the disease, through feasible therapeutic interventions.
Insights
A mathematical model reveals that reduced nutrient availability, not just rod death, causes cone loss in retinitis pigmentosa (RP). Halting a small nutrient decrease can prevent blindness, even in late-stage RP.
Area of Science:
- Ophthalmology
- Genetics
- Biophysics
Background:
- Retinitis pigmentosa (RP) is an inherited condition causing progressive vision loss due to photoreceptor degeneration.
- Rod photoreceptor death, common in RP, often leads to secondary cone photoreceptor death and eventual blindness.
- Existing theories inadequately explain the stages of cone loss in RP progression.
Purpose of the Study:
- To investigate the roles of photoreceptor energy metabolism, nutrient uptake, and retinal pigment epithelium (RPE) nutrient supply in RP pathogenesis.
- To develop a data-driven mathematical model to simulate RP progression and identify key factors in cone death.
Main Methods:
- Utilized experimental rod and cone death kinetics data from two mouse models of RP.
- Developed and employed a mathematical model to simulate photoreceptor survival under varying metabolic and nutrient conditions.
- Performed global sensitivity analysis to identify critical parameters and therapeutic targets.
Main Results:
- The model predicts a 27-31% reduction in available nutrients is required for complete cone loss.
- Simulations showed that preventing a 1-2% nutrient decrease could halt cone death, even after 90% of cones had died.
- The ratio of cone energy consumption to uptake (Dc) is disrupted during rod death, with subsequent nutrient reduction driving cone demise.
Conclusions:
- Nutrient availability, significantly impacted by rod death, is a primary driver of secondary cone loss in RP.
- Therapeutic interventions targeting nutrient availability could be effective in halting RP progression, even at advanced stages.
- Cone metabolic compensation during rod death is crucial but ultimately insufficient to prevent nutrient-driven demise.

