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Updated: Jul 19, 2026

Light-mediated Reversible Modulation of the Mitogen-activated Protein Kinase Pathway during Cell Differentiation and Xenopus Embryonic Development
Published on: June 15, 2017
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.
Abstract:
Chronic melatonin exposure produces microtubule rearrangements in Chinese hamster ovary (CHO) cells expressing the human MT1 melatonin receptor while at the same time desensitizing MT1 receptors. Because microtubule rearrangements parallel MT1 receptor desensitization, we tested whether microtubules modulate receptor responsiveness. We determined whether depolymerization of microtubules by Colcemid, which prevents melatonin-induced outgrowths in MT1-expressing CHO cells, also prevents MT1 receptor desensitization by affecting G(alpha)-GTP exchange on G-proteins. In this study, we found that depolymerization of microtubules in MT1 receptor expressing cells, prevented melatonin-induced receptor desensitization reflected by an increase in the number of high potency sites when compared with melatonin-treated cells. Further examination of the mechanism(s) underlying this desensitization suggested that these effects occurred at the level of G-proteins. Depolymerization of microtubules during melatonin-induced desensitization, attenuated forskolin-induced cAMP accumulation, the opposite of which usually occurs following melatonin exposure alone. Concomitant to this attenuation in the forskolin response was a reduction in the amount of G(i alpha) protein coupled to MT1 receptors and an increase in [32P] azidoanilido GTP incorporation into G(i) proteins. These data are consistent with the findings that microtubule depolymerization did not affect MT1/G(q) coupling nor did it affect melatonin-induced phosphoinositide hydrolysis following melatonin exposure. However, interestingly, microtubule depolymerization enhanced melatonin-induced protein kinase C activation that was blocked in the presence of pertussis toxin. These data demonstrate that microtubule dynamics can modulate melatonin receptor function through their actions on G(i) proteins and impact on downstream signaling cascades.
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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