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Pena-Bravo, J. I.

Publications and source records attributed to Pena-Bravo, J. I..

2 recordsLinked to original sources

Effects of high dosage methamphetamine on glutamatergic neurotransmission in the nucleus accumbens and prefrontal cortex.

RationaleMethamphetamine (METH) induces changes in the glutamatergic system and elicits cellular alterations in the cortico-accumbens circuit. ObjectiveWhile there is a body of literature on the effects of METH on dopaminergic transmission, there is a gap in knowledge regarding the effects of a high dose of METH on synaptic glutamatergic neurotransmission, specifically in brain regions involved in goal directed behavior (nucleus accumbens core; NAc core) and executive functions (prefrontal cortex;PFC). MethodsIn order to fill that gap we assessed synaptic glutamatergic transmission using a well established METH administration regime (4 x 4 mg/kg ip at 2 hr intervals) followed by 7 days of abstinence. Rats were then sacrificed and whole cell and field recordings were performed in the NAc core and medial PFC. ResultsMETH treatment elicited a significant decrease in paired pulse ratio in NAc core and a significant increase in AMPA/NMDA ratio driven by increases in AMPA currents. On the other hand, there were no significant changes in measures of synaptic glutamate in the PFC. ConclusionThese results suggest that a high dose of METH treatment followed by a period of abstinence elicits significant increases in indices of glutamatergic transmission in the NAc core with no detectable changes in mPFC, denoting that neurons and glutamate terminals in this limbic region have a higher susceptibility to a neurotoxic METH regime.

neuroscience

α-Synuclein perturbs in vivo neural activity following seeding in the olfactory bulb

BACKGROUNDParkinsons disease (PD) neuropathology is characterized by intraneuronal protein aggregates composed of misfolded -Synuclein (-Syn), as well as degeneration of substantia nigra dopamine neurons. Deficits in olfactory perception and aggregation of -Syn in the olfactory bulb (OB) are observed during early stages of PD, and have been associated with the PD prodrome, before onset of the classic motor deficits. -Syn fibrils injected into the OB of mice cause progressive propagation of -Syn pathology throughout the olfactory system and are coupled to olfactory perceptual deficits. OBJECTIVEWe hypothesized that accumulation of pathogenic -Syn in the OB impairs neural activity in the olfactory system. METHODSTo address this, we monitored spontaneous and odor-evoked local field potential dynamics in awake wild type mice simultaneously in the OB and piriform cortex (PCX) one, two, and three months following injection of pathogenic preformed -Syn fibrils in the OB. RESULTSWe detected -Syn pathology in both the OB and PCX. We also observed that -Syn fibril injections influenced odor-evoked activity in the OB. In particular, -Syn fibril-injected mice displayed aberrantly high odor-evoked power in the beta spectral range. A similar change in activity was not detected in the PCX, despite high levels of -Syn pathology. CONCLUSIONSTogether, this work provides evidence that synucleinopathy impacts in vivo neural activity in the olfactory system at the network-level.

neuroscience