Role of guanylyl cyclase modulation in mouse cone phototransduction

Keisuke Sakurai1, Jeannie Chen, Vladimir J Kefalov

  • 1Department of Ophthalmology and Visual Sciences, Washington University, St Louis, Missouri 63110, USA.

Insights

Guanylyl cyclase activating proteins (GCAPs) are crucial for cone photoreceptor function, enabling rapid light response termination and adaptation. Their deletion significantly impairs cone light responses and adaptation, highlighting their essential role in vision.

Area of Science:

  • Vision science
  • Photoreceptor physiology
  • Molecular mechanisms of vision

Background:

  • Negative feedback mechanisms in rod and cone phototransduction are vital for response termination and adapting to light intensity.
  • While rod calcium feedback mechanisms are well-studied, cone modulation mechanisms for rapid response termination and bright light adaptation remain unclear.
  • Calcium feedback to guanylyl cyclase, modulated by guanylyl cyclase activating proteins (GCAP1 and GCAP2), is a potential key step in cone phototransduction.

Purpose of the Study:

  • To investigate the role of GCAPs in modulating dark-adapted responses and light adaptation in mammalian cones.
  • To determine how GCAP deletion affects cone light response kinetics, amplitude, and operating range.

Main Methods:

  • Single-cell recordings from mouse cones.
  • Transretinal recordings from mouse cones.

Main Results:

  • Deletion of GCAPs in mouse cones resulted in a threefold increase in response amplitude and significantly prolonged light responses.
  • GCAP deletion reduced the operating range of cones under background illumination and severely impaired light adaptation.
  • Mammalian cones showed a lesser extent of modulation by GCAPs compared to mammalian rods, despite having better adaptation capacity.

Conclusions:

  • GCAPs play a critical role in modulating the cone phototransduction cascade, influencing dark-adapted properties and light adaptation.
  • The observed differences in dark-adapted properties and operating ranges between mammalian rods and cones cannot be attributed to a disparity in GCAP modulation strength.

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