Modulation of melatonin receptors and G-protein function by microtubules

Michael J Jarzynka1, Deepshikha K Passey, Paul F Ignatius

  • 1Hillman Cancer Center, Research Pavilion, University of Pittsburgh Cancer Institute, Pittsburgh, PA, USA.

Insights

Microtubule depolymerization prevents MT1 melatonin receptor desensitization by modulating G-protein activity. This finding reveals that microtubule dynamics play a crucial role in regulating melatonin receptor signaling pathways.

Area of Science:

  • Cell Biology
  • Molecular Pharmacology
  • Signal Transduction

Background:

  • Chronic melatonin exposure causes microtubule rearrangements and MT1 receptor desensitization in CHO cells.
  • Microtubule rearrangements are observed to parallel MT1 receptor desensitization, suggesting a potential regulatory role.

Purpose of the Study:

  • To investigate whether microtubules modulate MT1 receptor responsiveness.
  • To determine if depolymerizing microtubules prevents MT1 receptor desensitization and affects G-protein signaling.

Main Methods:

  • Depolymerization of microtubules using Colcemid in MT1-expressing CHO cells.
  • Assessment of MT1 receptor desensitization by measuring high-potency sites.
  • Analysis of G-protein activity, including G(alpha)-GTP exchange, G(i alpha) protein coupling, and forskolin-induced cAMP accumulation.
  • Evaluation of MT1/G(q) coupling and melatonin-induced phosphoinositide hydrolysis.
  • Measurement of melatonin-induced protein kinase C activation.

Main Results:

  • Microtubule depolymerization prevented melatonin-induced MT1 receptor desensitization.
  • Depolymerization attenuated forskolin-induced cAMP accumulation and reduced G(i alpha) protein coupling to MT1 receptors.
  • Microtubule disruption did not affect MT1/G(q) coupling or phosphoinositide hydrolysis.
  • Depolymerization enhanced melatonin-induced protein kinase C activation, which was blocked by pertussis toxin.

Conclusions:

  • Microtubule dynamics significantly modulate MT1 melatonin receptor function.
  • The effects are mediated through interactions with G(i) proteins, impacting downstream signaling cascades.
  • Microtubules are key regulators of melatonin receptor signaling pathways.

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