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Characterization of Trpm1 desensitization in ON bipolar cells and its role in downstream signalling
1Dominick P. Purpura Department of Neuroscience, Albert Einstein College of Medicine, Bronx, NY 10461, USA. tejinder.kaur@phd.einstein.yu.edu
Abstract:
ON bipolar cells invert the sign of light responses from hyperpolarizing to depolarizing before passing them on to ganglion cells. Light responses are generated when a cation channel, recently identified as Trpm1, opens. The amplitude of the light response rapidly decays due to desensitization of Trpm1 current. The role of Trpm1 desensitization in shaping light responses both in bipolar and downstream ganglion cells has not been well characterized. Here we show that two parameters, the amount and the rate of recovery from desensitization, depend on the strength of the presynaptic stimulus. Stimuli that activate less than 20% of the maximum Trpm1 current did not promote any detectable desensitization, even for prolonged periods. Beyond this threshold there was a linear relationship between the amount of desensitization and the fractional Trpm1 current. In response to stimuli that open all available channels, desensitization reduced the response to approximately 40% of the peak, with a time constant of 1 s, and recovery was slow, with a time constant of more than 20 s. In dye-filled bipolar cells classified as transient or sustained using morphological criteria, there were no significant differences in Trpm1 desensitization parameters. Trpm1 activation evoked robust EPSCs in ganglion cells, and removal of Trpm1 desensitization strongly augmented a sustained component of the ganglion cell EPSC irrespective of whether ganglion cells were of the ON or ON/OFF type. We conclude that Trpm1 desensitization impacts the kinetics of ganglion cell EPSCs, but does not underlie the sustained/transient dichotomy of neurons in the ON pathway.
Insights
Transient Receptor Potential Melastatin 1 (Trpm1) channel desensitization impacts ganglion cell responses. Its kinetics are stimulus-dependent, affecting sustained signaling in the ON pathway.
Area of Science:
- Neuroscience
- Visual Processing
- Molecular Biology
Background:
- ON bipolar cells transmit visual signals by inverting hyperpolarizing to depolarizing responses.
- Light responses involve cation channel Trpm1 opening, followed by rapid current decay due to desensitization.
- The role of Trpm1 desensitization in shaping visual responses remains unclear.
Purpose of the Study:
- Investigate the stimulus-dependence of Trpm1 desensitization parameters (amount and recovery rate).
- Characterize the impact of Trpm1 desensitization on bipolar and ganglion cell light responses.
- Determine if Trpm1 desensitization underlies the sustained/transient response dichotomy in the ON pathway.
Main Methods:
- Electrophysiological recordings in bipolar and ganglion cells.
- Stimulation with varying light intensities to assess Trpm1 current dynamics.
- Morphological classification of bipolar cells.
- Pharmacological manipulation to remove Trpm1 desensitization.
Main Results:
- Trpm1 desensitization and recovery kinetics are dependent on stimulus strength.
- A stimulus threshold exists below which no desensitization occurs.
- Desensitization significantly reduces Trpm1 current amplitude and prolongs recovery.
- Trpm1 desensitization enhances sustained components of ganglion cell excitatory postsynaptic currents (EPSCs).
- No significant differences in Trpm1 desensitization were observed between transient and sustained bipolar cells.
Conclusions:
- Trpm1 desensitization is a critical factor modulating the kinetics of ganglion cell EPSCs.
- Trpm1 desensitization influences sustained signaling in the ON pathway but does not define the transient/sustained cell classification.
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