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.

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.

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