Early receptor current of wild-type and transducin knockout mice: photosensitivity and light-induced Ca2+ release

Michael L Woodruff1, Janis Lem, Gordon L Fain

  • 1Department of Physiological Science, Room 3836, Life Sciences Building, University of California Los Angeles, Los Angeles, CA 90095-1606, USA.

Insights

Researchers measured the early receptor current (ERC) in mouse photoreceptors to understand light sensitivity. They quantified rhodopsin photosensitivity and identified a novel light-activated calcium release mechanism in transducin-knockout mice.

Area of Science:

  • Vision science
  • Photoreceptor physiology
  • Molecular biology

Background:

  • The early receptor current (ERC) is a rapid electrical response to light in photoreceptors.
  • Understanding photoreceptor function is crucial for vision research and treating retinal diseases.

Purpose of the Study:

  • To measure the early receptor current (ERC) in mammalian photoreceptors using suction-electrode recording.
  • To determine the in vivo photosensitivity of mouse rhodopsin.
  • To investigate the mechanism of light-activated calcium release in photoreceptors, particularly in transducin-knockout mice.

Main Methods:

  • Suction-electrode recording from single, isolated mammalian photoreceptors (mouse rods).
  • Illumination with controlled light flashes and laser flashes to bleach visual pigment.
  • Recording ERC from wild-type and transducin-knockout mouse rods.
  • Pharmacological manipulation (l-cis diltiazem) and calcium buffering (BAPTA).

Main Results:

  • Quantified in vivo photosensitivity of mouse rhodopsin to be approximately 6 x 10(-9) microm(2)/molecule.
  • Observed a novel slow outward current in transducin-knockout mouse rods, distinct from the normal transduction cascade.
  • Demonstrated that this slow current is mediated by cyclic nucleotide-gated channels and likely involves light-activated calcium release, as it was blocked by diltiazem and depressed by BAPTA.

Conclusions:

  • The ERC measurement technique is a valuable tool for analyzing photoreceptor function and models of retinal disease.
  • Mouse rhodopsin photosensitivity was estimated using ERC measurements.
  • A transducin-independent, light-activated calcium release mechanism was identified in mammalian rods, potentially involving calcium stores.