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1.
Front Neurosci ; 12: 773, 2018.
Article in English | MEDLINE | ID: mdl-30443202

ABSTRACT

Exercise has been shown to improve or rescue cognitive functioning in both humans and rodents, and the augmented actions of neurotrophins within the hippocampus and associated regions play a significant role in the improved neural plasticity. The septohippocampal circuit is modified by exercise. Beyond an enhancement of spatial working memory and a rescue of hippocampal activity-dependent acetylcholine (ACh) efflux, the re-emergence of the cholinergic/nestin neuronal phenotype within the medial septum/diagonal band (MS/dB) is observed following exercise (Hall and Savage, 2016). To determine which neurotrophin, brain-derived neurotrophic factor (BDNF) or nerve growth factor (NGF), is critical for exercise-induced cholinergic improvements, control and amnestic rats had either NGF or BDNF sequestered by TrkA-IgG or TrkB-IgG coated microbeads placed within the dorsal hippocampus. Hippocampal ACh release within the hippocampus during spontaneous alternation was measured and MS/dB cholinergic neuronal phenotypes were assessed. Sequestering NGF, but not BDNF, abolished the exercise-induced recovery of spatial working memory and ACh efflux. Furthermore, the re-emergence of the cholinergic/nestin neuronal phenotype within the MS/dB following exercise was also selectively dependent on the actions of NGF. Thus, exercise-induced enhancement of NGF within the septohippocampal pathway represents a key avenue for aiding failing septo-hippocampal functioning and therefore has significant potential for the recovery of memory and cognition in several neurological disorders.

2.
Exp Neurol ; 278: 62-75, 2016 Apr.
Article in English | MEDLINE | ID: mdl-26836322

ABSTRACT

Exercise has been shown to improve cognitive functioning in a range of species, presumably through an increase in neurotrophins throughout the brain, but in particular the hippocampus. The current study assessed the ability of exercise to restore septohippocampal cholinergic functioning in the pyrithiamine-induced thiamine deficiency (PTD) rat model of the amnestic disorder Korsakoff Syndrome. After voluntary wheel running or sedentary control conditions (stationary wheel attached to the home cage), PTD and control rats were behaviorally tested with concurrent in vivo microdialysis, at one of two time points: 24-h or 2-weeks post-exercise. It was found that only after the 2-week adaption period did exercise lead to an interrelated sequence of events in PTD rats that included: (1) restored spatial working memory; (2) rescued behaviorally-stimulated hippocampal acetylcholine efflux; and (3) within the medial septum/diagonal band, the re-emergence of the cholinergic (choline acetyltransferase [ChAT+]) phenotype, with the greatest change occurring in the ChAT+/nestin+ neurons. Furthermore, in control rats, exercise followed by a 2-week adaption period improved hippocampal acetylcholine efflux and increased the number of neurons co-expressing the ChAT and nestin phenotype. These findings demonstrate a novel mechanism by which exercise can modulate the mature cholinergic/nestin neuronal phenotype leading to improved neurotransmitter function as well as enhanced learning and memory.


Subject(s)
Acetylcholine/metabolism , Hippocampus/metabolism , Nestin/metabolism , Neurons/physiology , Septum of Brain/pathology , Spatial Behavior/physiology , Thiamine Deficiency/rehabilitation , Animals , Antimetabolites/toxicity , Brain-Derived Neurotrophic Factor/metabolism , Choline O-Acetyltransferase/metabolism , Disease Models, Animal , Exercise Therapy , Male , Motor Activity/drug effects , Nerve Growth Factor/metabolism , Pyrithiamine/toxicity , Rats , Rats, Sprague-Dawley , Recognition, Psychology/physiology , Thiamine Deficiency/chemically induced , Thiamine Deficiency/pathology , Thiamine Deficiency/physiopathology , Time Factors
3.
Alcohol Clin Exp Res ; 39(11): 2143-53, 2015 Nov.
Article in English | MEDLINE | ID: mdl-26419807

ABSTRACT

BACKGROUND: Many alcoholics display moderate to severe cognitive dysfunction accompanied by brain pathology. A factor confounded with prolonged heavy alcohol consumption is poor nutrition, and many alcoholics are thiamine deficient. Thus, thiamine deficiency (TD) has emerged as a key factor underlying alcohol-related brain damage (ARBD). TD in humans can lead to Wernicke Encephalitis that can progress into Wernicke-Korsakoff syndrome and these disorders have a high prevalence among alcoholics. Animal models are critical for determining the exact contributions of ethanol (EtOH)- and TD-induced neurotoxicity, as well as the interactions of those factors to brain and cognitive dysfunction. METHODS: Adult rats were randomly assigned to 1 of 6 treatment conditions: chronic EtOH treatment (CET) where rats consumed a 20% v/v solution of EtOH over 6 months; severe pyrithiamine-induced TD (PTD-moderate acute stage); moderate PTD (PTD-early acute stage); moderate PTD followed by CET (PTD-CET); moderate PTD during CET (CET-PTD); and pair-fed (PF) control. After recovery from treatment, all rats were tested on spontaneous alternation and attentional set-shifting. After behavioral testing, brains were harvested for determination of mature brain-derived neurotrophic factor (BDNF) and thalamic pathology. RESULTS: Moderate TD combined with CET, regardless of treatment order, produced significant impairments in spatial memory, cognitive flexibility, and reductions in brain plasticity as measured by BDNF levels in the frontal cortex and hippocampus. These alterations are greater than those seen in moderate TD alone, and the synergistic effects of moderate TD with CET lead to a unique cognitive profile. However, CET did not exacerbate thalamic pathology seen after moderate TD. CONCLUSIONS: These data support the emerging theory that subclinical TD during chronic heavy alcohol consumption is critical for the development of significant cognitive impairment associated with ARBD.


Subject(s)
Cognition Disorders/blood , Ethanol/toxicity , Maze Learning/drug effects , Neuronal Plasticity/drug effects , Spatial Memory/drug effects , Thiamine Deficiency/blood , Alcohol Drinking/adverse effects , Alcohol Drinking/blood , Animals , Cognition Disorders/chemically induced , Cognition Disorders/psychology , Ethanol/administration & dosage , Male , Maze Learning/physiology , Neuronal Plasticity/physiology , Rats , Rats, Sprague-Dawley , Spatial Memory/physiology , Thiamine Deficiency/complications , Thiamine Deficiency/psychology
4.
Neuropsychol Rev ; 22(2): 195-209, 2012 Jun.
Article in English | MEDLINE | ID: mdl-22528861

ABSTRACT

Investigation of the amnesic disorder Korsakoff Syndrome (KS) has been vital in elucidating the critical brain regions involved in learning and memory. Although the thalamus and mammillary bodies are the primary sites of neuropathology in KS, functional deactivation of the hippocampus and certain cortical regions also contributes to the chronic cognitive dysfunction reported in KS. The rodent pyrithiamine-induced thiamine deficiency (PTD) model has been used to study the extent of hippocampal and cortical neuroadaptations in KS. In the PTD model, the hippocampus, frontal and retrosplenial cortical regions display loss of cholinergic innervation, decreases in behaviorally stimulated acetylcholine release and reductions in neurotrophins. While PTD treatment results in significant impairment in measures of spatial learning and memory, other cognitive processes are left intact and may be recruited to improve cognitive outcome. In addition, behavioral recovery can be stimulated in the PTD model by increasing acetylcholine levels in the medial septum, hippocampus and frontal cortex, but not in the retrosplenial cortex. These data indicate that although the hippocampus and frontal cortex are involved in the pathogenesis of KS, these regions retain neuroplasticity and may be critical targets for improving cognitive outcome in KS.


Subject(s)
Brain/pathology , Brain/physiopathology , Disease Models, Animal , Korsakoff Syndrome/diagnosis , Korsakoff Syndrome/physiopathology , Neuroanatomy/methods , Animals , Cognition Disorders/etiology , Humans , Thiamine Deficiency/complications , Thiamine Deficiency/pathology
5.
Behav Brain Res ; 232(2): 421-5, 2012 Jul 01.
Article in English | MEDLINE | ID: mdl-22507301

ABSTRACT

The links between spatial behavior and hippocampal levels of synapsin I and phosphosynapsin I were assessed in normal rats and in the pyrithiamine-induced thiamine deficiency (PTD) rat model of Wernicke-Korsakoff's syndrome. Synapsin I tethers small synaptic vesicles to the actin cytoskeleton in a phosphorylation-dependent manner, is involved in neurotransmitter release and has been implicated in hippocampal-dependent learning. Positive correlations between spontaneous alternation behavior and hippocampal levels of both synapsin I and phosphorylated synapsin I were found in control rats. However, spontaneous alternation performance was impaired in PTD rats and was accompanied by a significant reduction (30%) in phosphorylated synapsin I. Furthermore, no correlations were observed between either form of synapsin I and behavior in PTD rats. These data suggest that successful spontaneous alternation performance is related to high levels of hippocampal synapsin I and phosphorylated synapsin I. These results not only support the previous findings that implicate impaired hippocampal neurotransmission in the spatial learning and memory deficits associated with thiamine deficiency, but also suggest a presynaptic mechanism.


Subject(s)
Hippocampus/metabolism , Korsakoff Syndrome/metabolism , Spatial Behavior/physiology , Synapsins/metabolism , Thiamine Deficiency/metabolism , Animals , Disease Models, Animal , Korsakoff Syndrome/chemically induced , Korsakoff Syndrome/physiopathology , Maze Learning/physiology , Phosphorylation , Rats , Thiamine Deficiency/physiopathology
6.
Learn Mem ; 18(12): 751-8, 2011 Dec.
Article in English | MEDLINE | ID: mdl-22086393

ABSTRACT

The anterior thalamic nuclei (ATN) are important for learning and memory as damage to this region produces a persistent amnestic syndrome. Dense connections between the ATN and the hippocampus exist, and importantly, damage to the ATN can impair hippocampal functioning. Acetylcholine (ACh) is a key neurotransmitter in the hippocampus, and in vivo measures of ACh are correlated to learning and memory performance. In the present study, complete lesions of the ATN impaired performance on two measures of hippocampal-dependent learning and memory (spontaneous alternation and delayed alternation) and severely disrupted behaviorally evoked ACh efflux within the hippocampus of adult male rats. In contrast, incomplete ATN lesions did not impair spontaneous alternation performance but did impair delayed alternation performance while blunting hippocampal ACh efflux. Interestingly, ATN lesions of any size did not affect basal concentrations of ACh in the hippocampus. These results demonstrate that the ATN have the capacity to modulate behaviorally relevant neuronal transmission within the hippocampus.


Subject(s)
Acetylcholine/metabolism , Anterior Thalamic Nuclei/metabolism , Behavior, Animal/physiology , Hippocampus/metabolism , Learning/physiology , Animals , Anterior Thalamic Nuclei/injuries , Anterior Thalamic Nuclei/physiopathology , Chromatography, High Pressure Liquid , Male , Memory/physiology , Microdialysis , Rats , Rats, Sprague-Dawley
7.
Neurobiol Learn Mem ; 96(4): 596-608, 2011 Nov.
Article in English | MEDLINE | ID: mdl-21256970

ABSTRACT

Chronic alcoholism is associated with impaired cognitive functioning. Over 75% of autopsied chronic alcoholics have significant brain damage and over 50% of detoxified alcoholics display some degree of learning and memory impairment. However, the relative contributions of different etiological factors to the development of alcohol-related neuropathology and cognitive impairment are questioned. One reason for this quandary is that both alcohol toxicity and thiamine deficiency result in brain damage and cognitive problems. Two alcohol-related neurological disorders, alcohol-associated dementia and Wernicke-Korsakoff syndrome have been modeled in rodents. These pre-clinical models have elucidated the relative contributions of ethanol toxicity and thiamine deficiency to the development of dementia and amnesia. What is observed in these models--from repeated and chronic ethanol exposure to thiamine deficiency--is a progression of both neural and cognitive dysregulation. Repeated binge exposure to ethanol leads to changes in neural plasticity by reducing GABAergic inhibition and facilitating glutamatergic excitation, long-term chronic ethanol exposure results in hippocampal and cortical cell loss as well as reduced hippocampal neurotrophin protein content critical for neural survival, and thiamine deficiency results in gross pathological lesions in the diencephalon, reduced neurotrophic protein levels, and neurotransmitters levels in the hippocampus and cortex. Behaviorally, after recovery from repeated or chronic ethanol exposure there is impairment in working or episodic memory that can recover with prolonged abstinence. In contrast, after thiamine deficiency there is severe and persistent spatial memory impairments and increased perseverative behavior. The interaction between ethanol and thiamine deficiency does not produce more behavioral or neural pathology, with the exception of reduction of white matter, than long-term thiamine deficiency alone.


Subject(s)
Alcoholism/complications , Amnesia/etiology , Brain/pathology , Dementia/etiology , Alcoholism/pathology , Alcoholism/psychology , Amnesia/pathology , Amnesia/psychology , Animals , Dementia/pathology , Dementia/psychology , Disease Models, Animal , Humans , Memory/physiology
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