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Smolen, P. D.

Publications and source records attributed to Smolen, P. D..

4 recordsLinked to original sources

Dynamics and mechanisms of ERK activation after different protocols that induce long-term facilitation in Aplysia

The mitogen-activated protein kinase (MAPK) isoform extracellular signal-regulated kinase (ERK) is a key kinase involved in the induction of long-term synaptic facilitation (LTF) of the Aplysia sensorimotor synapse. Therefore, elucidating the dynamics of ERK activation after LTF-inducing protocols is critical for understanding the mechanisms underlying neuronal and synaptic plasticity. ERK activation has rich dynamic features. After a single stimulus, activation peaks 45-minute later and declines rapidly, but after two stimuli spaced 45 min apart, activation persists (Kopec et al. 2015). However, little is known about possible changes in ERK activation for periods beyond 3 h. Given its key role in long-term learning, understanding the dynamics of ERK at 3 h and beyond might provide insights into new protocols that could enhance memory retention. Three different protocols that induce LTF were used to probe the dynamics of ERK activation. The first, termed the Standard protocol, consists of five 5-min pulses of serotonin (5-HT) with regular interstimulus intervals (ISIs) of 20 min. The second, termed the Enhanced protocol, consists of five pulses of 5-HT with irregular ISIs identified with the use of computer simulations. This protocol induces greater and longer-lasting LTF than the Standard protocol. A third protocol, termed the two-pulse protocol, consists of just two 5-min pulses of 5-HT with an ISI of 45 min. Immunofluorescence revealed complex patterns of ERK activation up to 24 h after 5-HT treatment. The Standard and two-pulse protocols led to an immediate increase in active, phosphorylated ERK (pERK), which decayed within 5 h post treatment. A second wave of increased pERK was detected at 18 h post treatment. This late phase was blocked by RpcAMP (an inhibitor of protein kinase A), and by TrkB Fc and TGF-{beta} RII F antagonists. The latter two are chimeras that act via receptor sequestration. These results suggest that complex interactions among kinase pathways and growth factor cascades contribute to the late increase of ERK activity after different LTF-inducing protocols. Interestingly, ERK activity returned to basal levels 24 h after the Standard or two-pulse protocol, but remained elevated 24 h after the Enhanced protocol. This finding may help explain, in part, why the Enhanced protocol is superior to the Standard protocol in inducing long-lasting LTF.

neuroscience↗

Defective synaptic plasticity in a model of Coffin-Lowry Syndrome is rescued by simultaneously targeting PKA and MAPK pathways

Empirical and computational methods were combined to examine whether individual or dual-drug treatments can restore the deficit in long-term synaptic facilitation (LTF) of the Aplysia sensorimotor synapse observed in a molecular model of Coffin-Lowry Syndrome (CLS). The model was produced by pharmacological inhibition of p90 ribosomal S6 kinase (RSK) activity. Simultaneous treatment with an activator of the mitogen-activated protein kinase (MAPK) isoform ERK and an activator of protein kinase A (PKA) resulted in enhanced phosphorylation of RSK and LTF to a greater extent than either drug alone and greater than their additive effects. Indeed, the combined drugs exerted synergistic effects on both RSK activation and LTF, fully restoring RSK phosphorylation and LTF. The extent of synergism appeared to depend on another MAPK isoform, p38 MAPK. Inhibition of p38 MAPK facilitated serotonin (5-HT)-induced RSK phosphorylation, indicating that p38 MAPK inhibits activation of RSK. Inhibition of p38 MAPK combined with activation of PKA synergistically activated RSK.

neuroscience↗

Computational analysis of memory consolidation following inhibitory avoidance (IA) training in adult and infant rats: critical roles of CaMKIIα and MeCP2

Key features of long-term memory (LTM), such as its stability and persistence, are acquired during processes collectively referred to as consolidation. The dynamics of biological changes during consolidation are complex. In adult rodents, consolidation exhibits distinct periods during which the engram is more or less resistant to disruption. Moreover, the ability to consolidate memories differs during developmental periods. Although the molecular mechanisms underlying consolidation are poorly understood, the initial stages rely on interacting signaling pathways that regulate gene expression, including brain-derived neurotrophic factor (BDNF) and Ca2+/calmodulin-dependent protein kinase II (CaMKII) dependent feedback loops. We investigated the ways in which these pathways may contribute to developmental and dynamical features of consolidation. A computational model of molecular processes underlying consolidation following inhibitory avoidance (IA) training in rats was developed. Differential equations described the actions of CaMKII, multiple feedback loops regulating BDNF expression, and several transcription factors including methyl-CpG binding protein 2 (MeCP2), histone deacetylase 2 (HDAC2), and SIN3 transcription regulator family member A (Sin3a). This model provides novel explanations for the (apparent) rapid forgetting of infantile memory and the temporal progression of memory consolidation in adults. Simulations predict that dual effects of MeCP2 on the expression of bdnf, and interaction between MeCP2 and CaMKII, play critical roles in the rapid forgetting of infantile memory and the progress of memory resistance to disruptions. These insights suggest new potential targets of therapy for memory impairment. Author SummaryLong-term memories (LTMs) are enduring and resistant to disruption These features are acquired via processes collectively referred to as consolidation. In adults, the initial stages of consolidation follow complex dynamics that are believed to emerge from interacting biochemical signaling pathways [1], including BDNF and CaMKII dependent feedback loops. Similarly, the acquisition of ability to consolidate memory in infantile animals is believed to emerge from the functional maturation of these molecular pathways [2]. Here, the ways in which these pathways contribute to consolidation were investigated using a computational model. This model provides novel explanations for the apparent rapid forgetting of infantile memory and for development of resistance to disruption during memory consolidation.

neuroscience↗

Comparing Theories for the Maintenance of Late LTP and Long-Term Memory: Computational Analysis of the Roles of Kinase Feedback Pathways and Synaptic Reactivation

A fundamental problem in neuroscience is how memories are maintained from days to a lifetime, given turnover of proteins that underlie expression of long-term synaptic potentiation (LTP) or tag synapses as eligible for LTP. One likely solution relies on synaptic positive feedback loops, prominently including persistent activation of Ca2+/calmodulin kinase II (CaMKII) and self-activated synthesis of protein kinase M {zeta} (PKM{zeta}). Recent studies also suggest positive feedback based on recurrent synaptic reactivation within neuron assemblies, or engrams, is necessary to maintain memories. The relative importance of these feedback mechanisms is controversial. To explore the likelihood that each mechanism is necessary or sufficient to maintain memory, we simulated maintenance of LTP with a simplified model incorporating persistent kinase activation, synaptic tagging, and preferential reactivation of strong synapses, and analyzed implications of recent data. We simulated three model variants, each maintaining LTP with one feedback loop: autonomous, self-activated PKM{zeta} synthesis (model variant I); self-activated CamKII (model variant II); and recurrent reactivation of strengthened synapses (model variant III). Variant I requires and predicts that, for successful maintenance, PKM{zeta} must contribute to synaptic tagging. Variant II maintains LTP and suggests persistent CaMKII activation could maintain PKM{zeta} activity, a feedforward interaction not previously considered. However we note data challenging this feedback loop. In Variant III synaptic reactivation drives, and thus predicts, recurrent or persistent activity elevations of CamKII and other necessary kinases, plausibly contributing to empirically persistent elevation of PKM{zeta} levels. Reactivation is thus predicted to sustain recurrent rounds of synaptic tagging and incorporation of plasticity-related proteins. We also suggest (model variant IV) that synaptic reactivation and autonomous kinase activation could synergistically maintain LTP. We propose experiments that could discriminate these maintenance mechanisms.

neuroscience↗