Javascript must be enabled to continue!
Discrete IP3 signaling requirements underlie acute and chronic forms of homeostatic synaptic plasticity
View through CrossRef
<p>Synapses must continuously maintain stable function in order for neuronal circuits and higher-order systems to properly function. By necessity, tight regulation of molecules necessary for appropriate neurotransmission coupled with homeostatic forms of plasticity function to stabilize synaptic output. The Drosophila melanogaster larval neuromuscular junction (NMJ) is an excellent model synapse for investigating both homeostatic synaptic plasticity (HSP) and neurotransmission machinery. At the NMJ, post-synaptic impairments to neurotransmitter sensitivity (decreased quantal size) initiate HSP. A retrograde, muscle-to-nerve signal instructs the presynaptic neuron to increase neurotransmitter release (quantal content) to compensate for the post-synaptic impairment and maintain synaptic output.</p>
<p>HSP can be separated into temporally distinct induction and maintenance phases, depending on the nature of the impairment. Acute blockade of glutamate receptors initiates rapid forms of HSP that restore synaptic output within minutes. Loss-of-function mutations in a gene encoding a glutamate receptor result in reduced quantal size, and as a result, expression of HSP over the lifespan of that animal. However, it is unclear whether these temporal phases are distinct processes with overlapping machinery, or whether both phases are part of a common process with temporal distinct signaling requirements. Here we show that, in addition to being molecularly distinct, the temporal phases are functionally distinct. We provide evidence that the long-term maintenance of HSP requires continuous inositol trisphosphate receptor (IP3R) and Ryanodine receptor (RyR) activities, but neither are necessary for the rapid induction phase of HSP.</p>
<p>In addition, we investigated how mutations associated with Familial Hemiplegic Migraine Type 1 (FHM1) impact synapse function and seizure behavior. We show that flies expressing this mutant channel are susceptible to seizures. Further, neurons expressing a transgene for cacophony containing the FHM1 mutations R192Q and S218L in the analogous locations showed significant hyper-excitability. Concurrent knockdown of the gene Multiple inositol polyphosphate phosphatase 2 (Mipp2) attenuated hyper-excitable phenotypes. Additionally, Mipp2 knockdown or LiCl treatment, both of which should attenuate downstream IP3R signaling, mitigated susceptibility to seizures in adults. Together these results contribute to our understanding both of both the pathophysiology of migraine and seizures.</p>
The University of Iowa
Title: Discrete IP3 signaling requirements underlie acute and chronic forms of homeostatic synaptic plasticity
Description:
<p>Synapses must continuously maintain stable function in order for neuronal circuits and higher-order systems to properly function.
By necessity, tight regulation of molecules necessary for appropriate neurotransmission coupled with homeostatic forms of plasticity function to stabilize synaptic output.
The Drosophila melanogaster larval neuromuscular junction (NMJ) is an excellent model synapse for investigating both homeostatic synaptic plasticity (HSP) and neurotransmission machinery.
At the NMJ, post-synaptic impairments to neurotransmitter sensitivity (decreased quantal size) initiate HSP.
A retrograde, muscle-to-nerve signal instructs the presynaptic neuron to increase neurotransmitter release (quantal content) to compensate for the post-synaptic impairment and maintain synaptic output.
</p>
<p>HSP can be separated into temporally distinct induction and maintenance phases, depending on the nature of the impairment.
Acute blockade of glutamate receptors initiates rapid forms of HSP that restore synaptic output within minutes.
Loss-of-function mutations in a gene encoding a glutamate receptor result in reduced quantal size, and as a result, expression of HSP over the lifespan of that animal.
However, it is unclear whether these temporal phases are distinct processes with overlapping machinery, or whether both phases are part of a common process with temporal distinct signaling requirements.
Here we show that, in addition to being molecularly distinct, the temporal phases are functionally distinct.
We provide evidence that the long-term maintenance of HSP requires continuous inositol trisphosphate receptor (IP3R) and Ryanodine receptor (RyR) activities, but neither are necessary for the rapid induction phase of HSP.
</p>
<p>In addition, we investigated how mutations associated with Familial Hemiplegic Migraine Type 1 (FHM1) impact synapse function and seizure behavior.
We show that flies expressing this mutant channel are susceptible to seizures.
Further, neurons expressing a transgene for cacophony containing the FHM1 mutations R192Q and S218L in the analogous locations showed significant hyper-excitability.
Concurrent knockdown of the gene Multiple inositol polyphosphate phosphatase 2 (Mipp2) attenuated hyper-excitable phenotypes.
Additionally, Mipp2 knockdown or LiCl treatment, both of which should attenuate downstream IP3R signaling, mitigated susceptibility to seizures in adults.
Together these results contribute to our understanding both of both the pathophysiology of migraine and seizures.
</p>.
Related Results
Dynamic measurements of [IP3]i in cardiac differentiated P19 (CD‐P19) cells with a novel quantum dots (QD) and gold nanoparticles (AuNP) nanobiosensor, QD‐IP3‐AuNP. (1097.4)
Dynamic measurements of [IP3]i in cardiac differentiated P19 (CD‐P19) cells with a novel quantum dots (QD) and gold nanoparticles (AuNP) nanobiosensor, QD‐IP3‐AuNP. (1097.4)
We reported the first measurements of the [IP3]i in intact CD‐P19 cells with a novel nanobiosensor for IP3, QD‐IP3‐AuNP. QD‐IP3‐AuNP was fabricated with QD580 (donor) and AuNP (acc...
A postsynaptic signaling system for the regulation of homeostatic synaptic plasticity
A postsynaptic signaling system for the regulation of homeostatic synaptic plasticity
<p>Synapses undergo many stresses and plastic changes throughout the life of an organism. Homeostatic mechanisms respond to these stresses and maintain synaptic activity with...
Identification of an IP3 receptor in endothelial cells
Identification of an IP3 receptor in endothelial cells
AbstractIn this study we have used saponin to permeabilize bovine endothelial cell membranes in order to directly test the involvement of IP3 in regulating internal Ca2+ release. O...
Reactive astrocytes - comprehending when neurons play 4’33”
Reactive astrocytes - comprehending when neurons play 4’33”
Abstract
Homeostatic regulation is a powerful tool utilized by virtually all biological systems, brain included. Broadly speaking, each homeostatic process embodies...
The reversibility and limits of homeostatic synaptic plasticity
The reversibility and limits of homeostatic synaptic plasticity
<p>To experience the world, we depend on the ability of our brains to process information. Problems can occur when communication between neurons is not regulated, and a signi...
Non-synaptic plasticity enables memory-dependent local learning
Non-synaptic plasticity enables memory-dependent local learning
Abstract
Synaptic plasticity is essential for memory formation and learning in the brain. In addition, recent results indicate that non-synaptic plasticity processe...
Short-term depression and long-term plasticity together tune sensitive range of synaptic plasticity
Short-term depression and long-term plasticity together tune sensitive range of synaptic plasticity
Abstract
Synaptic efficacy is subjected to activity-dependent changes on short- and long time scales. While short-term changes decay over minutes, long-term modific...
Homeostatic Plasticity in the CNS
Homeostatic Plasticity in the CNS
Homeostatic plasticity refers to a collection of mechanisms that function to homeostatically maintain some feature of neural function. The field began with the view that homeostati...

